CN102706575B  Damaged cable and supporting seat translation progressivetype identification method based on space coordinate monitoring at moment of temperature variation  Google Patents
Damaged cable and supporting seat translation progressivetype identification method based on space coordinate monitoring at moment of temperature variation Download PDFInfo
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 CN102706575B CN102706575B CN201210171052.6A CN201210171052A CN102706575B CN 102706575 B CN102706575 B CN 102706575B CN 201210171052 A CN201210171052 A CN 201210171052A CN 102706575 B CN102706575 B CN 102706575B
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Abstract
The invention relates to a damaged cable and supporting seat translation progressivetype identification method based on the space coordinate monitoring at the moment of temperature variation, which is based on the space coordinate monitoring. The method is characterized in that whether a mechanical calculation benchmark model of a cable structure is required to update or not is determined by monitoring the translation displacement of a supporting seat and monitoring the temperature of the cable structure, the ambient temperature and the damage degree of the damaged cable, a novel mechanical calculation benchmark model considering the translation displacement of the supporting seat, the damage degree of the damaged cable and the temperature of the cable structure is obtained, and then the damaged cable and the translation displacement of the supporting seat are accurately identified on the basis of the model according to an approximate linear relation between the moment numerical value vector of a monitored parameter and the moment initial numerical value vector of the monitored parameter and between a unit damage monitored parameter numerical value unit variation matrix and a moment nominal damage vector to be solved when the temperature is changed.
Description
Technical field
The structures such as cablestayed bridge, suspension bridge, trussframe structure have a common ground, be exactly that they have many parts bearing tensile load, as suspension cable, main pushtowing rope, hoist cable, pull bar etc., the common ground of this class formation is with rope, cable or only bears the rod member of tensile load for support unit, and such structure representation is " Cable Structure " by this method for simplicity.Along with the change of environment temperature, the temperature of Cable Structure also can change, when Cable Structure temperature changes, based on space coordinate monitoring, this method identifies that the supporting system of Cable Structure (refers to all ropeway carryingropes, and all rod members only bearing tensile load play supporting role, for simplicity, whole support units of this class formation are collectively referred to as " cable system " by this patent, but in fact cable system not only refers to support cable, also the rod member only bearing tensile load is comprised, censure all ropeway carryingropes and all rod members only bearing tensile load play supporting role with " support cable " this noun in this method) in damaged cable (the impaired rod member only bearing tensile load is just referred to trussframe structure) and bearing translational displacement, belong to engineering structure health monitoring field.
Background technology
Support cable is impaired is safely a significant threat with bearing generation translational displacement to Cable Structure, and structure based health monitoring technique identifies that the damaged cable in the cable system of bearing translational displacement and Cable Structure is a kind of method of great potential.When there is displacement in bearing, or the health status of cable system change (such as damaging) time, or when two kinds of situations occur simultaneously, the change of the measurable parameter of structure can be caused, such as can cause the change of Suo Li, distortion or the strain of Cable Structure can be affected, shape or the volume coordinate of Cable Structure can be affected, the change of the angle coordinate of any imaginary line of the every bit of the Cable Structure (change of the angle coordinate of the straight line of any this point of mistake in the section of such as body structure surface any point can be caused, or the change of the angle coordinate of the normal of body structure surface any point), these all changes all contain the health status information of cable system, in fact the change of these measurable parameters contains the health status information of cable system, contain bearing translational displacement information, that is the measurable parameter of structure can be utilized to identify bearing translational displacement and damaged cable.This method identifies damaged cable and bearing translational displacement based on space coordinate monitoring (monitored volume coordinate is called " monitored amount " by this method).Monitored amount is except the impact by cable system health status and bearing translational displacement; also can be subject to the impact of Cable Structure temperature variation (usually can occur); under the condition that Cable Structure temperature changes; if can based on the identification of the support cable realized the monitoring of monitored amount unsoundness problem and bearing translational displacement; to the safety of Cable Structure, there is important value, also do not have a kind of disclosed, effective health monitoring systems and method to solve this problem at present.
Summary of the invention
Technical matters: this method disclose a kind of based on space coordinate monitoring, the health monitor method that can identify bearing translational displacement and damaged cable rationally and effectively.
Technical scheme: this method is made up of three parts.Respectively: one, " the temperature survey calculating method of the Cable Structure of this method "; Two, the structural health conditions appraisal procedure of the method for knowledge base needed for cable structure health monitoring system and parameter, knowledge based storehouse (containing parameter) and the monitored amount of actual measurement is set up; Three, the software and hardware part of health monitoring systems.
If the quantity sum of the bearing translational displacement component of the quantity of the support cable of Cable Structure and Cable Structure is N.For sake of convenience, this method unitedly calls evaluated support cable and bearing translational displacement to be " evaluation object ", total N number of evaluation object.To evaluation object serial number, this numbering will be used for generating vector sum matrix in subsequent step.
" the whole monitored spatial data of structure " by the specified point of K in structure and the volume coordinate of L assigned direction of each specified point describe, the change of structure space coordinate data is exactly the change of all volume coordinate components of K specified point.Each total individual volume coordinate measured value of M (M=K × L) or calculated value carry out characterisation of structures spatial coordinated information.K and M must not be less than N.
Comprehensive abovementioned monitored amount, whole Cable Structure has M monitored amount, and M must not be less than the quantity N of evaluation object.
For simplicity, in the method by " monitored all parameters of Cable Structure " referred to as " monitored amount ".To M monitored amount serial number, this numbering will be used for generating vector sum matrix in subsequent step.This method represents this numbering, j=1,2,3 with variable j ..., M.
The Part I of this method: " the temperature survey calculating method of the Cable Structure of this method ".
First determine " the temperature survey calculating method of the Cable Structure of this method ".Temperature due to Cable Structure may be change, the temperature of the different parts of such as Cable Structure changes along with the change of intensity of sunshine, along with the change of environment temperature changes, the surface of Cable Structure may be time dependent with inner temperature sometimes, the surface of Cable Structure may be different from inner temperature, the surface of Cable Structure is time dependent with inner temperature difference, this just makes the Mechanics Calculation of Cable Structure when considering temperature conditions and monitoring quite complicated, for simplifying problem, reduce calculated amount and reduce and measure cost, especially in order to improve computational accuracy, this method proposes " the temperature survey calculating method of the Cable Structure of this method ", specific as follows:
The first step, inquiry or actual measurement obtain the temperature variant thermal conduction study parameter of environment residing for Cable Structure composition material and Cable Structure, utilize the geometry measured data of the design drawing of Cable Structure, asconstructed drawing and Cable Structure, utilize these data and parameter to set up the Thermodynamic calculation model of Cable Structure.Inquiry Cable Structure location is no less than the meteorological data in recent years of 2 years, the statistics cloudy quantity obtained is during this period of time designated as T cloudy day, statistics obtains 0 highest temperature after sunrise moment next day between 30 minutes and the lowest temperature at each cloudy day in T cloudy day, the sunrise moment refers to the sunrise moment on the meteorology that base area revolutions and revolution rule are determined, data can be inquired about or calculated sunrise moment of each required day by conventional meteorology, 0 highest temperature after sunrise moment next day between 30 minutes at each cloudy day deducts the maximum temperature difference that the lowest temperature is called the daily temperature at this cloudy day, there is T cloudy day, just there is the maximum temperature difference of the daily temperature at T cloudy day, the maximal value of getting in the maximum temperature difference of the daily temperature at T cloudy day is reference temperature difference per day, Δ T is designated as with reference to temperature difference per day
_{r}.Be no less than between inquiry Cable Structure location and Altitude Region, place temperature that the meteorological data in recent years of 2 years or actual measurement obtain environment residing for Cable Structure in time with delta data and the Changing Pattern of sea level elevation, calculate to be no less than 2 years between Cable Structure location and Altitude Region, place Cable Structure in recent years residing for the temperature of environment about the maximum rate of change Δ T of sea level elevation
_{h}, get Δ T for convenience of describing
_{h}unit be DEG C/m.The surface of Cable Structure is got " R Cable Structure surface point ", the temperature of this R Cable Structure surface point will be obtained below by actual measurement, claiming to survey the temperature data obtained is " R Cable Structure surface temperature measured data ", if utilize the Thermodynamic calculation model of Cable Structure, obtained the temperature of this R Cable Structure surface point by Calculation of Heat Transfer, just claim the temperature data that calculates for " R Cable Structure land surface pyrometer count certificate ".When the surface of Cable Structure is got " R Cable Structure surface point ", the quantity of " R Cable Structure surface point " describes later with the condition that must meet that distributes.From the minimum height above sea level residing for Cable Structure to most High aititude, in Cable Structure, uniform choosing is no less than three different sea level elevations, at the sea level elevation place that each is chosen, two points are at least chosen at the intersection place on surface level and Cable Structure surface, from the outer normal of selected point straw line body structure surface, all outer normal directions chosen are called " measuring the direction of Cable Structure along the Temperature Distribution of wall thickness ", measure Cable Structure crossing with " intersection on surface level and Cable Structure surface " along the direction of the Temperature Distribution of wall thickness, in in the shade the outer normal direction of the measurement Cable Structure chosen along the sunny slope outer normal direction and Cable Structure that must comprise Cable Structure in the direction of the Temperature Distribution of wall thickness, three points are no less than along each measurement Cable Structure along direction uniform choosing in Cable Structure of the Temperature Distribution of wall thickness, especially, along each, Cable Structure is measured for support cable and only gets a point along the direction of the Temperature Distribution of wall thickness, namely the temperature of the surface point of support cable is only measured, measure all temperature be selected a little, the temperature recorded is called " Cable Structure is along the temperature profile data of thickness ", wherein along crossing with same " intersection on surface level and Cable Structure surface ", " measure the direction of Cable Structure along the Temperature Distribution of wall thickness " to measure " Cable Structure is along the temperature profile data of thickness " that obtain, be called in the method " identical sea level elevation Cable Structure is along the temperature profile data of thickness ", if have chosen the individual different sea level elevation of H, at each sea level elevation place, have chosen B and measure the direction of Cable Structure along the Temperature Distribution of wall thickness, in Cable Structure, E point is have chosen along each measurement Cable Structure along the direction of the Temperature Distribution of wall thickness, wherein H and E is not less than 3, B is not less than 2, especially, 1 is equaled for support cable E, what meter Cable Structure " measured the point of Cable Structure along the temperature profile data of thickness " adds up to HBE, the temperature of this HBE " measuring the point of Cable Structure along the temperature profile data of thickness " will be obtained below by actual measurement, claiming to survey the temperature data obtained is " HBE Cable Structure is along thickness temperature measured data ", if utilize the Thermodynamic calculation model of Cable Structure, obtain this HBE by Calculation of Heat Transfer and measure the temperature of Cable Structure along the point of the temperature profile data of thickness, the temperature data calculated just is claimed to be " HBE Cable Structure calculates data along thickness temperature ", the number temperature profile data at sea level elevation place " identical sea level elevation Cable Structure is along the temperature profile data of thickness " will chosen at each in this method ".Measure temperature in Cable Structure location according to meteorology to require to choose a position, obtain meeting the temperature that meteorology measures the Cable Structure place environment of temperature requirement by the actual measurement of this position, in the onsite spaciousness of Cable Structure, unobstructed place chooses a position, this position should each of the whole year day can obtain this ground the most sufficient sunshine of this day getable, at the flat board of this position of sound production one piece of carbon steel material, be called reference plate, the one side of this reference plate on the sunny side, be called sunny slope, the sunny slope of reference plate is coarse with dark color, the sunny slope of reference plate should each of the whole year day can obtain one flat plate on this ground the most sufficient sunshine of this day getable, the nonsunny slope of reference plate is covered with insulation material, RealTime Monitoring is obtained the temperature of the sunny slope of reference plate.Must not be greater than 30 minutes to the time interval between any twice measurement of same amount RealTime Monitoring in this method, the moment of survey record data is called the physical record data moment.
Second step, RealTime Monitoring obtains R Cable Structure surface temperature measured data of abovementioned R Cable Structure surface point, RealTime Monitoring obtains the temperature profile data of previously defined Cable Structure along thickness simultaneously, and RealTime Monitoring obtains meeting the temperature record that meteorology measures the Cable Structure place environment of temperature requirement simultaneously, the temperature measured data sequence of the Cable Structure place environment after sunrise moment next day between 30 minutes is obtained being carved at sunrise the same day by RealTime Monitoring, the temperature measured data sequence of Cable Structure place environment is arranged according to time order and function order by the temperature measured data of the Cable Structure place environment after being carved into the sunrise moment next day same day at sunrise between 30 minutes, find the maximum temperature in the temperature measured data sequence of Cable Structure place environment and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains Cable Structure place environment after sunrise moment next day between 30 minutes is deducted by the maximum temperature in the temperature measured data sequence of Cable Structure place environment, be designated as Δ T
_{emax}, calculated the rate of change of temperature about the time of Cable Structure place environment by Conventional mathematical by the temperature measured data sequence of Cable Structure place environment, this rate of change is also along with time variations, the measured data sequence of the temperature of the sunny slope of the reference plate after sunrise moment next day between 30 minutes is obtained being carved at sunrise the same day by RealTime Monitoring, the measured data sequence of the temperature of the sunny slope of reference plate is arranged according to time order and function order by the measured data of the temperature of the sunny slope of the reference plate after being carved into the sunrise moment next day same day at sunrise between 30 minutes, find the maximum temperature in the measured data sequence of the temperature of the sunny slope of reference plate and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains the temperature of the sunny slope of reference plate after sunrise moment next day between 30 minutes is deducted by the maximum temperature in the measured data sequence of the temperature of the sunny slope of reference plate, be designated as Δ T
_{pmax}, the Cable Structure surface temperature measured data sequence of all R Cable Structure surface points after sunrise moment next day between 30 minutes is obtained being carved at sunrise the same day by RealTime Monitoring, R Cable Structure surface point is had just to have R Cable Structure surface temperature measured data sequence, each Cable Structure surface temperature measured data sequence is arranged according to time order and function order by the Cable Structure surface temperature measured data after being carved into the sunrise moment next day same day of a Cable Structure surface point at sunrise between 30 minutes, find the maximum temperature in each Cable Structure surface temperature measured data sequence and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains the temperature of each Cable Structure surface point after sunrise moment next day between 30 minutes is deducted by the maximum temperature in each Cable Structure surface temperature measured data sequence, there is R Cable Structure surface point just to have to be carved at sunrise R the same day maximum temperature difference numerical value between 30 minutes after sunrise moment next day, maximal value is wherein designated as Δ T
_{smax}, calculated the rate of change of temperature about the time of each Cable Structure surface point by Conventional mathematical by each Cable Structure surface temperature measured data sequence, the temperature of each Cable Structure surface point about the rate of change of time also along with time variations.Obtain being carved at sunrise the same day after sunrise moment next day between 30 minutes by RealTime Monitoring, at synchronization, after HBE " Cable Structure is along the temperature profile data of thickness ", calculate the difference amounting to maximum temperature in BE " identical sea level elevation Cable Structure is along the temperature profile data of thickness " and minimum temperature at the sea level elevation place that each is chosen, the absolute value of this difference is called " identical sea level elevation place Cable Structure thickness direction maximum temperature difference ", have chosen H different sea level elevation just to have H " identical sea level elevation place Cable Structure thickness direction maximum temperature difference ", the maximal value in this H " identical sea level elevation place Cable Structure thickness direction maximum temperature difference " is claimed to be " Cable Structure thickness direction maximum temperature difference ", be designated as Δ T
_{tmax}.
3rd step, survey calculation obtains Cable Structure steady temperature data, first, determine the moment obtaining Cable Structure steady temperature data, the condition relevant to the moment determining to obtain Cable Structure steady temperature data has six, Section 1 condition is moment of obtaining Cable Structure steady temperature data between after being carved into sunrise moment next day at sunset between 30 minutes on same day, the sunset moment refers to the sunset moment on base area revolutions and the meteorology determined of revolution rule, can inquire about data or be calculated sunset moment of each required day by conventional meteorology, the a condition of Section 2 condition be after being carved into sunrise moment next day at sunrise between 30 minutes on same day during this period of time in, reference plate maximum temperature difference Δ T
_{pmax}with Cable Structure surface maximum temperature difference Δ T
_{smax}all be not more than 5 degrees Celsius, the b condition of Section 2 condition be after being carved into sunrise moment next day at sunrise between 30 minutes on same day during this period of time in, the environment maximum error Δ T that survey calculation obtains above
_{emax}be not more than with reference to temperature difference per day Δ T
_{r}, and reference plate maximum temperature difference Δ T
_{pmax}Δ T is not more than after deducting 2 degrees Celsius
_{emax}, and Cable Structure surface maximum temperature difference Δ T
_{smax}be not more than Δ T
_{pmax}, one of only need meet in a condition of Section 2 and b condition is just called and meets Section 2 condition, Section 3 condition is when obtaining Cable Structure steady temperature data, and the temperature of Cable Structure place environment is not more than 0.1 degree Celsius per hour about the absolute value of the rate of change of time, Section 4 condition is when obtaining Cable Structure steady temperature data, and the temperature of each the Cable Structure surface point in R Cable Structure surface point is not more than 0.1 degree Celsius per hour about the absolute value of the rate of change of time, Section 5 condition is when obtaining Cable Structure steady temperature data, and the Cable Structure surface temperature measured data of each the Cable Structure surface point in R Cable Structure surface point is be carved into the minimal value after sunrise moment next day between 30 minutes the same day at sunrise, Section 6 condition is when obtaining Cable Structure steady temperature data, " Cable Structure thickness direction maximum temperature difference " Δ T
_{tmax}be not more than 1 degree Celsius, this method utilizes abovementioned six conditions, any one in following three kinds of moment is called " the mathematics moment obtaining Cable Structure steady temperature data ", the first moment meets the moment of the Section 1 in abovementioned " condition relevant to the moment determining to obtain Cable Structure steady temperature data " to Section 5 condition, the second moment is moment of the Section 6 condition only met in abovementioned " condition relevant to determining to obtain moment of Cable Structure steady temperature data ", simultaneously the third moment meets the moment of the Section 1 in abovementioned " condition relevant to the moment determining to obtain Cable Structure steady temperature data " to Section 6 condition, when the mathematics moment obtaining Cable Structure steady temperature data is exactly one in this method in the physical record data moment, the moment obtaining Cable Structure steady temperature data is exactly the mathematics moment obtaining Cable Structure steady temperature data, if the mathematics moment obtaining Cable Structure steady temperature data is not any one moment in this method in the physical record data moment, then getting this method closest to moment of those physical record data in the mathematics moment obtaining Cable Structure steady temperature data is the moment obtaining Cable Structure steady temperature data, the amount being used in the moment survey record obtaining Cable Structure steady temperature data is carried out Cable Structure relevant health monitoring analysis by this method, this method is similar to thinks that the Cable Structure temperature field in the moment obtaining Cable Structure steady temperature data is in stable state, and namely the Cable Structure temperature in this moment does not change in time, and this moment is exactly " obtaining the moment of Cable Structure steady temperature data " of this method, then, according to Cable Structure heat transfer characteristic, utilize " R the Cable Structure surface temperature measured data " and " HBE Cable Structure is along thickness temperature measured data " in the moment obtaining Cable Structure steady temperature data, utilize the Thermodynamic calculation model of Cable Structure, the Temperature Distribution of the Cable Structure in the moment obtaining Cable Structure steady temperature data is calculated by conventional heat transfer, now the temperature field of Cable Structure calculates by stable state, the temperature profile data of the Cable Structure in the moment in acquisition Cable Structure steady temperature data calculated comprises the accounting temperature of R Cable Structure surface point in Cable Structure, the accounting temperature of R Cable Structure surface point is called that R Cable Structure steadystate surface temperature calculates data, also comprise the accounting temperature of Cable Structure selected HBE " measuring the point of Cable Structure along the temperature profile data of thickness " above, the accounting temperature of HBE " measuring the point of Cable Structure along the temperature profile data of thickness " is called " HBE Cable Structure calculates data along thickness temperature ", when R Cable Structure surface temperature measured data and R Cable Structure steadystate surface temperature calculate data correspondent equal, and when " HBE Cable Structure is along thickness temperature measured data " and " HBE Cable Structure calculates data along thickness temperature " correspondent equal, the temperature profile data of the Cable Structure in the moment in acquisition Cable Structure steady temperature data calculated is called " Cable Structure steady temperature data " in the method, " R Cable Structure surface temperature measured data " is now called " R Cable Structure steadystate surface temperature measured data ", " HBE Cable Structure is along thickness temperature measured data " is called " HBE Cable Structure is along thickness steady temperature measured data ", when the surface of Cable Structure is got " R Cable Structure surface point ", the quantity of " R Cable Structure surface point " must meet three conditions with distribution, first condition is when Cable Structure temperature field is in stable state, when the temperature of Cable Structure any point be on the surface by " R Cable Structure surface point " in obtain with the observed temperature linear interpolation of the Cable Structure point that this arbitrfary point is adjacent on the surface time, the error of the Cable Structure that linear interpolation the obtains temperature of this arbitrfary point and the Cable Structure actual temperature of this arbitrfary point on the surface is on the surface not more than 5%, Cable Structure surface comprises support cable surface, second condition is not less than 4 in the quantity of the point of same sea level elevation in " R Cable Structure surface point ", and uniform along Cable Structure surface at the point of same sea level elevation in " R Cable Structure surface point ", " R Cable Structure surface point " is not more than 0.2 DEG C divided by Δ T along the maximal value Δ h in the absolute value of all differences of the sea level elevation of adjacent Cable Structure surface point between two of sea level elevation
_{h}the numerical value obtained, gets Δ T for convenience of describing
_{h}unit be DEG C/m, be m for convenience of describing the unit getting Δ h, " R Cable Structure surface point " along the definition of the adjacent between two Cable Structure surface point of sea level elevation refer to only consider sea level elevation time, in " R Cable Structure surface point ", there is not a Cable Structure surface point, the sea level elevation numerical value of this Cable Structure surface point is between the sea level elevation numerical value of adjacent Cable Structure surface point between two, 3rd condition is inquiry or obtains the rule at sunshine between Cable Structure location and Altitude Region, place by meteorology conventionally calculation, again according to geometric properties and the bearing data of Cable Structure, Cable Structure finds the annual position by sunshineduration those surface points the most sufficient, in " R Cable Structure surface point ", has at least a Cable Structure surface point to be annual by a point in sunshineduration the most fully those surface points in Cable Structure.
The Part II of this method: the structural health conditions appraisal procedure setting up the method for knowledge base needed for cable structure health monitoring system and parameter, knowledge based storehouse (containing parameter) and the monitored amount of actual measurement.Can carry out successively as follows, to obtain the health state evaluation of evaluation object more accurately.
The first step: set up initial mechanical Calculation Basis model A
_{o}when Cable Structure is completed, or before setting up health monitoring (damaged cable identification) system, obtain " Cable Structure steady temperature data " according to " the temperature survey calculating method of the Cable Structure of this method " survey calculation (to measure by ordinary temperature measuring method, thermal resistance is such as used to measure), " Cable Structure steady temperature data " now use vector T
_{o}represent, be called initial Cable Structure steady temperature data vector Y
_{o}.T is obtained in actual measurement
_{o}while, namely at the initial Cable Structure steady temperature data vector T of acquisition
_{o}the synchronization in moment, use the direct survey calculation of conventional method to obtain the initial number of all monitored amount of Cable Structure.Initial Cable Structure steady temperature data vector T is obtained at Actual measurement
_{o}while, use conventional method (consult reference materials or survey) to obtain temperature variant physical parameter (such as thermal expansivity) and the mechanical property parameters (such as elastic modulus, Poisson ratio) of the various materials that Cable Structure uses; Initial Cable Structure steady temperature data vector T is obtained at Actual measurement
_{o}while, namely at the initial Cable Structure steady temperature data vector T of acquisition
_{o}the synchronization in moment, use conventional method Actual measurement to obtain the Actual measurement data of Cable Structure.The Actual measurement data of Cable Structure comprise the measured data such as data, Cable Structure bearing initial translation displacement measurement data, the initial geometric data of Cable Structure, rope force data, drawbar pull data, Cable Structure support coordinate data, Cable Structure modal data, structural strain data, structural point measurement data, structure space measurement of coordinates data that the Nondestructive Testing Data of support cable etc. can express the health status of rope.The initial geometric data of Cable Structure can be the spatial data that the spatial data of the end points of all ropes adds a series of point in structure, and object is the geometric properties according to these coordinate data determination Cable Structure.Cable Structure bearing initial translation displacement measurement data refer to setting up initial mechanical Calculation Basis model A
_{o}time, the translational displacement that Cable Structure bearing occurs relative to the bearing under Cable Structure design point.For cablestayed bridge, initial geometric data can be the spatial data that the spatial data of the end points of all ropes adds some points on bridge two ends, socalled bridge type data that Here it is.Utilize the Nondestructive Testing Data etc. of support cable can express the data of the health status of support cable and Cable Structure bearing initial translation displacement measurement data set up evaluation object initial damage vector d
_{o}(as the formula (1)), d is used
_{o}represent that Cable Structure is (with initial mechanical Calculation Basis model A
_{o}represent) the initial health of evaluation object.If there is no the Nondestructive Testing Data of support cable and other are when can express the data of the health status of support cable, or can think structure original state be not damaged without relaxed state time, vectorial d
_{o}in each element numerical value relevant to support cable get 0, if when there is no Cable Structure bearing initial translation displacement measurement data or can think that the displacement of Cable Structure bearing initial translation is 0, vectorial d
_{o}in each element numerical value relevant to Cable Structure bearing translational displacement get 0.The temperature variant physical and mechanical properties parameter of the various materials utilizing the measured data of the design drawing of Cable Structure, asconstructed drawing and initial Cable Structure, the Nondestructive Testing Data of support cable, Cable Structure bearing initial translation displacement measurement data, Cable Structure to use and initial Cable Structure steady temperature data vector T
_{o}, utilize mechanics method (such as finite element method) to count " Cable Structure steady temperature data " and set up initial mechanical Calculation Basis model A
_{o}.
d
_{o}=[d
_{o1}d
_{o2}···d
_{ok}···d
_{oN}]
^{T}(1)
D in formula (1)
_{ok}(k=1,2,3 ...., N) represent initial mechanical Calculation Basis model A
_{o}in the original state of a kth evaluation object, if this evaluation object is a rope (or pull bar) in cable system, so d
_{ok}represent its initial damage, d
_{ok}represent not damaged when being 0, when being 100%, represent that this rope thoroughly loses loadbearing capacity, represent the loadbearing capacity losing corresponding proportion time between 0 and 100%, if this evaluation object is translational displacement component, so a d of a bearing
_{ok}represent its initial displacement numerical value, T represents the transposition (same afterwards) of vector.
T is obtained in actual measurement
_{o}while, namely at the synchronization in the moment of acquisition Cable Structure steady temperature data, the initial value of all monitored amount of the Cable Structure using the direct survey calculation of conventional method to obtain, forms monitored amount initial value vector C
_{o}(see formula (2)).Require at acquisition A
_{o}while obtain C
_{o}, monitored amount initial value vector C
_{o}represent and correspond to A
_{o}the concrete numerical value of " monitored amount ".Because of subject to the foregoing, the Calculation Basis model based on Cable Structure calculates the monitored amount of gained reliably close to the measured data of initial monitored amount, in describing below, will represent this calculated value and measured value with prosign.
C
_{o}＝[C
_{o1}C
_{o2}···C
_{oj}···C
_{oM}]
^{T}(2)
C in formula (2)
_{oj}(j=1,2,3 ...., M) be the original bulk of jth monitored amount in Cable Structure, this component corresponds to a specific jth monitored amount according to coding rule.Vector C
_{o}be to be arranged according to a definite sequence by the monitored amount of M to form, putting in order to this there is no particular/special requirement, only requires all associated vector also array data in this order below.
No matter which kind of method to obtain initial mechanical Calculation Basis model A by
_{o}, count " Cable Structure steady temperature data " (i.e. initial Cable Structure steady temperature data vector T
_{o}), based on A
_{o}the Cable Structure that calculates calculates data must closely its measured data, and error generally must not be greater than 5%.Like this can utility A
_{o}the Suo Li calculated under the analog case of gained calculates data, strain calculation data, Cable Structure shapometer count certificate and displacement meter counts certificate, Cable Structure angledata, Cable Structure spatial data etc., measured data when reliably truly occurring close to institute's analog case.Model A
_{o}the health status evaluation object initial damage vector d of middle evaluation object
_{o}represent, the initial Cable Structure steady temperature data vector T of Cable Structure steady temperature data
_{o}represent.Due to based on A
_{o}the initial value (actual measurement obtains) of the evaluation calculating all monitored amounts closely all monitored amounts, so also can be used in A
_{o}basis on, carry out Mechanics Calculation obtains, A
_{o}the evaluation of each monitored amount form monitored amount initial value vector C
_{o}.T
_{o}and d
_{o}a
_{o}parameter, alternatively C
_{o}by A
_{o}mechanics Calculation result composition.
Second step: circulation starts.When circulation starts each time, first need the evaluation object current initial damage vector d set up or set up when this circulation starts
^{i} _{o}(i=1,2,3 ...), set up the current initial mechanical Calculation Basis model A of Cable Structure
^{i} _{o}(such as finite element benchmark model, A in circulation each time
^{i} _{o}constantly update), A
^{i} _{o}temperature Distribution " current initial Cable Structure steady temperature data vector T
^{i} _{o}" express.Letter i is except representing the place of number of steps significantly, and alphabetical i only represents cycle index in the method, i.e. ith circulation.A
_{o}and A
^{i} _{o}count temperature parameter, can the Effect on Mechanical Properties of accounting temperature change to Cable Structure.
The current initial damage vector of evaluation object that ith circulation needs when starting is designated as d
^{i} _{o}(as the formula (3)), d is used
^{i} _{o}when representing that this circulation starts, Cable Structure is (with current initial mechanical Calculation Basis model A
^{i} _{o}represent) the health status of evaluation object.
D in formula (3)
^{i} _{ok}(i=1,2,3, K=1,2,3 ...., N) represent ith time circulation start time, current initial mechanical Calculation Basis model A
^{i} _{o}in the original state of a kth evaluation object, if this evaluation object is a rope (or pull bar) in cable system, so d
^{i} _{ok}represent its initial damage, d
^{i} _{ok}represent not damaged when being 0, when being 100%, represent that this rope thoroughly loses loadbearing capacity, represent the loadbearing capacity losing corresponding proportion time between 0 and 100%, if this evaluation object is translational displacement component, so a d of a bearing
^{i} _{ok}represent its initial displacement numerical value.
Set up and upgrade d
^{i} _{o}method as follows:
When first time, circulation started, (foundation formula (3) is designated as d to set up the current initial damage vector of evaluation object
^{1} _{o}) time, d
^{1} _{o}just equal d
_{o}.Ith (i=2,3,4,5,6 ...) the secondary evaluation object current initial damage vector d needed when starting that circulates
^{i} _{o}, be front once (namely the ith1 time, i=2,3,4,5,6 ...) circulation terminate before calculate obtain, concrete grammar is described below.
Ith (i=1,2,3,4,5,6 ...) secondary circulation needs the Mechanics Calculation benchmark model set up or the Mechanics Calculation benchmark model of Cable Structure set up to be designated as current initial mechanical Calculation Basis model A when starting
^{i} _{o}.Corresponding to A
^{i} _{o}" Cable Structure steady temperature data " use vector T
^{i} _{o}represent, be called current initial Cable Structure steady temperature data vector T
^{i} _{o}.Vector T
^{i} _{o}definition mode and vector T
_{o}definition mode identical, must set up or set up and be called current initial Cable Structure steady temperature data vector T when circulation starts each time
^{i} _{o}.
Set up, upgrade A
^{i} _{o}and T
^{i} _{o}method as follows:
The Mechanics Calculation benchmark model of the Cable Structure set up when first time, circulation started is designated as A
^{1} _{o}, A
^{1} _{o}equal A
_{o}, T
^{1} _{o}equal T
_{o}.A in circulation each time
^{i} _{o}and T
^{i} _{o}be constantly update, concrete grammar is described below; At the end of circulation each time, upgrade A
^{i} _{o}and T
^{i} _{o}the Mechanics Calculation benchmark model of the Cable Structure required when starting that next time circulated, concrete grammar is described below.
This method " monitored amount current initial value vector C
^{i} _{o}" (i=1,2,3 ...) initial value (see formula (4)) of all monitored amounts of specifying when representing that ith time (i=1,2,3,4,5,6 ...) circulation starts, C
^{i} _{o}also can be called " the monitored amount that circulates for ith time current initial value vector ".
C in formula (2)
^{i} _{oj}(i=1,2,3, J=1,2,3 ...., M) be jth monitored amount when circulating beginning for ith time, in Cable Structure.Vector C
^{i} _{o}be to be arranged according to a definite sequence by the monitored amount of previously defined M to form, putting in order to this there is no particular/special requirement, only requires all associated vector also array data in this order below.
At Modling model A
^{i} _{o}while set up " monitored amount current initial value vector C
^{i} _{o}", monitored amount current initial value vector C
^{i} _{o}represent and correspond to A
^{i} _{o}the concrete numerical value of all monitored amount, C
^{i} _{o}element and C
_{o}element one_to_one corresponding, represent that all monitored amounts are in A in Cable Structure respectively
^{i} _{o}and A
_{o}concrete numerical value during two states.
Set up and upgrade C
^{i} _{o}concrete grammar as follows:
When first time, circulation started, C
^{1} _{o}(i=1, C
^{i} _{o}be embodied as C
^{1} _{o}) equal C
_{o}; Ith (i=2,3,4,5,6 ...) secondary ith circulation " the monitored amount current initial value vector C needed when starting that circulates
^{i} _{o}", be front once (namely the ith1 time, i=2,3,4,5,6 ...) circulation terminate before calculate obtain, concrete grammar is described below.Ith (i=1,2,3,4,5,6 ...) in circulation, " monitored amount current initial value vector C
^{i} _{o}" be constantly update, concrete grammar is described below.Due to according to model A
^{i} _{o}the initial value calculating gained monitored amount, reliably close to corresponding measured value, in describing below, will represent this calculated value composition of vector and measured value composition of vector with prosign.
T
^{i} _{o}and d
^{i} _{o}a
^{i} _{o}characterisitic parameter, C
^{i} _{o}a
^{i} _{o}at T
^{i} _{o}and d
^{i} _{o}mechanics Calculation result composition under condition.
3rd step: in Cable Structure military service process, in circulation each time, in other words in the ith (i=1,2,3,4,5,6 ...) in secondary circulation, at known A
^{i} _{o}, T
^{i} _{o}, C
^{i} _{o}and d
^{i} _{o}after, the current data of " Cable Structure steady temperature data " is obtained, current data composition " the current cable structure steady temperature data vector T of all " Cable Structure steady temperature data " according to " the temperature survey calculating method of the Cable Structure of this method " continuous Actual measurement
^{i}", vector T
^{i}definition mode and vector T
_{o}definition mode identical; In actual measurement vector T
^{i}while, namely at acquisition current cable structure steady temperature data vector T
^{i}the synchronization in moment, actual measurement obtains the currency of all monitored amounts in Cable Structure, and all these numerical value form monitored amount current value vector C
^{i}.C
^{i}element and C
_{o}element one_to_one corresponding, represent that identical monitored amount is at not numerical value in the same time.
In acquisition vector T
^{i}after, upgrade A according to following concrete grammar
^{i} _{o}, T
^{i} _{o}, C
^{i} _{o}and d
^{i} _{o}:
Relatively T
^{i}and T
^{i} _{o}if, T
^{i}equal T
^{i} _{o}, then do not need A
^{i} _{o}upgrade, otherwise need A
^{i} _{o}and T
^{i} _{o}upgrade, update method is: the first step calculates T
^{i}with T
_{o}difference, T
^{i}with T
_{o}difference be exactly the changes of current cable structure steady temperature data about initial Cable Structure steady temperature data, T
^{i}with T
_{o}difference represent with steady temperature change vector S, S equals T
^{i}deduct T
_{o}, S represents the change of Cable Structure steady temperature data; Second step is to A
_{o}in Cable Structure apply temperature variation, the numerical value of the temperature variation of applying just takes from steady temperature change vector S, to A
_{o}in Cable Structure apply temperature variation after obtain upgrade current initial mechanical Calculation Basis model A
^{i} _{o}, upgrade A
^{i} _{o}while, T
^{i} _{o}all elements numerical value also uses T
^{i}all elements numerical value correspondence replace, namely have updated T
^{i} _{o}, so just obtain and correctly correspond to A
^{i} _{o}t
^{i} _{o}; Now d
^{i} _{o}remain unchanged.As renewal A
^{i} _{o}after, A
^{i} _{o}the health status evaluation object of evaluation object current initial damage vector d
^{i} _{o}represent, A
^{i} _{o}cable Structure steady temperature current cable structure steady temperature data vector T
^{i}represent, obtain A by Mechanics Calculation
^{i} _{o}in all monitored amounts, current concrete numerical value, replace C with these concrete numerical value
^{i} _{o}the element of middle correspondence, so just achieves monitored amount current initial value vector C
^{i} _{o}renewal.
4th step: circulation time must first be set up " unit damage monitored numerical quantity unit change matrix " and " unit damage or unit translational displacement vector " each time, and " unit damage monitored numerical quantity unit change matrix " that ith circulation is set up is designated as Δ C
^{i}(i=1,2,3 ...)." unit damage or unit translational displacement vector " that ith circulation is set up is designated as D
^{i} _{u}.Δ C in circulation each time
^{i}and D
^{i} _{u}need according to circumstances to constantly update, namely at the current initial mechanical Calculation Basis model A of renewal
^{i} _{o}, current initial Cable Structure steady temperature data vector T
^{i} _{o}with monitored amount current initial value vector C
^{i} _{o}after, upgrade unit damage monitored numerical quantity unit change matrix Δ C
^{i}with unit damage or unit translational displacement vector D
^{i} _{u}.
First unit damage monitored numerical quantity unit change matrix Δ C is set up in the steps below when circulation starts each time
^{i}with unit damage or unit translational displacement vector D
^{i} _{u}; If have updated A in the third step
^{i} _{o}, (namely upgrading) unit damage monitored numerical quantity unit change matrix Δ C so must be reestablished in this step
^{i}with unit damage or unit translational displacement vector D
^{i} _{u}; If do not upgrade A in the third step
^{i} _{o}, unit damage monitored numerical quantity unit change matrix Δ C so need not be reestablished in this step
^{i}with unit damage or unit translational displacement vector D
^{i} _{u}; Set up and reestablish (namely upgrading) Δ C
^{i}and D
^{i} _{u}detailed process identical, arrange as follows:
At the current initial mechanical Calculation Basis model A of Cable Structure
^{i} _{o}basis on carry out several times calculating, calculation times numerically equals the quantity of all ropes.Calculate hypothesis each time to only have an evaluation object (original damage or bearing translational displacement can be 0 at original damage or bearing translational displacement, also can not be 0) basis on increase unit damage or unit translational displacement again, concrete, if this evaluation object is a support cable in cable system, so just suppose that this support cable increases unit damage again and (such as gets 5%, 10%, 20% or 30% equivalent damage is unit damage), if this evaluation object is the translational displacement component in a direction of a bearing, just suppose that this bearing increases unit translational displacement (such as 2mm again in this translational displacement direction, 5mm, 10mm etc. are unit translational displacement).For convenience of calculating, can be all structural health conditions when this circulation is started when in circulation, setting increases unit damage or unit translational displacement each time as being completely healthy, and set on this basis unit damage or unit translational displacement (in subsequent step, calculate, the damage numerical value of evaluation object or translational displacementbe called nominal fatigue d
^{i} _{c}(i=1,2,3 ...), all relative to when this circulation is started, by the health status of evaluation object as being completely healthy speech, therefore must the formula that hereinafter provides of foundation the nominal fatigue calculated is converted into true damage).With occurring in the calculating each time once circulated that the evaluation object of unit damage or unit translational displacement is different from during other time calculates the evaluation object occurring unit damage or unit translational displacement, and suppose there is unit damage value or unit translational displacement value that the unit damage value of the evaluation object of unit damage or unit translational displacement or unit translational displacement value can be different from other evaluation objects each time, with " unit damage or unit translational displacement vector D
^{i} _{u}" (as the formula (5)) record the unit damage of supposition or the unit translational displacement of all evaluation objects in each circulation, first time circulation time be designated as D
^{1} _{u}calculate the current calculated value all utilizing M that mechanics method (such as finite element method) calculates Cable Structure, that specified above monitored amount each time, the current calculated value calculating a gained M monitored amount each time forms one " monitored amount calculation current vector ", and (when supposing that a kth evaluation object has unit damage, available formula (6) represents the monitored amount calculation current vector C of all M specified a monitored amount
^{i} _{tk}); The monitored amount calculation current vector calculated each time deducts monitored amount current initial value vector C
^{i} _{o}, gained vector is exactly that " the numerical value change vector of monitored amount " of (to have the position of the rope of unit damage or numbering etc. for mark) (when a kth evaluation object has unit damage, uses δ C under this condition
^{i} _{k}represent the numerical value change vector of monitored amount, δ C
^{i} _{k}definition see formula (7), formula (8) and formula (9), formula (7) deducts after formula (4) again divided by vectorial D for formula (6)
^{i} _{u}a kth element D
^{i} _{uk}gained), the numerical value change vector δ C of monitored amount
^{i} _{k}each element representation owing to suppose there is unit damage or unit translational displacement (the such as D of that evaluation object (such as a kth evaluation object) of unit damage or unit translational displacement when calculating
^{i} _{uk}), and the numerical value knots modification of monitored amount corresponding to this element caused is relative to the unit damage of supposition or unit translational displacement numerical value D
^{i} _{uk}rate of change; N number of evaluation object is had just to have N number of " the numerical value change vector of monitored amount ", the numerical value change vector of each monitored amount has M element, forms by this N number of " numerical value change vector of monitored amount " " the unit damage monitored numerical quantity unit change matrix Δ C having M × N number of element successively
^{i}" (the capable N row of M), each vectorial δ C
^{i} _{k}(k=1,2,3 ...., N) be matrix Δ C
^{i}row, Δ C
^{i}definition as the formula (10).
Unit damage or unit translational displacement vector D in formula (5)
^{i} _{u}element D
^{i} _{uk}(i=1,2,3, K=1,2,3 ...., N) represent the unit damage of a kth evaluation object or the unit translational displacement numerical value of supposition in ith circulation, vectorial D
^{i} _{u}in the numerical value of each element can be the same or different.
Elements C in formula (6)
^{i} _{tkj}(i=1,2,3, K=1,2,3 ...., N; J=1,2,3 ...., M) represent ith circulation due to a kth evaluation object have unit damage or a unit translational displacement time, according to the calculating current value of the individual monitored amount of specifying of the jth corresponding to coding rule.
The subscript i(i=1 of each amount in formula (7), 2,3 ...) represent ith circulation, subscript k(k=1,2,3 ...., N) represent the unit damage that a kth evaluation object increases or unit translational displacement, D in formula
^{i} _{uk}vectorial D
^{i} _{u}in a kth element.Vector δ C
^{i} _{k}definition such as formula shown in (7) and formula (8), δ C
^{i} _{k}jth (j=1,2,3 ...., M) individual element δ C
^{i} _{kj}(definition as the formula (9)) represents in ith circulation, sets up matrix Δ C
^{i}time, assuming that a kth evaluation object has the knots modification calculating a gained jth monitored amount when unit damage or unit translational displacement relative to the unit damage supposed or unit translational displacement D
^{i} _{uk}rate of change.
Vectorial δ C in formula (10)
^{i} _{k}(i=1,2,3 ...., k=1,2,3 ...., N) represent in ith circulation, because a kth evaluation object increases unit damage or unit translational displacement D
^{i} _{uk}cause, the change of the relative value of all monitored amounts.Matrix Δ C
^{i}the coding rule of row (subscript k) and vectorial d above
^{i} _{o}the coding rule of subscript k of element identical.
5th step: the current health state identifying Cable Structure.Detailed process is as follows.
Ith (i=1,2,3 ...) in secondary circulation, utilize " the monitored amount current value vector C obtained in second step actual measurement
^{i}" " monitored amount current initial value vector C together
^{i} _{o}", " unit damage monitored numerical quantity unit change matrix Δ C
^{i}" and " current nominal fatigue vector d
^{i} _{c}" between linear approximate relationship, shown in (11) or formula (12).
Monitored amount current value vector C in formula (11) and formula (12)
^{i}definition be similar to monitored amount current initial value vector C
^{i} _{o}definition, see formula (13); Evaluation object current nominal fatigue vector d
^{i} _{c}definition see formula (14).
Elements C in formula (13)
^{i} _{j}(i=1,2,3 ....; J=1,2,3 ...., M) be ith circulation time Cable Structure, the current value that be numbered the monitored amount of j of foundation corresponding to coding rule.
D in formula (14)
^{i} _{ck}(i=1,2,3 ....; K=1,2,3 ...., N) be the current nominal fatigue of a kth evaluation object in ith circulation or current nominal translational displacement value, vectorial d
^{i} _{c}the coding rule of subscript k of element and matrix Δ C
^{i}the coding rule of row identical.
When support cable actual damage is not too large, bearing translational displacement is less, because Cable Structure material is still in the linear elasticity stage, the distortion of Cable Structure is also less, formula (11) or a kind of like this linear relationship represented by formula (12) less with the error of actual conditions, error can use error vector e
^{i}(formula (15)) define, the error of expression (11) or the shown linear relationship of formula (12).
In formula (15), abs () is the function that takes absolute value, and takes absolute value to each element of the vector of trying to achieve in bracket.
There is certain error in the linear relationship represented by formula (11) or formula (12), therefore can not simply according to formula (11) or formula (12) and " monitored amount current value vector C
^{i}" carry out direct solution and obtain evaluation object current nominal fatigue vector d
^{i} _{c}.If this has been doned, the evaluation object obtained current nominal fatigue vector d
^{i} _{c}in element even there will be larger negative value, namely negative damage, this is obviously irrational.Therefore evaluation object current nominal fatigue vector d is obtained
^{i} _{c}acceptable solution (namely with reasonable error, but position and the degree of injury thereof of damaged cable can be determined more exactly from cable system, also can determine bearing translational displacement numerical value more exactly) become a rational solution, available formula (16) expresses this method.
In formula (16), abs () is the function that takes absolute value, and vectorial gi describes the legitimate skew departing from ideal linearity relation (formula (11) or formula (12)), is defined by formula (17).
G in formula (17)
^{i} _{j}(i=1,2,3 ....; J=1,2,3 ...., M) describe the maximum allowable offset departing from formula (11) or the ideal linearity relation shown in formula (12) in ith circulation.Vector g
^{i}the error vector e that can define according to formula (15)
^{i}tentative calculation is selected.
At monitored amount current initial value vector C
^{i} _{o}, unit damage monitored numerical quantity unit change matrix Δ C
^{i}with monitored amount current value vector C
^{i}time known, suitable algorithm (such as multiobjective optimization algorithm) can be utilized to solve formula (16), obtain evaluation object current nominal fatigue vector d
^{i} _{c}acceptable solution, cable system current actual damage vector d
^{i}the element of (formula (18) is shown in definition) can calculate according to formula (19), thus can by d
^{i}determine the health status of evaluation object.
D in formula (18)
^{i} _{k}(i=1,2,3, K=1,2,3 ...., N) represent the current actual health status of a kth evaluation object in ith circulation, formula (19) is shown in its definition, if this evaluation object is a support cable (or pull bar) in cable system, so d
^{i} _{k}represent its current actual damage, d
^{i} _{k}represent not damaged when being 0, when being 100%, represent that this support cable thoroughly loses loadbearing capacity, represent the loadbearing capacity losing corresponding proportion time between 0 and 100%, if this evaluation object is translational displacement component, so a d of a bearing
^{i} _{k}represent its current actual translational displacement numerical value, vectorial d
^{i}the coding rule of element and formula (1) in vectorial d
_{o}the coding rule of element identical.
D in formula (19)
^{i} _{ok}(i=1,2,3,4, K=1,2,3 ...., N) be evaluation object current initial damage vector d
^{i} _{o}a kth element, d
^{i} _{ck}evaluation object current nominal fatigue vector d
^{i} _{c}a kth element.
6th step: judge whether to terminate this (ith time) circulation, if so, then completes this tailing in work before terminating that circulates, for next time (namely the ith+1 time, i=1,2,3,4 ...) circulating prepares Mechanics Calculation benchmark model and necessary vector.Detailed process is as follows:
Current nominal fatigue vector d is tried to achieve in this (ith time) circulation
^{i} _{c}after, first, set up mark vector B according to formula (20)
^{i}, formula (21) gives mark vector B
^{i}the definition of a kth element; If mark vector B
^{i}element be 0 entirely, then get back to the 3rd step and proceed health monitoring to Cable Structure and calculating; If mark vector B
^{i}element be not 0, then after completing subsequent step entirely, enter and circulate next time.
Socalled subsequent step is: first, according to formula (22) calculate next time (namely the ith+1 time, i=1,2,3,4 ...) needed for circulation initial damage vector d
^{i+1} _{o}each element d
^{i+1} _{ok}; The second, at Mechanics Calculation benchmark model A
_{o}basis on, make A
_{o}in the health status of evaluation object be d
^{i+1} _{o}instead of be d
_{o}after, more further to A
_{o}in Cable Structure apply temperature variation (as previously mentioned, the numerical value of the temperature variation of applying just takes from steady temperature change vector S, and steady temperature change vector S equals T
^{i}deduct T
_{o}), so just obtain next time (namely the ith+1 time, i=1,2,3,4 ...) current initial mechanical Calculation Basis mould A needed for circulation
^{i+1} _{o}, next time (namely the ith+1 time, i=1,2,3,4 ...) current initial Cable Structure steady temperature data vector T needed for circulation
^{i+1} _{o}equal T
^{i} _{o}, to A
^{i+1} _{o}carry out Mechanics Calculation to obtain corresponding to A
^{i+1} _{o}all monitored amount, current concrete numerical value, these concrete numerical value compositions next time (namely the ith+1 time, i=1,2,3,4 ...) the current initial value vector C of monitored amount needed for circulation
^{i+1} _{o}.
Mark vector B in formula (20)
^{i}subscript i represent ith circulation, its element B
^{i} _{k}(k=1,2,3 ..., N) subscript k represent the health status feature of a kth evaluation object, can only get 0 and 1 two amount, concrete value rule is shown in formula (21).
Element B in formula (21)
^{i} _{k}mark vector B
^{i}a kth element, D
^{i} _{uk}unit damage or unit translational displacement vector D
^{i} _{u}a kth element (see formula (3)), d
^{i} _{ck}evaluation object current nominal fatigue vector d
^{i} _{c}a kth element (see formula (14)), they all represent the relevant information of a kth evaluation object.
D in formula (22)
^{i} _{uk}unit damage or unit translational displacement vector D
^{i} _{u}a kth element (see formula (5)), d
^{i} _{ok}evaluation object current initial damage vector d
^{i} _{o}a kth element (see formula (3)).
The Part III of this method: the software and hardware part of health monitoring systems.
Hardware components comprises monitoring system (comprising monitored amount monitoring system, temperature monitoring system), signal picker and computing machine etc.Require that RealTime Monitoring obtains temperature required measured data, require each monitored amount of RealTime Monitoring simultaneously.
Software section should complete the process set by this method, namely to complete in this method required, can by functions such as computer implemented monitoring, record, control, storage, calculating, notice, warnings.
This method specifically comprises:
A. for sake of convenience, this method unitedly calls evaluated support cable and bearing translational displacement component to be evaluation object, if the quantity sum of the quantity of evaluated support cable and bearing translational displacement component is N, namely the quantity of evaluation object is N; Determine the coding rule of evaluation object, evaluation objects all in Cable Structure numbered by this rule, this numbering will be used for generating vector sum matrix in subsequent step; This method variable k represents this numbering, k=1,2,3 ..., N; Determine to specify by the measured point of monitored volume coordinate, number to all specified points; Determined each measurement point by monitored volume coordinate component, to all measured volume coordinate component numberings; Abovementioned numbering will be used for generating vector sum matrix in subsequent step; " the whole monitored spatial data of Cable Structure " is made up of abovementioned all measured volume coordinate components; For simplicity, in the method " the monitored spatial data of Cable Structure " is called " monitored amount "; The quantity sum of all monitored amounts is designated as M, and M must not be less than N; Must not be greater than 30 minutes to the time interval between any twice measurement of same amount RealTime Monitoring in this method, the moment of survey record data is called the physical record data moment;
B. this method definition " the temperature survey calculating method of the Cable Structure of this method " is undertaken by step b1 to b3;
B1: inquiry or actual measurement obtain the temperature variant thermal conduction study parameter of environment residing for Cable Structure composition material and Cable Structure, utilize the geometry measured data of the design drawing of Cable Structure, asconstructed drawing and Cable Structure, utilize these data and parameter to set up the Thermodynamic calculation model of Cable Structure, inquiry Cable Structure location is no less than the meteorological data in recent years of 2 years, the statistics cloudy quantity obtained is during this period of time designated as T cloudy day, in the method daytime can not be seen one of the sun and be called the cloudy day all day, statistics obtains 0 highest temperature after sunrise moment next day between 30 minutes and the lowest temperature at each cloudy day in T cloudy day, the sunrise moment refers to the sunrise moment on the meteorology that base area revolutions and revolution rule are determined, do not represent that the same day necessarily can see the sun, data can be inquired about or calculated sunrise moment of each required day by conventional meteorology, 0 highest temperature after sunrise moment next day between 30 minutes at each cloudy day deducts the maximum temperature difference that the lowest temperature is called the daily temperature at this cloudy day, there is T cloudy day, just there is the maximum temperature difference of the daily temperature at T cloudy day, the maximal value of getting in the maximum temperature difference of the daily temperature at T cloudy day is reference temperature difference per day, Δ T is designated as with reference to temperature difference per day
_{r}, be no less than between inquiry Cable Structure location and Altitude Region, place temperature that the meteorological data in recent years of 2 years or actual measurement obtain environment residing for Cable Structure in time with delta data and the Changing Pattern of sea level elevation, calculate to be no less than 2 years between Cable Structure location and Altitude Region, place Cable Structure in recent years residing for the temperature of environment about the maximum rate of change Δ T of sea level elevation
_{h}, get Δ T for convenience of describing
_{h}unit be DEG C/m, the surface of Cable Structure is got " R Cable Structure surface point ", the Specific Principles getting " R Cable Structure surface point " describes in step b3, the temperature of this R Cable Structure surface point will be obtained below by actual measurement, claiming to survey the temperature data obtained is " R Cable Structure surface temperature measured data ", if utilize the Thermodynamic calculation model of Cable Structure, obtained the temperature of this R Cable Structure surface point by Calculation of Heat Transfer, just claim the temperature data that calculates for " R Cable Structure land surface pyrometer count certificate ", from the minimum height above sea level residing for Cable Structure to most High aititude, in Cable Structure, uniform choosing is no less than three different sea level elevations, at the sea level elevation place that each is chosen, two points are at least chosen at the intersection place on surface level and Cable Structure surface, from the outer normal of selected point straw line body structure surface, all outer normal directions chosen are called " measuring the direction of Cable Structure along the Temperature Distribution of wall thickness ", measure Cable Structure crossing with " intersection on surface level and Cable Structure surface " along the direction of the Temperature Distribution of wall thickness, in in the shade the outer normal direction of the measurement Cable Structure chosen along the sunny slope outer normal direction and Cable Structure that must comprise Cable Structure in the direction of the Temperature Distribution of wall thickness, three points are no less than along each measurement Cable Structure along direction uniform choosing in Cable Structure of the Temperature Distribution of wall thickness, especially, along each, Cable Structure is measured for support cable and only gets a point along the direction of the Temperature Distribution of wall thickness, namely the temperature of the surface point of support cable is only measured, measure all temperature be selected a little, the temperature recorded is called " Cable Structure is along the temperature profile data of thickness ", wherein along crossing with same " intersection on surface level and Cable Structure surface ", " measure the direction of Cable Structure along the Temperature Distribution of wall thickness " to measure " Cable Structure is along the temperature profile data of thickness " that obtain, be called in the method " identical sea level elevation Cable Structure is along the temperature profile data of thickness ", if have chosen the individual different sea level elevation of H, at each sea level elevation place, have chosen B and measure the direction of Cable Structure along the Temperature Distribution of wall thickness, in Cable Structure, E point is have chosen along each measurement Cable Structure along the direction of the Temperature Distribution of wall thickness, wherein H and E is not less than 3, B is not less than 2, especially, 1 is equaled for support cable E, what meter Cable Structure " measured the point of Cable Structure along the temperature profile data of thickness " adds up to HBE, the temperature of this HBE " measuring the point of Cable Structure along the temperature profile data of thickness " will be obtained below by actual measurement, claiming to survey the temperature data obtained is " HBE Cable Structure is along thickness temperature measured data ", if utilize the Thermodynamic calculation model of Cable Structure, obtain this HBE by Calculation of Heat Transfer and measure the temperature of Cable Structure along the point of the temperature profile data of thickness, the temperature data calculated just is claimed to be " HBE Cable Structure calculates data along thickness temperature ", the number temperature profile data at sea level elevation place " identical sea level elevation Cable Structure is along the temperature profile data of thickness " will chosen at each in this method ", measure temperature in Cable Structure location according to meteorology to require to choose a position, obtain meeting the temperature that meteorology measures the Cable Structure place environment of temperature requirement by the actual measurement of this position, in the onsite spaciousness of Cable Structure, unobstructed place chooses a position, this position should each of the whole year day can obtain this ground the most sufficient sunshine of this day getable, at the flat board of this position of sound production one piece of carbon steel material, be called reference plate, reference plate can not contact with ground, reference plate overhead distance is not less than 1.5 meters, the one side of this reference plate on the sunny side, be called sunny slope, the sunny slope of reference plate is coarse with dark color, the sunny slope of reference plate should each of the whole year day can obtain one flat plate on this ground the most sufficient sunshine of this day getable, the nonsunny slope of reference plate is covered with insulation material, RealTime Monitoring is obtained the temperature of the sunny slope of reference plate,
B2: RealTime Monitoring obtains R Cable Structure surface temperature measured data of abovementioned R Cable Structure surface point, RealTime Monitoring obtains the temperature profile data of previously defined Cable Structure along thickness simultaneously, and RealTime Monitoring obtains meeting the temperature record that meteorology measures the Cable Structure place environment of temperature requirement simultaneously, the temperature measured data sequence of the Cable Structure place environment after sunrise moment next day between 30 minutes is obtained being carved at sunrise the same day by RealTime Monitoring, the temperature measured data sequence of Cable Structure place environment is arranged according to time order and function order by the temperature measured data of the Cable Structure place environment after being carved into the sunrise moment next day same day at sunrise between 30 minutes, find the maximum temperature in the temperature measured data sequence of Cable Structure place environment and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains Cable Structure place environment after sunrise moment next day between 30 minutes is deducted by the maximum temperature in the temperature measured data sequence of Cable Structure place environment, be called environment maximum temperature difference, be designated as Δ T
_{emax}, calculated the rate of change of temperature about the time of Cable Structure place environment by Conventional mathematical by the temperature measured data sequence of Cable Structure place environment, this rate of change is also along with time variations, the measured data sequence of the temperature of the sunny slope of the reference plate after sunrise moment next day between 30 minutes is obtained being carved at sunrise the same day by RealTime Monitoring, the measured data sequence of the temperature of the sunny slope of reference plate is arranged according to time order and function order by the measured data of the temperature of the sunny slope of the reference plate after being carved into the sunrise moment next day same day at sunrise between 30 minutes, find the maximum temperature in the measured data sequence of the temperature of the sunny slope of reference plate and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains the temperature of the sunny slope of reference plate after sunrise moment next day between 30 minutes is deducted by the maximum temperature in the measured data sequence of the temperature of the sunny slope of reference plate, be called reference plate maximum temperature difference, be designated as Δ T
_{pmax}, the Cable Structure surface temperature measured data sequence of all R Cable Structure surface points after sunrise moment next day between 30 minutes is obtained being carved at sunrise the same day by RealTime Monitoring, R Cable Structure surface point is had just to have R Cable Structure surface temperature measured data sequence, each Cable Structure surface temperature measured data sequence is arranged according to time order and function order by the Cable Structure surface temperature measured data after being carved into the sunrise moment next day same day of a Cable Structure surface point at sunrise between 30 minutes, find the maximum temperature in each Cable Structure surface temperature measured data sequence and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains the temperature of each Cable Structure surface point after sunrise moment next day between 30 minutes is deducted by the maximum temperature in each Cable Structure surface temperature measured data sequence, there is R Cable Structure surface point just to have to be carved at sunrise R the same day maximum temperature difference numerical value between 30 minutes after sunrise moment next day, maximal value is wherein called Cable Structure surface maximum temperature difference, be designated as Δ T
_{smax}, calculated the rate of change of temperature about the time of each Cable Structure surface point by Conventional mathematical by each Cable Structure surface temperature measured data sequence, the temperature of each Cable Structure surface point about the rate of change of time also along with time variations, obtain being carved at sunrise the same day after sunrise moment next day between 30 minutes by RealTime Monitoring, at synchronization, after HBE " Cable Structure is along the temperature profile data of thickness ", calculate the difference amounting to maximum temperature in BE " identical sea level elevation Cable Structure is along the temperature profile data of thickness " and minimum temperature at the sea level elevation place that each is chosen, the absolute value of this difference is called " identical sea level elevation place Cable Structure thickness direction maximum temperature difference ", have chosen H different sea level elevation just to have H " identical sea level elevation place Cable Structure thickness direction maximum temperature difference ", the maximal value in this H " identical sea level elevation place Cable Structure thickness direction maximum temperature difference " is claimed to be " Cable Structure thickness direction maximum temperature difference ", be designated as Δ T
_{tmax},
B3: survey calculation obtains Cable Structure steady temperature data, first, determine the moment obtaining Cable Structure steady temperature data, the condition relevant to the moment determining to obtain Cable Structure steady temperature data has six, Section 1 condition is moment of obtaining Cable Structure steady temperature data between after being carved into sunrise moment next day at sunset between 30 minutes on same day, the sunset moment refers to the sunset moment on base area revolutions and the meteorology determined of revolution rule, can inquire about data or be calculated sunset moment of each required day by conventional meteorology, the a condition of Section 2 condition be after being carved into sunrise moment next day at sunrise between 30 minutes on same day during this period of time in, reference plate maximum temperature difference Δ T
_{pmax}with Cable Structure surface maximum temperature difference Δ T
_{smax}all be not more than 5 degrees Celsius, the b condition of Section 2 condition be after being carved into sunrise moment next day at sunrise between 30 minutes on same day during this period of time in, the environment maximum error Δ T that survey calculation obtains above
_{emax}be not more than with reference to temperature difference per day Δ T
_{r}, and reference plate maximum temperature difference Δ T
_{pmax}Δ T is not more than after deducting 2 degrees Celsius
_{emax}, and Cable Structure surface maximum temperature difference Δ T
_{smax}be not more than Δ T
_{pmax}, one of only need meet in a condition of Section 2 and b condition is just called and meets Section 2 condition, Section 3 condition is when obtaining Cable Structure steady temperature data, and the temperature of Cable Structure place environment is not more than 0.1 degree Celsius per hour about the absolute value of the rate of change of time, Section 4 condition is when obtaining Cable Structure steady temperature data, and the temperature of each the Cable Structure surface point in R Cable Structure surface point is not more than 0.1 degree Celsius per hour about the absolute value of the rate of change of time, Section 5 condition is when obtaining Cable Structure steady temperature data, and the Cable Structure surface temperature measured data of each the Cable Structure surface point in R Cable Structure surface point is be carved into the minimal value after sunrise moment next day between 30 minutes the same day at sunrise, Section 6 condition is when obtaining Cable Structure steady temperature data, " Cable Structure thickness direction maximum temperature difference " Δ T
_{tmax}be not more than 1 degree Celsius, this method utilizes abovementioned six conditions, any one in following three kinds of moment is called " the mathematics moment obtaining Cable Structure steady temperature data ", the first moment meets the moment of the Section 1 in abovementioned " condition relevant to the moment determining to obtain Cable Structure steady temperature data " to Section 5 condition, the second moment is moment of the Section 6 condition only met in abovementioned " condition relevant to determining to obtain moment of Cable Structure steady temperature data ", simultaneously the third moment meets the moment of the Section 1 in abovementioned " condition relevant to the moment determining to obtain Cable Structure steady temperature data " to Section 6 condition, when the mathematics moment obtaining Cable Structure steady temperature data is exactly one in this method in the physical record data moment, the moment obtaining Cable Structure steady temperature data is exactly the mathematics moment obtaining Cable Structure steady temperature data, if the mathematics moment obtaining Cable Structure steady temperature data is not any one moment in this method in the physical record data moment, then getting this method closest to moment of those physical record data in the mathematics moment obtaining Cable Structure steady temperature data is the moment obtaining Cable Structure steady temperature data, the amount being used in the moment survey record obtaining Cable Structure steady temperature data is carried out Cable Structure relevant health monitoring analysis by this method, this method is similar to thinks that the Cable Structure temperature field in the moment obtaining Cable Structure steady temperature data is in stable state, and namely the Cable Structure temperature in this moment does not change in time, and this moment is exactly " obtaining the moment of Cable Structure steady temperature data " of this method, then, according to Cable Structure heat transfer characteristic, utilize " R the Cable Structure surface temperature measured data " and " HBE Cable Structure is along thickness temperature measured data " in the moment obtaining Cable Structure steady temperature data, utilize the Thermodynamic calculation model of Cable Structure, the Temperature Distribution of the Cable Structure in the moment obtaining Cable Structure steady temperature data is calculated by conventional heat transfer, now the temperature field of Cable Structure calculates by stable state, the temperature profile data of the Cable Structure in the moment in acquisition Cable Structure steady temperature data calculated comprises the accounting temperature of R Cable Structure surface point in Cable Structure, the accounting temperature of R Cable Structure surface point is called that R Cable Structure steadystate surface temperature calculates data, also comprise the accounting temperature of Cable Structure selected HBE " measuring the point of Cable Structure along the temperature profile data of thickness " above, the accounting temperature of HBE " measuring the point of Cable Structure along the temperature profile data of thickness " is called " HBE Cable Structure calculates data along thickness temperature ", when R Cable Structure surface temperature measured data and R Cable Structure steadystate surface temperature calculate data correspondent equal, and when " HBE Cable Structure is along thickness temperature measured data " and " HBE Cable Structure calculates data along thickness temperature " correspondent equal, the temperature profile data of the Cable Structure in the moment in acquisition Cable Structure steady temperature data calculated is called " Cable Structure steady temperature data " in the method, " R Cable Structure surface temperature measured data " is now called " R Cable Structure steadystate surface temperature measured data ", " HBE Cable Structure is along thickness temperature measured data " is called " HBE Cable Structure is along thickness steady temperature measured data ", when the surface of Cable Structure is got " R Cable Structure surface point ", the quantity of " R Cable Structure surface point " must meet three conditions with distribution, first condition is when Cable Structure temperature field is in stable state, when the temperature of Cable Structure any point be on the surface by " R Cable Structure surface point " in obtain with the observed temperature linear interpolation of the Cable Structure point that this arbitrfary point is adjacent on the surface time, the error of the Cable Structure that linear interpolation the obtains temperature of this arbitrfary point and the Cable Structure actual temperature of this arbitrfary point on the surface is on the surface not more than 5%, Cable Structure surface comprises support cable surface, second condition is not less than 4 in the quantity of the point of same sea level elevation in " R Cable Structure surface point ", and uniform along Cable Structure surface at the point of same sea level elevation in " R Cable Structure surface point ", " R Cable Structure surface point " is not more than 0.2 DEG C divided by Δ T along the maximal value Δ h in the absolute value of all differences of the sea level elevation of adjacent Cable Structure surface point between two of sea level elevation
_{h}the numerical value obtained, gets Δ T for convenience of describing
_{h}unit be DEG C/m, be m for convenience of describing the unit getting Δ h, " R Cable Structure surface point " along the definition of the adjacent between two Cable Structure surface point of sea level elevation refer to only consider sea level elevation time, in " R Cable Structure surface point ", there is not a Cable Structure surface point, the sea level elevation numerical value of this Cable Structure surface point is between the sea level elevation numerical value of adjacent Cable Structure surface point between two, 3rd condition is inquiry or obtains the rule at sunshine between Cable Structure location and Altitude Region, place by meteorology conventionally calculation, again according to geometric properties and the bearing data of Cable Structure, Cable Structure finds the annual position by sunshineduration those surface points the most sufficient, in " R Cable Structure surface point ", has at least a Cable Structure surface point to be annual by a point in sunshineduration the most fully those surface points in Cable Structure,
C. the Cable Structure steady temperature data under original state are obtained according to " the temperature survey calculating method of the Cable Structure of this method " direct survey calculation, Cable Structure steady temperature data under original state are called initial Cable Structure steady temperature data, are designated as " initial Cable Structure steady temperature data vector T
_{o}"; Survey or consult reference materials and obtain the temperature variant physical and mechanical properties parameter of the various materials that Cable Structure uses; T is obtained in actual measurement
_{o}while, namely at the initial Cable Structure steady temperature data vector T of acquisition
_{o}the synchronization in moment, direct survey calculation obtains the measured data of initial Cable Structure, and the measured data of initial Cable Structure comprises the Nondestructive Testing Data of the health status expressing support cable, Cable Structure bearing initial translation displacement measurement data, the initial value of all monitored amounts, the Initial cable force data of all support cables, initial Cable Structure modal data, initial Cable Structure strain data, initial Cable Structure geometric data, initial Cable Structure support coordinate data, initial Cable Structure angledata, initial Cable Structure spatial data; The initial value of all monitored amounts forms monitored amount initial value vector C
_{o}, monitored amount initial value vector C
_{o}the coding rule of coding rule and M monitored amount identical; Utilization can express the Nondestructive Testing Data of the health status of support cable and Cable Structure bearing initial translation displacement measurement data set up evaluation object initial damage vector d
_{o}, vectorial d
_{o}represent with initial mechanical Calculation Basis model A
_{o}the initial health of the evaluation object of the Cable Structure represented; Evaluation object initial damage vector d
_{o}element number equal N, d
_{o}element and evaluation object be onetoone relationship, vectorial d
_{o}the coding rule of element identical with the coding rule of evaluation object; If d
_{o}evaluation object corresponding to some elements be support cable, so a d in cable system
_{o}the numerical value of this element represent the initial damage degree of corresponding support cable, if the numerical value of this element is 0, represent that the support cable corresponding to this element is intact, do not damage, if its numerical value is 100%, then represent that the support cable corresponding to this element completely loses loadbearing capacity, if its numerical value is between 0 and 100%, then represent that this support cable loses the loadbearing capacity of corresponding proportion; If d
_{o}evaluation object corresponding to some elements be some translational displacement components of some bearings, so d
_{o}the numerical value of this element represent the initial value of this translational displacement component of this bearing; If there is no the Nondestructive Testing Data of support cable and other are when can express the data of the health status of support cable, or can think structure original state be not damaged without relaxed state time, vectorial d
_{o}in each element numerical value relevant to support cable get 0, if when there is no Cable Structure bearing initial translation displacement measurement data or can think that the displacement of Cable Structure bearing initial translation is 0, vectorial d
_{o}in each element numerical value relevant to Cable Structure bearing translational displacement get 0; Initial Cable Structure support coordinate data refer to the support coordinate data under Cable Structure design point, and Cable Structure bearing initial translation displacement measurement data refer to setting up initial mechanical Calculation Basis model A
_{o}time, the translational displacement that Cable Structure bearing occurs relative to the bearing under Cable Structure design point;
Temperature variant physical and mechanical properties parameter, the initial Cable Structure steady temperature data vector T of the various materials d. used according to the measured data of the design drawing of Cable Structure, asconstructed drawing and initial Cable Structure, the Nondestructive Testing Data of support cable, Cable Structure bearing initial translation displacement measurement data, Cable Structure
_{o}with all Cable Structure data obtained with preceding step, set up the initial mechanical Calculation Basis model A counting the Cable Structure of " Cable Structure steady temperature data "
_{o}, based on A
_{o}the Cable Structure that calculates calculates data must closely its measured data, and difference therebetween must not be greater than 5%; Corresponding to A
_{o}" Cable Structure steady temperature data " be exactly " initial Cable Structure steady temperature data vector T
_{o}"; Corresponding to A
_{o}evaluation object health status with evaluation object initial damage vector d
_{o}represent; Corresponding to A
_{o}the initial value monitored amount initial value vector C of all monitored amount
_{o}represent; T
_{o}and d
_{o}a
_{o}parameter, by A
_{o}the initial value of all monitored amount that obtains of Mechanics Calculation result and C
_{o}the initial value of all monitored amount represented is identical, therefore alternatively C
_{o}by A
_{o}mechanics Calculation result composition, A in the method
_{o}, C
_{o}, d
_{o}and T
_{o}constant;
E. in the method, alphabetical i is except representing the place of number of steps significantly, and alphabetical i only represents cycle index, i.e. ith circulation; Ith circulation needs the current initial mechanical Calculation Basis model of Cable Structure that is that set up or that set up to be designated as current initial mechanical Calculation Basis model A when starting
^{i} _{o}, A
_{o}and A
^{i} _{o}count temperature parameter, can the Effect on Mechanical Properties of accounting temperature change to Cable Structure; When ith circulation starts, corresponding to A
^{i} _{o}" Cable Structure steady temperature data " with current initial Cable Structure steady temperature data vector T
^{i} _{o}represent, vector T
^{i} _{o}definition mode and vector T
_{o}definition mode identical, T
^{i} _{o}element and T
_{o}element one_to_one corresponding; The current initial damage vector of evaluation object that ith circulation needs when starting is designated as d
^{i} _{o}, d
^{i} _{o}cable Structure A when representing that this circulation starts
^{i} _{o}the health status of evaluation object, d
^{i} _{o}definition mode and d
_{o}definition mode identical, d
^{i} _{o}element and d
_{o}element one_to_one corresponding; When ith circulation starts, the initial value of all monitored amounts, with monitored amount current initial value vector C
^{i} _{o}represent, vectorial C
^{i} _{o}definition mode and vectorial C
_{o}definition mode identical, C
^{i} _{o}element and C
_{o}element one_to_one corresponding, monitored amount current initial value vector C
^{i} _{o}represent and correspond to A
^{i} _{o}the concrete numerical value of all monitored amount; T
^{i} _{o}and d
^{i} _{o}a
^{i} _{o}characterisitic parameter, C
^{i} _{o}by A
^{i} _{o}mechanics Calculation result composition; When first time, circulation started, A
^{i} _{o}be designated as A
^{1} _{o}, set up A
^{1} _{o}method for making A
^{1} _{o}equal A
_{o}; When first time, circulation started, T
^{i} _{o}be designated as T
^{1} _{o}, set up T
^{1} _{o}method for making T
^{1} _{o}equal T
_{o}; When first time, circulation started, d
^{i} _{o}be designated as d
^{1} _{o}, set up d
^{1} _{o}method for making d
^{1} _{o}equal d
_{o}; When first time, circulation started, C
^{i} _{o}be designated as C
^{1} _{o}, set up C
^{1} _{o}method for making C
^{1} _{o}equal C
_{o};
F. from entering the circulation being walked to q step by f here; In structure military service process, the current data of Cable Structure steady temperature data is obtained, the current data composition current cable structure steady temperature data vector T of all " Cable Structure steady temperature data " according to " the temperature survey calculating method of the Cable Structure of this method " continuous Actual measurement
^{i}, vector T
^{i}definition mode and vector T
_{o}definition mode identical, T
^{i}element and T
_{o}element one_to_one corresponding; Vector T is obtained in actual measurement
^{i}while, actual measurement obtains at acquisition current cable structure steady temperature data vector T
^{i}moment synchronization Cable Structure in the currency of all monitored amounts, all these numerical value form monitored amount current value vector C
^{i}, vectorial C
^{i}definition mode and vectorial C
_{o}definition mode identical, C
^{i}element and C
_{o}element one_to_one corresponding, represent that identical monitored amount is at not numerical value in the same time;
G. according to current cable structure steady temperature data vector T
^{i}, upgrade current initial mechanical Calculation Basis model A according to step g 1 to g3
^{i} _{o}, monitored amount current initial value vector C
^{i} _{o}with current initial Cable Structure steady temperature data vector T
^{i} _{o}, and evaluation object current initial damage vector d
^{i} _{o}remain unchanged;
G1. T is compared
^{i}with T
^{i} _{o}if, T
^{i}equal T
^{i} _{o}, then A
^{i} _{o}, C
^{i} _{o}and T
^{i} _{o}remain unchanged; Otherwise need to follow these steps to A
^{i} _{o}and T
^{i} _{o}upgrade;
G2. T is calculated
^{i}with T
_{o}difference, T
^{i}with T
_{o}difference be exactly the changes of current cable structure steady temperature data about initial Cable Structure steady temperature data, T
^{i}with T
_{o}difference represent with steady temperature change vector S, S equals T
^{i}deduct T
_{o}, S represents the change of Cable Structure steady temperature data;
G3. to A
_{o}in Cable Structure apply temperature variation, the numerical value of the temperature variation of applying just takes from steady temperature change vector S, to A
_{o}in Cable Structure apply temperature variation after obtain upgrade current initial mechanical Calculation Basis model A
^{i} _{o}, upgrade A
^{i} _{o}while, T
^{i} _{o}all elements numerical value also uses T
^{i}all elements numerical value correspondence replace, namely have updated T
^{i} _{o}, so just obtain and correctly correspond to A
^{i} _{o}t
^{i} _{o}; Now d
^{i} _{o}remain unchanged; As renewal A
^{i} _{o}after, A
^{i} _{o}the health status evaluation object of rope current initial damage vector d
^{i} _{o}represent, A
^{i} _{o}cable Structure steady temperature current cable structure steady temperature data vector T
^{i}represent, upgrade C
^{i} _{o}method be: when renewal A
^{i} _{o}after, obtain A by Mechanics Calculation
^{i} _{o}in all monitored amounts, current concrete numerical value, these concrete numerical value composition C
^{i} _{o};
H. at current initial mechanical Calculation Basis model A
^{i} _{o}basis on, carry out several times Mechanics Calculation according to step h1 to step h4, by calculate set up unit damage monitored numerical quantity unit change matrix Δ C
^{i}with unit damage or unit translational displacement vector D
^{i} _{u};
H1., when ith circulation starts, directly Δ C is obtained by method listed by step h2 to step h4
^{i}and D
^{i} _{u}; In other moment, when in step g to A
^{i} _{o}after upgrading, Δ C must be regained by method listed by step h2 to step h4
^{i}and D
^{i} _{u}if, not to A in step g
^{i} _{o}upgrade, then directly proceed to step I herein and carry out followup work;
H2. at current initial mechanical Calculation Basis model A
^{i} _{o}basis on carry out several times Mechanics Calculation, calculation times numerically equals the quantity N of all evaluation objects, has N number of evaluation object just to have N calculating; According to the coding rule of evaluation object, calculate successively; Calculating hypothesis each time only has an evaluation object to increase unit damage or unit translational displacement again on the basis of original damage or translational displacement, concrete, if this evaluation object is a support cable in cable system, so just suppose that this support cable increases unit damage again, if this evaluation object is the translational displacement component in a direction of a bearing, just suppose that this bearing increases unit translational displacement again at this sense of displacement, use D
^{i} _{uk}record unit damage or the unit translational displacement of this increase, wherein k represents the numbering of the evaluation object increasing unit damage or unit translational displacement, D
^{i} _{uk}unit damage or unit translational displacement vector D
^{i} _{u}an element, unit damage or unit translational displacement vector D
^{i} _{u}the coding rule of element and vectorial d
_{o}the coding rule of element identical; The evaluation object increasing unit damage or unit translational displacement in calculating each time is again different from during other time calculates the evaluation object increasing unit damage or unit translational displacement again, calculate the current calculated value all utilizing mechanics method to calculate all monitored amount of Cable Structure each time, the current calculated value of all monitored amount calculated each time forms a monitored amount calculation current vector; When supposing that a kth evaluation object increases unit damage or unit translational displacement again, use C
^{i} _{tk}represent corresponding " monitored amount calculation current vector "; When giving the element number of each vector in this step, same coding rule should be used with other vector in this method, to ensure any one element in this step in each vector, with in other vector, number identical element, have expressed the relevant information of same monitored amount or same target; C
^{i} _{tk}definition mode and vectorial C
_{o}definition mode identical, C
^{i} _{tk}element and C
_{o}element one_to_one corresponding;
H3. the vectorial C calculated each time
^{i} _{tk}deduct vectorial C
^{i} _{o}obtain a vector, then after each element of this vector is calculated divided by this unit damage or unit translational displacement numerical value supposed, obtain " numerical value change vector δ a C for monitored amount
^{i} _{k}"; N number of evaluation object is had just to have N number of " the numerical value change vector of monitored amount ";
H4. by this is N number of " the numerical value change vector of monitored amount " according to the coding rule of N number of evaluation object, " the unit damage monitored numerical quantity unit change matrix Δ C having N to arrange is formed successively
^{i}"; Unit damage monitored numerical quantity unit change matrix Δ C
^{i}each row correspond to a monitored amount unit change vector; Unit damage monitored numerical quantity unit change matrix Δ C
^{i}every a line correspond to the different unit change amplitude of same monitored amount when different evaluation object increases unit damage or unit translational displacement; Unit damage monitored numerical quantity unit change matrix Δ C
^{i}the coding rule of row and vectorial d
_{o}the coding rule of element identical, unit damage monitored numerical quantity unit change matrix Δ C
^{i}the coding rule of coding rule and M monitored amount of row identical;
I. current nominal fatigue vector d is defined
^{i} _{c}with current actual damage vector d
^{i}, d
^{i} _{c}and d
^{i}element number equal the quantity of support cable, d
^{i} _{c}and d
^{i}element and support cable between be onetoone relationship, d
^{i} _{c}and d
^{i}element numerical value represent degree of injury or the health status of corresponding support cable, d
^{i} _{c}and d
^{i}with evaluation object initial damage vector d
_{o}element number rule identical, d
^{i} _{c}element, d
^{i}element and d
_{o}element be onetoone relationship;
J. according to monitored amount current value vector C
^{i}with " monitored amount current initial value vector C
^{i} _{o}", " unit damage monitored numerical quantity unit change matrix Δ C
^{i}" and " current nominal fatigue vector d
^{i} _{c}" between the linear approximate relationship that exists, this linear approximate relationship can be expressed as formula 1, except d in formula 1
^{i} _{c}other outer amount is known, solves formula 1 and just can calculate current nominal fatigue vector d
^{i} _{c};
K. the current actual damage vector d utilizing formula 2 to express
^{i}a kth element d
^{i} _{k}with evaluation object current initial damage vector d
^{i} _{o}a kth element d
^{i} _{ok}with current nominal fatigue vector d
^{i} _{c}a kth element d
^{i} _{ck}between relation, calculate current actual damage vector d
^{i}all elements;
formula 2
K=1 in formula 2,2,3 ..., N; d
^{i} _{k}represent the current actual health status of a kth evaluation object in ith circulation, if this evaluation object is support cable, so a d in cable system
^{i} _{k}represent its current actual damage, d
^{i} _{k}represent not damaged when being 0, when being 100%, represent that this support cable thoroughly loses loadbearing capacity, represent the loadbearing capacity losing corresponding proportion time between 0 and 100%, if this evaluation object is translational displacement component, so a d of a bearing
^{i} _{k}represent its current actual translational displacement numerical value, vectorial d in the coding rule of the element of vectorial di and formula (1)
_{o}the coding rule of element identical;
1. try to achieve current nominal fatigue vector d
^{i} _{c}after, set up mark vector B according to formula 3
^{i}, formula 4 gives mark vector B
^{i}the definition of a kth element;
formula 4
Element B in formula 4
^{i} _{k}mark vector B
^{i}a kth element, D
^{i} _{uk}unit damage or unit translational displacement vector D
^{i} _{u}a kth element, d
^{i} _{ck}evaluation object current nominal fatigue vector d
^{i} _{c}a kth element, they all represent the relevant information of a kth evaluation object, k=1 in formula 4,2,3 ..., N;
If m. mark vector B
^{i}element be 0 entirely, then get back to step f continue this circulation; If mark vector B
^{i}element be not 0 entirely, then enter next step, i.e. step n;
N. calculate next time according to formula 5, evaluation object current initial damage vector d namely needed for the ith+1 time circulation
^{i+1} _{o}each element;
formula 5
D in formula 5
^{i+1} _{ok}the evaluation object current initial damage vector d next time, namely needed for the ith+1 time circulation
^{i+1} _{o}a kth element, d
^{i} _{ok}this, i.e. the evaluation object of ith circulation current initial damage vector d
^{i} _{o}a kth element, D
^{i} _{uk}unit damage or the unit translational displacement vector D of ith circulation
^{i} _{u}a kth element, B
^{i} _{k}the mark vector B of ith circulation
^{i}a kth element, k=1 in formula 5,2,3 ..., N;
O. take off once, namely the ith+1 time circulation needed for current initial Cable Structure steady temperature data vector T
^{i+1} _{o}equal the current initial Cable Structure steady temperature data vector T of ith circulation
^{i} _{o};
P. at initial mechanical Calculation Basis model A
_{o}basis on, to A
_{o}in Cable Structure apply temperature variation, the numerical value of the temperature variation of applying just takes from steady temperature change vector S, then makes the health status of rope be d
^{i+1} _{o}after obtain be exactly next time, namely the ith+1 time circulation needed for Mechanics Calculation benchmark model A
^{i+1}; Obtain A
^{i+1}after, obtain A by Mechanics Calculation
^{i+1}in all monitored amounts, current concrete numerical value, these the monitored amounts of concrete numerical value composition next time, namely needed for the ith+1 time circulation current initial value vector C
^{i+1} _{o};
Q. get back to step f, start to circulate next time.
Beneficial effect: when the temperature field of Cable Structure is subject to affecting of the factor such as sunshine and environment temperature, the temperature field of Cable Structure is constantly change, the change of temperature field of Cable Structure must affect the monitored amount of Cable Structure, only have and monitored amount is rejected could carry out rational monitoring structural health conditions based on monitored amount by temperature profile effect part, and the temperature field measurement of Cable Structure and calculating are very complicated, this method discloses to comprise and is a kind ofly suitable for the simple of monitoring structural health conditions, economical, feasible, the cable structure health monitoring method of efficient structure temperature field computing method, adopt this method when translational displacement (comprising sedimentation) appears in Cable Structure bearing, many ropes of Cable Structure synchronous impaired time, and the temperature of Cable Structure along with time variations time, very monitor assessment can identify damaged cable and bearing translational displacement, the effective health monitoring of system and method disclosed in this method to Cable Structure is highly profitable.
Embodiment
When temperature variation, for damaged cable and the identification of bearing translational displacement of Cable Structure, this method discloses a kind of system and method can monitoring the health status identifying each evaluation object in Cable Structure rationally and effectively.The following describes of embodiment of this method is in fact only exemplary, and object is never the application or the use that limit this method.
This method adopts a kind of algorithm, and this algorithm is for identifying damaged cable and bearing translational displacement.During concrete enforcement, the following step is the one in the various steps that can take.
The first step: set the quantity sum of the quantity of the support cable of Cable Structure and the bearing translational displacement component of Cable Structure as N.For sake of convenience, this method unitedly calls evaluated support cable and bearing translational displacement to be " evaluation object ", total N number of evaluation object.To evaluation object serial number, this numbering will be used for generating vector sum matrix in subsequent step.
Determine measured point (the i.e. specified point of all characterisation of structures volume coordinates of specifying, be provided with K specified point), each specified point can be exactly a point near the fixed endpoint (being such as the stiff end of dragline on bridge floor of cablestayed bridge) of each root rope, this specified point can also be a point near structural bearings, or be exactly directly structural bearings fulcrum, number to all specified points; Determined the measured volume coordinate component (establishing each measurement point to have the individual measured volume coordinate component of L) of each measurement point, to all measured volume coordinate component numberings of specifying.Abovementioned numbering will be used for equally generating vector sum matrix in subsequent step." the whole monitored spatial data of structure " by K specified point in the structure determined above, cross L volume coordinate component of each specified point and describe, the change of structure space coordinate is exactly the change of all specified points, all volume coordinate component of specifying.Each total M (M=K × L) individual volume coordinate component measurement value or calculated value carry out the spatial coordinated information of characterisation of structures.K and M must not be less than the quantity N of evaluation object.
For simplicity, in the method by " monitored all parameters of Cable Structure " referred to as " monitored amount ".To M monitored amount serial number, this numbering will be used for generating vector sum matrix in subsequent step.This method represents this numbering, j=1,2,3 with variable j ..., M.
Determine " the temperature survey calculating method of the Cable Structure of this method ", the method concrete steps are as follows:
A walks: inquiry or actual measurement (can be measured by ordinary temperature measuring method, thermal resistance is such as used to measure) obtain the temperature variant thermal conduction study parameter of environment residing for Cable Structure composition material and Cable Structure, utilize the geometry measured data of the design drawing of Cable Structure, asconstructed drawing and Cable Structure, utilize these data and parameter to set up the Thermodynamic calculation model (such as finite element model) of Cable Structure.Inquiry Cable Structure location is no less than the meteorological data in recent years of 2 years, the statistics cloudy quantity obtained is during this period of time designated as T cloudy day, statistics obtains 0 highest temperature after sunrise moment next day between 30 minutes and the lowest temperature at each cloudy day in T cloudy day, the sunrise moment refers to the sunrise moment on the meteorology that base area revolutions and revolution rule are determined, data can be inquired about or calculated sunrise moment of each required day by conventional meteorology, 0 highest temperature after sunrise moment next day between 30 minutes at each cloudy day deducts the maximum temperature difference that the lowest temperature is called the daily temperature at this cloudy day, there is T cloudy day, just there is the maximum temperature difference of the daily temperature at T cloudy day, the maximal value of getting in the maximum temperature difference of the daily temperature at T cloudy day is reference temperature difference per day, Δ T is designated as with reference to temperature difference per day
_{r}, be no less than between inquiry Cable Structure location and Altitude Region, place temperature that the meteorological data in recent years of 2 years or actual measurement obtain environment residing for Cable Structure in time with delta data and the Changing Pattern of sea level elevation, calculate to be no less than 2 years between Cable Structure location and Altitude Region, place Cable Structure in recent years residing for the temperature of environment about the maximum rate of change Δ T of sea level elevation
_{h}, get Δ T for convenience of describing
_{h}unit be DEG C/m, the surface of Cable Structure is got " R Cable Structure surface point ", the Specific Principles getting " R Cable Structure surface point " describes in step b3, the temperature of this R Cable Structure surface point will be obtained below by actual observation record, claiming to survey the temperature data obtained is " R Cable Structure surface temperature measured data ", if utilize the Thermodynamic calculation model of Cable Structure, obtained the temperature of this R Cable Structure surface point by Calculation of Heat Transfer, just claim the temperature data that calculates for " R Cable Structure land surface pyrometer count certificate ".From the minimum height above sea level residing for Cable Structure to most High aititude, in Cable Structure, uniform choosing is no less than three different sea level elevations, if the sea level elevation of such as Cable Structure is between 0m to 200m, so can choose height above sea level 0m, 50m, 100m and height above sea level 200m, crossing with Cable Structure surface with imaginary surface level at the sea level elevation place that each is chosen, obtain intersection, surface level is crossing with Cable Structure obtains cross surface, intersection is the outer edge line of cross surface, 6 points are chosen at the intersection place on surface level and Cable Structure surface, from the outer normal of selected point straw line body structure surface, all outer normal directions chosen are called " measuring the direction of Cable Structure along the Temperature Distribution of wall thickness ", measure Cable Structure crossing with " intersection on surface level and Cable Structure surface " along the direction of the Temperature Distribution of wall thickness.In 6 directions of the measurement Cable Structure chosen along the Temperature Distribution of wall thickness, first according to the meteorological data throughout the year in region, Cable Structure position and the physical dimension of Cable Structure, volume coordinate, Cable Structure surrounding environment etc. determines the sunny slope of Cable Structure and in the shade, the sunny slope of Cable Structure and in the shade face are the parts on the surface of Cable Structure, at the sea level elevation place that each is chosen, aforementioned intersection respectively has one section in sunny slope and in the shade, these two sections of intersection respectively have a mid point, cross the outer normal that these two mid points get Cable Structure, these two outer normals are called the sunny slope outer normal of Cable Structure and in the shade outer normal of Cable Structure by this method, these two outer normal directions are called the sunny slope outer normal direction of Cable Structure and in the shade outer normal direction of Cable Structure by this method, the outer normal of obvious sunny slope and the outer normal of in the shade all crossing with aforementioned intersection, also two intersection points are just had, intersection is divided into two line segments by these two intersection points, 2 points are got respectively on two line segments, totally 4 points, each line segment in two of intersection line segments is divided into equal 3 sections of length by taken point, the outer normal on Cable Structure surface is got at these 4 some places, the outer normal on 6 Cable Structure surfaces is just have chosen so altogether at each selected sea level elevation place, the direction of 6 outer normals is exactly " measuring the direction of Cable Structure along the Temperature Distribution of wall thickness ".There are two intersection points on the surface of each " measures the direction of Cable Structure along the Temperature Distribution of wall thickness " line and Cable Structure, if Cable Structure is hollow, these, two intersection points are on Cable Structure outside surface, another on an internal surface, if Cable Structure is solid, these two intersection points are all on Cable Structure outside surface, connect these two intersection points and obtain a straightline segment, straightline segment is chosen three points again, this straightline segment is divided into four sections by these three points, measure two end points of Cable Structure at these three points chosen and straightline segment, amount to the temperature of 5 points, concrete can first hole in Cable Structure, temperature sensor is embedded in this 5 some places, especially, can not hole in support cable, support cable is only measured to the temperature of support cable surface point, in any case, the temperature recorded all is called this place " Cable Structure is along the temperature profile data of thickness ", wherein along crossing with same " intersection on surface level and Cable Structure surface ", " measure the direction of Cable Structure along the Temperature Distribution of wall thickness " to measure " Cable Structure is along the temperature profile data of thickness " that obtain, be called in the method " identical sea level elevation Cable Structure is along the temperature profile data of thickness ".If have chosen the individual different sea level elevation of H, at each sea level elevation place, have chosen B and measure the direction of Cable Structure along the Temperature Distribution of wall thickness, in Cable Structure, E point is have chosen along each measurement Cable Structure along the direction of the Temperature Distribution of wall thickness, wherein H and E is not less than 3, B is not less than 2, especially, 1 is equaled for support cable E, what meter Cable Structure " measured the point of Cable Structure along the temperature profile data of thickness " adds up to HBE, the temperature of this HBE " measuring the point of Cable Structure along the temperature profile data of thickness " will be obtained below by actual measurement, claiming to survey the temperature data obtained is " HBE Cable Structure is along thickness temperature measured data ", if utilize the Thermodynamic calculation model of Cable Structure, obtain this HBE by Calculation of Heat Transfer and measure the temperature of Cable Structure along the point of the temperature profile data of thickness, the temperature data calculated just is claimed to be " HBE Cable Structure calculates data along thickness temperature ", the number temperature profile data at sea level elevation place " identical sea level elevation Cable Structure is along the temperature profile data of thickness " will chosen at each in this method ".Measuring temperature in Cable Structure location according to meteorology to require to choose a position, meeting obtaining in this position actual observation record the temperature that meteorology measures the Cable Structure place environment of temperature requirement, in the onsite spaciousness of Cable Structure, unobstructed place chooses a position, this position should each of the whole year day can obtain this ground the most sufficient sunshine of this day getable (as long as there was sunrise the same day, this position just should by sunlight), at the flat board (square plate that the wide 3mm of such as 30cm is thick) of this position of sound production one piece of carbon steel material (such as No. 45 carbon steels), be called reference plate, reference plate can not contact with ground, reference plate overhead distance is not less than 1.5 meters, reference plate can be placed in and meet the top that meteorology temperature measures the wooden thermometer screen required, the one side of this reference plate on the sunny side, be called that sunny slope (such as, time on the Northern Hemisphere, sunny slope faces up towards south, full daytime is all by sunshine, sunny slope should have the suitable gradient to make snow can not accumulate or clear up sunny slope after snow), the sunny slope of reference plate is coarse with dark color (being conducive to accepting solar irradiation), the sunny slope of reference plate should each of the whole year day can obtain one flat plate on this ground the most sufficient sunshine of this day getable, the nonsunny slope of reference plate is covered with insulation material (the thick calcium carbonate insulation material of such as 5mm), RealTime Monitoring record is obtained the temperature of the sunny slope of reference plate.
B walks, RealTime Monitoring (can be measured by ordinary temperature measuring method, thermal resistance is such as used to measure, such as every 10 minutes survey records temperature data) record R the Cable Structure surface temperature measured data obtaining abovementioned R Cable Structure surface point, RealTime Monitoring (can be measured by ordinary temperature measuring method simultaneously, thermal resistance is such as used to measure, such as every 10 minutes survey records temperature data) obtain the temperature profile data of previously defined Cable Structure along thickness, RealTime Monitoring (can be measured by ordinary temperature measuring method simultaneously, such as in the wooden thermometer screen meeting meteorology temperature measurement requirement, lay thermal resistance and measure temperature, such as every 10 minutes survey records temperature data) record the temperature record obtaining the Cable Structure place environment meeting the requirement of meteorology measurement temperature, (can be measured by ordinary temperature measuring method by RealTime Monitoring, such as in the wooden thermometer screen meeting meteorology temperature measurement requirement, lay thermal resistance and measure temperature, such as every 10 minutes survey records temperature data) record obtains being carved at sunrise the temperature measured data sequence of the Cable Structure place environment after sunrise moment next day between 30 minutes the same day, the temperature measured data sequence of Cable Structure place environment is arranged according to time order and function order by the temperature measured data of the Cable Structure place environment after being carved into the sunrise moment next day same day at sunrise between 30 minutes, find the maximum temperature in the temperature measured data sequence of Cable Structure place environment and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains Cable Structure place environment after sunrise moment next day between 30 minutes is deducted by the maximum temperature in the temperature measured data sequence of Cable Structure place environment, be designated as Δ T
_{emax}, (such as first the temperature measured data sequence of Cable Structure place environment is carried out curve fitting by Conventional mathematical calculating by the temperature measured data sequence of Cable Structure place environment, then by asking curve to the derivative of time or by asking on curve each point corresponding to survey record data time by numerical method to the rate of change of time) obtain the rate of change of temperature about the time of Cable Structure place environment, this rate of change is also along with time variations, (can be measured by ordinary temperature measuring method by RealTime Monitoring, such as use the temperature of the dull and stereotyped sunny slope of thermal resistance witness mark, such as every 10 minutes survey records temperature data) obtain being carved at sunrise the same day measured data sequence of the temperature of the sunny slope of the reference plate after sunrise moment next day between 30 minutes, the measured data sequence of the temperature of the sunny slope of reference plate is arranged according to time order and function order by the measured data of the temperature of the sunny slope of the reference plate after being carved into the sunrise moment next day same day at sunrise between 30 minutes, find the maximum temperature in the measured data sequence of the temperature of the sunny slope of reference plate and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains the temperature of the sunny slope of reference plate after sunrise moment next day between 30 minutes is deducted by the maximum temperature in the measured data sequence of the temperature of the sunny slope of reference plate, be designated as Δ T
_{pmax}, (can be measured by ordinary temperature measuring method by RealTime Monitoring, thermal resistance is such as used to measure Cable Structure surface point, such as every 10 minutes survey records temperature data) record obtains being carved at sunrise the Cable Structure surface temperature measured data sequence of all R Cable Structure surface points after sunrise moment next day between 30 minutes the same day, R Cable Structure surface point is had just to have R Cable Structure surface temperature measured data sequence, each Cable Structure surface temperature measured data sequence is arranged according to time order and function order by the Cable Structure surface temperature measured data after being carved into the sunrise moment next day same day of a Cable Structure surface point at sunrise between 30 minutes, find the maximum temperature in each Cable Structure surface temperature measured data sequence and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains the temperature of each Cable Structure surface point after sunrise moment next day between 30 minutes is deducted by the maximum temperature in each Cable Structure surface temperature measured data sequence, there is R Cable Structure surface point just to have to be carved at sunrise R the same day maximum temperature difference numerical value between 30 minutes after sunrise moment next day, maximal value is wherein designated as Δ T
_{smax}, (such as first each Cable Structure surface temperature measured data sequence is carried out curve fitting by Conventional mathematical calculating by each Cable Structure surface temperature measured data sequence, then by asking curve to the derivative of time or by asking on curve each point corresponding to survey record data time by numerical method to the rate of change of time) obtain the rate of change of temperature about the time of each Cable Structure surface point, the temperature of each Cable Structure surface point about the rate of change of time also along with time variations.Obtain being carved at sunrise the same day after sunrise moment next day between 30 minutes by RealTime Monitoring, at synchronization, after HBE " Cable Structure is along the temperature profile data of thickness ", calculate the difference amounting to maximum temperature in BE " identical sea level elevation Cable Structure is along the temperature profile data of thickness " and minimum temperature at the sea level elevation place that each is chosen, the absolute value of this difference is called " identical sea level elevation place Cable Structure thickness direction maximum temperature difference ", have chosen H different sea level elevation just to have H " identical sea level elevation place Cable Structure thickness direction maximum temperature difference ", the maximal value in this H " identical sea level elevation place Cable Structure thickness direction maximum temperature difference " is claimed to be " Cable Structure thickness direction maximum temperature difference ", be designated as Δ T
_{tmax}.
C walks, and survey calculation obtains Cable Structure steady temperature data; First, determine the moment obtaining Cable Structure steady temperature data, the condition relevant to the moment determining to obtain Cable Structure steady temperature data has six, Section 1 condition is moment of obtaining Cable Structure steady temperature data between after being carved into sunrise moment next day at sunset between 30 minutes on same day, the sunset moment refers to the sunset moment on base area revolutions and the meteorology determined of revolution rule, can inquire about data or be calculated sunset moment of each required day by conventional meteorology; The a condition of Section 2 condition be after being carved into sunrise moment next day at sunrise between 30 minutes on same day during this period of time in, Δ T
_{pmax}with Δ T
_{smax}all be not more than 5 degrees Celsius; The b condition that Section 2 must meet be after being carved into sunrise moment next day at sunrise between 30 minutes on same day during this period of time in, the Δ T that survey calculation obtains above
_{emax}be not more than with reference to temperature difference per day Δ T
_{r}, and the Δ T that survey calculation obtains above
_{pmax}deduct 2 degrees Celsius and be not more than Δ T
_{emax}, and the Δ T that survey calculation obtains above
_{smax}be not more than Δ T
_{pmax}; One of only need meet in a condition of Section 2 and b condition is just called and meets Section 2 condition; Section 3 condition is when obtaining Cable Structure steady temperature data, and the temperature of Cable Structure place environment is not more than 0.1 degree Celsius per hour about the absolute value of the rate of change of time; Section 4 condition is when obtaining Cable Structure steady temperature data, and the temperature of each the Cable Structure surface point in R Cable Structure surface point is not more than 0.1 degree Celsius per hour about the absolute value of the rate of change of time; Section 5 condition is when obtaining Cable Structure steady temperature data, and the Cable Structure surface temperature measured data of each the Cable Structure surface point in R Cable Structure surface point is be carved into the minimal value after sunrise moment next day between 30 minutes the same day at sunrise; Section 6 condition is when obtaining Cable Structure steady temperature data, " Cable Structure thickness direction maximum temperature difference " Δ T
_{tmax}be not more than 1 degree Celsius.This method utilizes abovementioned six conditions, any one in following three kinds of moment is called " the mathematics moment obtaining Cable Structure steady temperature data ", the first moment meets the moment of the Section 1 in abovementioned " condition relevant to the moment determining to obtain Cable Structure steady temperature data " to Section 5 condition, the second moment is moment of the Section 6 condition only met in abovementioned " condition relevant to determining to obtain moment of Cable Structure steady temperature data ", simultaneously the third moment meets the moment of the Section 1 in abovementioned " condition relevant to the moment determining to obtain Cable Structure steady temperature data " to Section 6 condition, when the mathematics moment obtaining Cable Structure steady temperature data is exactly one in this method in the physical record data moment, the moment obtaining Cable Structure steady temperature data is exactly the mathematics moment obtaining Cable Structure steady temperature data, if the mathematics moment obtaining Cable Structure steady temperature data is not any one moment in this method in the physical record data moment, then getting this method closest to moment of those physical record data in the mathematics moment obtaining Cable Structure steady temperature data is the moment obtaining Cable Structure steady temperature data, the amount being used in the moment survey record obtaining Cable Structure steady temperature data is carried out Cable Structure relevant health monitoring analysis by this method, this method is similar to thinks that the Cable Structure temperature field in the moment obtaining Cable Structure steady temperature data is in stable state, and namely the Cable Structure temperature in this moment does not change in time, and this moment is exactly moment of the acquisition Cable Structure steady temperature data of this method, then, according to Cable Structure heat transfer characteristic, utilize R Cable Structure surface temperature measured data and " HBE Cable Structure is along the thickness temperature measured data " in the moment obtaining Cable Structure steady temperature data, utilize the Thermodynamic calculation model (such as finite element model) of Cable Structure, the Temperature Distribution that (such as finite element method) obtains the Cable Structure in the moment obtaining Cable Structure steady temperature data is calculated by conventional heat transfer, now the temperature field of Cable Structure calculates by stable state, the temperature profile data of the Cable Structure in the moment in acquisition Cable Structure steady temperature data calculated comprises the accounting temperature of R Cable Structure surface point in Cable Structure, the accounting temperature of R Cable Structure surface point is called that R Cable Structure steadystate surface temperature calculates data, also comprise the accounting temperature of Cable Structure selected HBE " measuring the point of Cable Structure along the temperature profile data of thickness " above, the accounting temperature of HBE " measuring the point of Cable Structure along the temperature profile data of thickness " is called " HBE Cable Structure calculates data along thickness temperature ", when R Cable Structure surface temperature measured data and R Cable Structure steadystate surface temperature calculate data correspondent equal, and when " HBE Cable Structure is along thickness temperature measured data " and " HBE Cable Structure calculates data along thickness temperature " correspondent equal, the temperature profile data of the Cable Structure in the moment in acquisition Cable Structure steady temperature data calculated is called " Cable Structure steady temperature data " in the method, " R Cable Structure surface temperature measured data " is now called " R Cable Structure steadystate surface temperature measured data ", " HBE Cable Structure is along thickness temperature measured data " is called " HBE Cable Structure is along thickness steady temperature measured data ".When the surface of Cable Structure is got " R Cable Structure surface point ", the quantity of " R Cable Structure surface point " must meet three conditions with distribution, first condition is when Cable Structure temperature field is in stable state, when the temperature of Cable Structure any point be on the surface by " R Cable Structure surface point " in obtain with the observed temperature linear interpolation of the Cable Structure point that this arbitrfary point is adjacent on the surface time, the error of the Cable Structure that linear interpolation the obtains temperature of this arbitrfary point and the Cable Structure actual temperature of this arbitrfary point on the surface is on the surface not more than 5%; Cable Structure surface comprises support cable surface; Second condition is not less than 4 in the quantity of the point of same sea level elevation in " R Cable Structure surface point ", and uniform along Cable Structure surface at the point of same sea level elevation in " R Cable Structure surface point "; " R Cable Structure surface point " is not more than 0.2 DEG C divided by Δ T along the maximal value Δ h in the absolute value of all differences of the sea level elevation of adjacent Cable Structure surface point between two of sea level elevation
_{h}the numerical value obtained, gets Δ T for convenience of describing
_{h}unit be DEG C/m, be m for convenience of describing the unit getting Δ h; " R Cable Structure surface point " along the definition of the adjacent between two Cable Structure surface point of sea level elevation refer to only consider sea level elevation time, in " R Cable Structure surface point ", there is not a Cable Structure surface point, the sea level elevation numerical value of this Cable Structure surface point is between the sea level elevation numerical value of adjacent Cable Structure surface point between two; 3rd condition is inquiry or obtains the rule at sunshine between Cable Structure location and Altitude Region, place by meteorology conventionally calculation, again according to geometric properties and the bearing data of Cable Structure, Cable Structure finds the annual position by sunshineduration those surface points the most sufficient, in " R Cable Structure surface point ", has at least a Cable Structure surface point to be annual by a point in sunshineduration the most fully those surface points in Cable Structure.
Second step: set up initial mechanical Calculation Basis model A
_{o}.
When Cable Structure is completed, or before setting up health monitoring (damaged cable identification) system, obtain " Cable Structure steady temperature data " according to " the temperature survey calculating method of the Cable Structure of this method " survey calculation (to measure by ordinary temperature measuring method, thermal resistance is such as used to measure), " Cable Structure steady temperature data " now use vector T
_{o}represent, be called initial Cable Structure steady temperature data vector T
_{o}.T is obtained in actual measurement
_{o}while, namely at the synchronization in the moment of the initial Cable Structure steady temperature data vector of acquisition, use the direct survey calculation of conventional method to obtain the initial value of all monitored amount of Cable Structure, form monitored amount initial value vector C
_{o}.
Specifically the synchronization in moment of soandso Cable Structure steady temperature data vector such as (such as initial or current) can be being obtained according to following method in this method, soandso method survey calculation is used to obtain the data of the monitored amount of soandso measured amount (all monitored amount of such as Cable Structure): (to comprise the temperature of Cable Structure place environment in survey record temperature, the temperature of the sunny slope of reference plate and Cable Structure surface temperature) while, such as every 10 minutes survey records temperature, so simultaneously equally also every 10 minutes the monitored amount of soandso measured amount of survey record (all monitored amount of such as Cable Structure) data.Once determine the moment obtaining Cable Structure steady temperature data, so just be called the synchronization in the moment obtaining Cable Structure steady temperature data, the data of the monitored amount of soandso measured amount using soandso method survey calculation method to obtain with the data of the monitored amount of soandso measured amount (all monitored amount of such as Cable Structure) of the moment synchronization of acquisition Cable Structure steady temperature data.
Conventional method (consult reference materials or survey) is used to obtain temperature variant physical parameter (such as thermal expansivity) and the mechanical property parameters (such as elastic modulus, Poisson ratio) of the various materials that Cable Structure uses; Initial Cable Structure steady temperature data vector T is obtained at Actual measurement
_{o}while, use conventional method Actual measurement to obtain the Actual measurement data of Cable Structure.The Actual measurement data of Cable Structure comprise the measured data such as data, the initial geometric data of Cable Structure, rope force data, drawbar pull data, initial Cable Structure support coordinate data, Cable Structure modal data, structural strain data, structural point measurement data, structure space measurement of coordinates data that the Nondestructive Testing Data of support cable etc. can express the health status of rope.Initial Cable Structure support coordinate data refer to the support coordinate data under Cable Structure design point, and Cable Structure bearing initial translation displacement measurement data refer to setting up initial mechanical Calculation Basis model A
_{o}time, the translational displacement that Cable Structure bearing occurs relative to the bearing under Cable Structure design point.The initial geometric data of Cable Structure can be the spatial data that the spatial data of the end points of all ropes adds a series of point in structure, and object is the geometric properties according to these coordinate data determination Cable Structure.For cablestayed bridge, initial geometric data can be the spatial data that the spatial data of the end points of all ropes adds some points on bridge two ends, socalled bridge type data that Here it is.Utilize the Nondestructive Testing Data etc. of support cable can express the data of the health status of support cable and Cable Structure bearing initial translation displacement measurement data set up evaluation object initial damage vector d
_{o}, use d
_{o}represent that Cable Structure is (with initial mechanical Calculation Basis model A
_{o}represent) the initial health of evaluation object.If there is no the Nondestructive Testing Data of support cable and other are when can express the data of the health status of support cable, or can think structure original state be not damaged without relaxed state time, vectorial d
_{o}in each element numerical value relevant to support cable get 0, if when there is no Cable Structure bearing initial translation displacement measurement data or can think that the displacement of Cable Structure bearing initial translation is 0, vectorial d
_{o}in each element numerical value relevant to Cable Structure bearing translational displacement get 0.The temperature variant physical and mechanical properties parameter of the various materials utilizing the measured data of the design drawing of Cable Structure, asconstructed drawing and initial Cable Structure, the Nondestructive Testing Data of support cable, Cable Structure to use and initial Cable Structure steady temperature data vector T
_{o}, utilize mechanics method (such as finite element method) to count " Cable Structure steady temperature data " and set up initial mechanical Calculation Basis model A
_{o}.
No matter which kind of method to obtain initial mechanical Calculation Basis model A by
_{o}, count " Cable Structure steady temperature data " (i.e. initial Cable Structure steady temperature data vector T
_{o}), based on A
_{o}the Cable Structure that calculates calculates data must closely its measured data, and error generally must not be greater than 5%.Like this can utility A
_{o}the Suo Li calculated under the analog case of gained calculates data, strain calculation data, Cable Structure shapometer count certificate and displacement meter counts certificate, Cable Structure angledata, Cable Structure spatial data etc., measured data when reliably truly occurring close to institute's analog case.Model A
_{o}the health status evaluation object initial damage vector d of middle support cable
_{o}represent, the initial Cable Structure steady temperature data vector T of Cable Structure steady temperature data
_{o}represent.Due to based on A
_{o}the initial value (actual measurement obtains) of the evaluation calculating all monitored amounts closely all monitored amounts, so also can be used in A
_{o}basis on, carry out Mechanics Calculation obtains, A
_{o}the evaluation of each monitored amount form monitored amount initial value vector C
_{o}.Corresponding to A
_{o}" Cable Structure steady temperature data " be exactly " initial Cable Structure steady temperature data vector T
_{o}"; Corresponding to A
_{o}evaluation object health status with evaluation object initial damage vector d
_{o}represent; Corresponding to A
_{o}the initial value monitored amount initial value vector C of all monitored amount
_{o}represent.T
_{o}and d
_{o}a
_{o}parameter, C
_{o}by A
_{o}mechanics Calculation result composition.
3rd step: in the method, alphabetical i is except representing the place of number of steps significantly, and alphabetical i only represents cycle index, i.e. ith circulation; Ith circulation needs the current initial mechanical Calculation Basis model of Cable Structure that is that set up or that set up to be designated as current initial mechanical Calculation Basis model A when starting
^{i} _{o}, A
_{o}and A
^{i} _{o}count temperature parameter, can the Effect on Mechanical Properties of accounting temperature change to Cable Structure; When ith circulation starts, corresponding to A
^{i} _{o}" Cable Structure steady temperature data " with current initial Cable Structure steady temperature data vector T
^{i} _{o}represent, vector T
^{i} _{o}definition mode and vector T
_{o}definition mode identical, T
^{i} _{o}element and T
_{o}element one_to_one corresponding; The current initial damage vector of evaluation object that ith circulation needs when starting is designated as d
^{i} _{o}, d
^{i} _{o}cable Structure A when representing that this circulation starts
^{i} _{o}the health status of evaluation object, d
^{i} _{o}definition mode and d
_{o}definition mode identical, d
^{i} _{o}element and d
_{o}element one_to_one corresponding; When ith circulation starts, the initial value of all monitored amounts, with monitored amount current initial value vector C
^{i} _{o}represent, vectorial C
^{i} _{o}definition mode and vectorial C
_{o}definition mode identical, C
^{i} _{o}element and C
_{o}element one_to_one corresponding, monitored amount current initial value vector C
^{i} _{o}represent and correspond to A
^{i} _{o}the concrete numerical value of all monitored amount; T
^{i} _{o}and d
^{i} _{o}a
^{i} _{o}characterisitic parameter; C
^{i} _{o}by A
^{i} _{o}mechanics Calculation result composition; When first time, circulation started, A
^{i} _{o}be designated as A
^{1} _{o}, set up A
^{1} _{o}method for making A
^{1} _{o}equal A
_{o}; When first time, circulation started, T
^{i} _{o}be designated as T
^{1} _{o}, set up T
^{1} _{o}method for making T
^{1} _{o}equal T
_{o}; When first time, circulation started, d
^{i} _{o}be designated as d
^{1} _{o}, set up d
^{1} _{o}method for making d
^{1} _{o}equal d
_{o}; When first time, circulation started, C
^{i} _{o}be designated as C
^{1} _{o}, set up C
^{1} _{o}method for making C
^{1} _{o}equal C
_{o}.
4th step: the hardware components of pass line structural healthy monitoring system.Hardware components at least comprises: monitored amount monitoring system (such as containing spatial coordinate measuring system, signal conditioner etc.), Cable Structure temperature monitoring system (containing temperature sensor, signal conditioner etc.) and Cable Structure ambient temperature measurement system (containing temperature sensor, signal conditioner etc.), signal (data) collector, computing machine and communication alert equipment.Each monitored amount, each temperature must arrive by monitored system monitoring, monitoring system by the Signal transmissions that monitors to signal (data) collector; Signal is delivered to computing machine through signal picker; The health monitoring software of the evaluation object running Cable Structure is then responsible for by computing machine, comprises the signal that the transmission of tracer signal collector comes; When monitoring evaluation object health status and changing, computer control communication panalarm is reported to the police to monitor staff, owner and (or) the personnel that specify.
5th step: establishment the damaged cable of installation and operation temperature variation space coordinate monitoring and support translation progressive identification method system software on computers, the function (i.e. all work that can complete with computing machine in this specific implementation method) such as monitoring, record, control, storage, calculating, notice, warning that this software will complete this method " damaged cable of temperature variation space coordinate monitoring and support translation progressive identification method " required by task and wants.
6th step: step starts circulation running thus, in structure military service process, the current data of Cable Structure steady temperature data is obtained, the current data composition current cable structure steady temperature data vector T of all " Cable Structure steady temperature data " according to " the temperature survey calculating method of the Cable Structure of this method " continuous Actual measurement
^{i}, vector T
^{i}definition mode and vector T
_{o}definition mode identical, T
^{i}element and T
_{o}element one_to_one corresponding; In actual measurement vector T
^{i}while, namely at acquisition current cable structure steady temperature data vector T
^{i}the synchronization in moment, actual measurement obtains the currency of all monitored amounts in Cable Structure, and all these numerical value form monitored amount current value vector C
^{i}, vectorial C
^{i}definition mode and vectorial C
_{o}definition mode identical, C
^{i}element and C
_{o}element one_to_one corresponding, represent that identical monitored amount is at not numerical value in the same time.
7th step: obtaining current cable structure steady temperature data vector T
^{i}after, compare T
^{i}and T
^{i} _{o}if, T
^{i}equal T
^{i} _{o}, then do not need A
^{i} _{o}and T
^{i} _{o}upgrade, otherwise need current initial mechanical Calculation Basis model A
^{i} _{o}, current initial Cable Structure steady temperature data vector T
^{i} _{o}with monitored amount current initial value vector C
^{i} _{o}upgrade, and evaluation object current initial damage vector d
^{i} _{o}remain unchanged, update method follows these steps to a to step c and carries out:
A. T is calculated
^{i}with T
_{o}difference, T
^{i}with T
_{o}difference be exactly the changes of current cable structure steady temperature data about initial Cable Structure steady temperature data, T
^{i}with T
_{o}difference represent with steady temperature change vector S, S equals T
^{i}deduct T
_{o}, S represents the change of Cable Structure steady temperature data.
B. to A
_{o}in Cable Structure apply temperature variation, the numerical value of the temperature variation of applying just takes from steady temperature change vector S, to A
_{o}in Cable Structure apply the current initial mechanical Calculation Basis model A that obtains after temperature variation upgrading
^{i} _{o}, upgrade A
^{i} _{o}while, T
^{i} _{o}all elements numerical value also uses T
^{i}all elements numerical value correspondence replace, namely have updated T
^{i} _{o}, so just obtain and correctly correspond to A
^{i} _{o}t
^{i} _{o}; Now d
^{i} _{o}remain unchanged; As renewal A
^{i} _{o}after, A
^{i} _{o}the health status evaluation object of evaluation object current initial damage vector d
^{i} _{o}represent, A
^{i} _{o}cable Structure steady temperature current cable structure steady temperature data vector T
^{i}represent, upgrade C
^{i} _{o}method be: when renewal A
^{i} _{o}after, obtain A by Mechanics Calculation
^{i} _{o}in all monitored amounts, current concrete numerical value, these concrete numerical value composition C
^{i} _{o};
8th step: at current initial mechanical Calculation Basis model A
^{i} _{o}basis on, carry out several times Mechanics Calculation according to step a to steps d, by calculate set up unit damage monitored numerical quantity unit change matrix Δ C
^{i}with unit damage or unit translational displacement vector D
^{i} _{u}.
A., when ith circulation starts, directly Δ C is obtained by method listed by step b to steps d
^{i}and D
^{i} _{u}; In other moment, when in the 7th step to A
^{i} _{o}after upgrading, Δ C must be regained by method listed by step b to steps d
^{i}and D
^{i} _{u}if, not to A in the 7th step
^{i} _{o}upgrade, then directly proceed to the 9th step herein and carry out followup work.
B. at current initial mechanical Calculation Basis model A
^{i} _{o}basis on carry out several times Mechanics Calculation, vectorial d
^{i} _{o}represent A
^{i} _{o}the health status of evaluation object, calculation times numerically equals the quantity N of all evaluation objects, has N number of evaluation object just to have N calculating; Calculate hypothesis each time and only have an evaluation object at vectorial d
^{i} _{o}there is unit damage or unit translational displacement in the basis of the health status of the evaluation object represented, concrete, if this evaluation object is a support cable in cable system, so just suppose that this support cable is at vectorial d
^{i} _{o}the basis that this support cable represented has a damage there is again unit damage (such as getting 5%, 10%, 20% or 30% equivalent damage is unit damage), if this evaluation object is the translational displacement component in a direction of a bearing, just suppose this bearing at this sense of displacement at vectorial d
^{i} _{o}there is unit translational displacement (such as 2mm, 5mm, 10mm etc. are unit translational displacement) again in the basis that this bearing represented has a translational displacement, use D
^{i} _{uk}record this unit damage or unit translational displacement, wherein k represents the numbering of the evaluation object that unit damage or unit translational displacement occur, D
^{i} _{uk}unit damage or unit translational displacement vector D
^{i} _{u}an element, unit damage or unit translational displacement vector D
^{i} _{u}the coding rule of element and vectorial d
_{o}the coding rule of element identical; Occur in calculating each time that the evaluation object of unit damage or unit translational displacement is different from during other time calculates the evaluation object occurring unit damage or unit translational displacement, calculate the current calculated value all utilizing mechanics method to calculate all monitored amount of Cable Structure each time, the current calculated value of all monitored amount calculated each time forms a monitored amount calculation current vector; When supposing that a kth evaluation object has unit damage or unit translational displacement, available C
^{i} _{tk}represent corresponding " monitored amount calculation current vector "; When giving the element number of each vector in this step, same coding rule should be used with other vector in this method, to ensure any one element in this step in each vector, with in other vector, number identical element, have expressed the relevant information of same monitored amount or same target; C
^{i} _{tk}definition mode and vectorial C
_{o}definition mode identical, C
^{i} _{tk}element and C
_{o}element one_to_one corresponding.
C. the vectorial C calculated each time
^{i} _{tk}deduct vectorial C
^{i} _{o}obtain a vector, then by each element of this vector divided by the unit damage supposed in this calculating or unit translational displacement numerical value D
^{i} _{uk}after obtain " the numerical value change of a monitored amount vector δ C
^{i} _{k}"; N number of evaluation object is had just to have N number of " the numerical value change vector of monitored amount ".
D. by this is N number of " the numerical value change vector of monitored amount " according to the coding rule of N number of evaluation object, " the unit damage monitored numerical quantity unit change matrix Δ C having N to arrange is formed successively
^{i}"; Unit damage monitored numerical quantity unit change matrix Δ C
^{i}each row correspond to a monitored amount unit change vector; Unit damage monitored numerical quantity unit change matrix Δ C
^{i}every a line correspond to the different unit change amplitude of same monitored amount when different evaluation object increases unit damage or unit translational displacement; Unit damage monitored numerical quantity unit change matrix Δ C
^{i}the coding rule of row and vectorial d
_{o}the coding rule of element identical, unit damage monitored numerical quantity unit change matrix Δ C
^{i}the coding rule of coding rule and M monitored amount of row identical.
9th step: set up linear relationship error vector e
^{i}with vectorial g
^{i}.Utilize (" the monitored amount current initial value vector C of data above
^{i} _{o}", " unit damage monitored numerical quantity unit change matrix Δ C
^{i}"); while the 8th step calculates each time; namely calculate each time hypothesis evaluation object in only have an evaluation object increase unit damage or unit translational displacement while; when hypothesis kth (k=1,2,3; ..., N), when individual evaluation object increases unit damage or unit translational displacement, calculate composition injury vector each time, use d
^{i} _{tk}represent this injury vector, corresponding monitored amount calculation current vector is C
^{i} _{tk}(see the 8th step), injury vector d
^{i} _{tk}element number equal the quantity of evaluation object, vectorial d
^{i} _{tk}all elements in only have the numerical value of an element to get to calculate each time in hypothesis increase unit damage or the unit translational displacement value of the evaluation object of unit damage or unit translational displacement, d
^{i} _{tk}the numerical value of other element get 0, that be not numbering and the supposition of the element of 0 increase the evaluation object of unit damage or unit translational displacement corresponding relation, be identical with the element of the same numbering of other vectors with the corresponding relation of this evaluation object; d
^{i} _{tk}with evaluation object initial damage vector d
_{o}element number rule identical, d
^{i} _{tk}element and d
_{o}element be onetoone relationship.By C
^{i} _{tk}, C
^{i} _{o}, Δ C
^{i}, d
^{i} _{tk}bring formula (23) into, obtain a linear relationship error vector e
^{i} _{k}, calculate a linear relationship error vector e each time
^{i} _{k}; e
^{i} _{k}subscript k represent kth (k=1,2,3 ..., N) and individual evaluation object increases unit damage or unit translational displacement.There is N number of evaluation object just to have N calculating, just have N number of linear relationship error vector e
^{i} _{k}, by this N number of linear relationship error vector e
^{i} _{k}obtaining a vector after addition, is exactly final linear relationship error vector e by each element of this vector divided by the new vector obtained after N
^{i}.Vector g
^{i}equal final error vector e
^{i}.By vectorial g
^{i}be kept on the hard disc of computer of operation health monitoring systems software, for health monitoring systems software application.
Tenth step: define current nominal fatigue vector d
^{i} _{c}with current actual damage vector d
^{i}, d
^{i} _{c}and d
^{i}element number equal the quantity of evaluation object, d
^{i} _{c}and d
^{i}element and evaluation object between be onetoone relationship, d
^{i} _{c}and d
^{i}element numerical value represent degree of injury or the bearing translational displacement of corresponding evaluation object, d
^{i} _{c}and d
^{i}with evaluation object initial damage vector d
_{o}element number rule identical, d
^{i} _{c}element, d
^{i}element and d
_{o}element be onetoone relationship.
11 step: according to monitored amount current value vector C
^{i}with " monitored amount current initial value vector C
^{i} _{o}", " unit damage monitored numerical quantity unit change matrix Δ C
^{i}" and " current nominal fatigue vector d
^{i} _{c}" between exist linear approximate relationship, this linear approximate relationship can be expressed as formula (11), according to multiobjective optimization algorithm calculate current nominal fatigue vector d
^{i} _{c}noninferior solution, namely can determine the position of damaged cable and the solution of nominal fatigue degree thereof more exactly with reasonable error from all ropes.
The multiobjective optimization algorithm that can adopt has a variety of, such as: the multipleobjection optimization based on genetic algorithm, the multipleobjection optimization based on artificial neural network, the multiobjective optimization algorithm based on population, the multipleobjection optimization based on ant group algorithm, leash law (Constrain Method), weighted method (Weighted SUm Method), Objective Programming (GoalAttainment Method) etc.Because various multiobjective optimization algorithm is all conventional algorithm, can realize easily, this implementation step only provides for Objective Programming and solves current nominal fatigue vector d
^{i} _{c}process, the specific implementation process of other algorithm can realize in a similar fashion according to the requirement of its specific algorithm.
According to Objective Programming, formula (11) can transform the multiobjective optimization question shown in an accepted way of doing sth (24) and formula (25), and in formula (24), γ is a real number, and R is real number field, and area of space Ω limits vectorial d
^{i} _{c}span (the present embodiment requirements vector d of each element
^{i} _{c}each element be not less than 0, be not more than 1).Formula (24) be meant to the minimum real number γ of searching one, formula (25) is met.G (d in formula (25)
^{i} _{c}) defined by formula (25), the middle G (d of the product representation formula (25) of weighing vector W and γ in formula (25)
^{i} _{c}) and vectorial g
^{i}between allow deviation, g
^{i}definition see formula (17), its value calculates in the 9th step.During actual computation vector W can with vectorial g
^{i}identical.The concrete programming realization of Objective Programming has had universal program directly to adopt.Use Objective Programming just can in the hope of current nominal fatigue vector d
^{i} _{c}.
minimize γ
(24)
γ∈R,
${d}_{c}^{i}\∈\mathrm{\Ω}$
12 step: according to cable system current actual damage vector d
^{i}definition (see formula (18)) and the definition (see formula (19)) of its element calculate current actual damage vector d
^{i}each element, thus can by d
^{i}determine the health status of evaluation object.Current actual damage vector d
^{i}a kth element d
^{i} _{k}represent the current actual health status of a kth evaluation object in ith circulation, if this evaluation object is support cable, so a d in cable system
^{i} _{k}represent its current actual damage, d
^{i} _{k}represent not damaged when being 0, when being 100%, represent that this support cable thoroughly loses loadbearing capacity, represent the loadbearing capacity losing corresponding proportion time between 0 and 100%, if this evaluation object is translational displacement component, so a d of a bearing
^{i} _{k}represent its current actual translational displacement numerical value, so according to evaluation object current actual damage vector d
^{i}impaired and the degree of injury of which support cable can be defined, define which bearing and there occurs translational displacement and numerical value thereof, namely achieve damaged cable and the identification of bearing translational displacement of Cable Structure.
13 step: the computing machine in health monitoring systems regularly generates cable system health condition form automatically or by human users's health monitoring systems.
14 step: under specified requirements, the computing machine automatic operation communication alert equipment in health monitoring systems is reported to the police to monitor staff, owner and (or) the personnel that specify.
15 step: set up mark vector B according to formula (20)
^{i}, formula (21) gives mark vector B
^{i}the definition of a kth element; If mark vector B
^{i}element be 0 entirely, then get back to the 6th step and proceed health monitoring to cable system and calculating; If mark vector B
^{i}element be not 0, then after completing subsequent step entirely, enter and circulate next time.
16 step: according to formula (22) calculate next time (namely the ith+1 time, i=1,2,3,4 ...) needed for circulation initial damage vector d
^{i+1} _{o}each element d
^{i+1} _{ok}(k=1,2,3 ..., N); The second, at initial mechanical Calculation Basis model A
_{o}basis on, to A
_{o}in Cable Structure apply temperature variation, the numerical value of the temperature variation of applying just takes from steady temperature change vector S, then makes the health status of rope be d
^{i+1} _{o}after obtain be exactly next time, namely the ith+1 time (i=1,2,3,4 ...) Mechanics Calculation benchmark model A needed for circulation
^{i+1}; Next time (namely the ith+1 time, i=1,2,3,4 ...) current initial Cable Structure steady temperature data vector T needed for circulation
^{i+1} _{o}equal T
^{i} _{o}.Obtain A
^{i+1}, d
^{i+1} _{o}and T
^{i+1} _{o}after, obtain A by Mechanics Calculation
^{i+1}in all monitored amounts, current concrete numerical value, these the monitored amounts of concrete numerical value composition next time, namely needed for the ith+1 time circulation current initial value vector C
^{i+1} _{o}.
17 step: get back to the 6th step, starts by the circulation of the 6th step to the 17 step.
Claims (1)
1. the damaged cable of temperature variation space coordinate monitoring and a support translation progressive identification method, is characterized in that described method comprises:
A. for sake of convenience, this method unitedly calls evaluated support cable and bearing translational displacement component to be evaluation object, if the quantity sum of the quantity of evaluated support cable and bearing translational displacement component is N, namely the quantity of evaluation object is N; Determine the coding rule of evaluation object, evaluation objects all in Cable Structure numbered by this rule, this numbering will be used for generating vector sum matrix in subsequent step; This method variable k represents this numbering, k=1,2,3 ..., N; Determine to specify by the measured point of monitored volume coordinate, number to all specified points; Determined each measurement point by monitored volume coordinate component, to all measured volume coordinate component numberings; Abovementioned numbering will be used for generating vector sum matrix in subsequent step; " the whole monitored spatial data of Cable Structure " is made up of abovementioned all measured volume coordinate components; For simplicity, in the method " the whole monitored spatial data of Cable Structure " is called " monitored amount "; The quantity sum of all monitored amounts is designated as M, and M must not be less than N; Must not be greater than 30 minutes to the time interval between any twice measurement of same amount RealTime Monitoring in this method, the moment of survey record data is called the physical record data moment;
B. this method definition " the temperature survey calculating method of the Cable Structure of this method " is undertaken by step b1 to b3;
B1: inquiry or actual measurement obtain the temperature variant thermal conduction study parameter of environment residing for Cable Structure composition material and Cable Structure, utilize the geometry measured data of the design drawing of Cable Structure, asconstructed drawing and Cable Structure, utilize these data and parameter to set up the Thermodynamic calculation model of Cable Structure, inquiry Cable Structure location is no less than the meteorological data in recent years of 2 years, the statistics cloudy quantity obtained is during this period of time designated as T cloudy day, in the method daytime can not be seen one of the sun and be called the cloudy day all day, statistics obtains 0 highest temperature after sunrise moment next day between 30 minutes and the lowest temperature at each cloudy day in T cloudy day, the sunrise moment refers to the sunrise moment on the meteorology that base area revolutions and revolution rule are determined, do not represent that the same day necessarily can see the sun, data can be inquired about or calculated sunrise moment of each required day by conventional meteorology, 0 highest temperature after sunrise moment next day between 30 minutes at each cloudy day deducts the maximum temperature difference that the lowest temperature is called the daily temperature at this cloudy day, there is T cloudy day, just there is the maximum temperature difference of the daily temperature at T cloudy day, the maximal value of getting in the maximum temperature difference of the daily temperature at T cloudy day is reference temperature difference per day, Δ T is designated as with reference to temperature difference per day
_{r}, be no less than between inquiry Cable Structure location and Altitude Region, place temperature that the meteorological data in recent years of 2 years or actual measurement obtain environment residing for Cable Structure in time with delta data and the Changing Pattern of sea level elevation, calculate to be no less than 2 years between Cable Structure location and Altitude Region, place Cable Structure in recent years residing for the temperature of environment about the maximum rate of change Δ T of sea level elevation
_{h}, get Δ T for convenience of describing
_{h}unit be DEG C/m, the surface of Cable Structure is got " R Cable Structure surface point ", the Specific Principles getting " R Cable Structure surface point " describes in step b3, the temperature of this R Cable Structure surface point will be obtained below by actual measurement, claiming to survey the temperature data obtained is " R Cable Structure surface temperature measured data ", if utilize the Thermodynamic calculation model of Cable Structure, obtained the temperature of this R Cable Structure surface point by Calculation of Heat Transfer, just claim the temperature data that calculates for " R Cable Structure land surface pyrometer count certificate ", from the minimum height above sea level residing for Cable Structure to most High aititude, in Cable Structure, uniform choosing is no less than three different sea level elevations, at the sea level elevation place that each is chosen, two points are at least chosen at the intersection place on surface level and Cable Structure surface, from the outer normal of selected point straw line body structure surface, all outer normal directions chosen are called " measuring the direction of Cable Structure along the Temperature Distribution of wall thickness ", measure Cable Structure crossing with " intersection on surface level and Cable Structure surface " along the direction of the Temperature Distribution of wall thickness, in in the shade the outer normal direction of the measurement Cable Structure chosen along the sunny slope outer normal direction and Cable Structure that must comprise Cable Structure in the direction of the Temperature Distribution of wall thickness, three points are no less than along each measurement Cable Structure along direction uniform choosing in Cable Structure of the Temperature Distribution of wall thickness, along each, Cable Structure is measured for support cable and only gets a point along the direction of the Temperature Distribution of wall thickness, only measure the temperature of the surface point of support cable, measure all temperature be selected a little, the temperature recorded is called " Cable Structure is along the temperature profile data of thickness ", wherein along crossing with same " intersection on surface level and Cable Structure surface ", " measure the direction of Cable Structure along the Temperature Distribution of wall thickness " to measure " Cable Structure is along the temperature profile data of thickness " that obtain, be called in the method " identical sea level elevation Cable Structure is along the temperature profile data of thickness ", if have chosen the individual different sea level elevation of H, at each sea level elevation place, have chosen B and measure the direction of Cable Structure along the Temperature Distribution of wall thickness, in Cable Structure, E point is have chosen along each measurement Cable Structure along the direction of the Temperature Distribution of wall thickness, wherein H and E is not less than 3, B is not less than 2, 1 is equaled for support cable E, what meter Cable Structure " measured the point of Cable Structure along the temperature profile data of thickness " adds up to HBE, the temperature of this HBE " measuring the point of Cable Structure along the temperature profile data of thickness " will be obtained below by actual measurement, claiming to survey the temperature data obtained is " HBE Cable Structure is along thickness temperature measured data ", if utilize the Thermodynamic calculation model of Cable Structure, obtain this HBE by Calculation of Heat Transfer and measure the temperature of Cable Structure along the point of the temperature profile data of thickness, the temperature data calculated just is claimed to be " HBE Cable Structure calculates data along thickness temperature ", measure temperature in Cable Structure location according to meteorology to require to choose a position, obtain meeting the temperature that meteorology measures the Cable Structure place environment of temperature requirement by the actual measurement of this position, in the onsite spaciousness of Cable Structure, unobstructed place chooses a position, this position should each of the whole year day can obtain this ground the most sufficient sunshine of this day getable, at the flat board of this position of sound production one piece of carbon steel material, be called reference plate, reference plate can not contact with ground, reference plate overhead distance is not less than 1.5 meters, the one side of this reference plate on the sunny side, be called sunny slope, the sunny slope of reference plate is coarse with dark color, the sunny slope of reference plate should each of the whole year day can obtain one flat plate on this ground the most sufficient sunshine of this day getable, the nonsunny slope of reference plate is covered with insulation material, RealTime Monitoring is obtained the temperature of the sunny slope of reference plate,
B2: RealTime Monitoring obtains R Cable Structure surface temperature measured data of abovementioned R Cable Structure surface point, RealTime Monitoring obtains the temperature profile data of previously defined Cable Structure along thickness simultaneously, and RealTime Monitoring obtains meeting the temperature record that meteorology measures the Cable Structure place environment of temperature requirement simultaneously, the temperature measured data sequence of the Cable Structure place environment after sunrise moment next day between 30 minutes is obtained being carved at sunrise the same day by RealTime Monitoring, the temperature measured data sequence of Cable Structure place environment is arranged according to time order and function order by the temperature measured data of the Cable Structure place environment after being carved into the sunrise moment next day same day at sunrise between 30 minutes, find the maximum temperature in the temperature measured data sequence of Cable Structure place environment and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains Cable Structure place environment after sunrise moment next day between 30 minutes is deducted by the maximum temperature in the temperature measured data sequence of Cable Structure place environment, be called environment maximum temperature difference, be designated as Δ T
_{emax}, calculated the rate of change of temperature about the time of Cable Structure place environment by Conventional mathematical by the temperature measured data sequence of Cable Structure place environment, this rate of change is also along with time variations, the measured data sequence of the temperature of the sunny slope of the reference plate after sunrise moment next day between 30 minutes is obtained being carved at sunrise the same day by RealTime Monitoring, the measured data sequence of the temperature of the sunny slope of reference plate is arranged according to time order and function order by the measured data of the temperature of the sunny slope of the reference plate after being carved into the sunrise moment next day same day at sunrise between 30 minutes, find the maximum temperature in the measured data sequence of the temperature of the sunny slope of reference plate and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains the temperature of the sunny slope of reference plate after sunrise moment next day between 30 minutes is deducted by the maximum temperature in the measured data sequence of the temperature of the sunny slope of reference plate, be called reference plate maximum temperature difference, be designated as Δ T
_{pmax}, the Cable Structure surface temperature measured data sequence of all R Cable Structure surface points after sunrise moment next day between 30 minutes is obtained being carved at sunrise the same day by RealTime Monitoring, R Cable Structure surface point is had just to have R Cable Structure surface temperature measured data sequence, each Cable Structure surface temperature measured data sequence is arranged according to time order and function order by the Cable Structure surface temperature measured data after being carved into the sunrise moment next day same day of a Cable Structure surface point at sunrise between 30 minutes, find the maximum temperature in each Cable Structure surface temperature measured data sequence and minimum temperature, the maximum temperature difference be carved at sunrise on same day that minimum temperature obtains the temperature of each Cable Structure surface point after sunrise moment next day between 30 minutes is deducted by the maximum temperature in each Cable Structure surface temperature measured data sequence, there is R Cable Structure surface point just to have to be carved at sunrise R the same day maximum temperature difference numerical value between 30 minutes after sunrise moment next day, maximal value is wherein called Cable Structure surface maximum temperature difference, be designated as Δ T
_{smax}, calculated the rate of change of temperature about the time of each Cable Structure surface point by Conventional mathematical by each Cable Structure surface temperature measured data sequence, the temperature of each Cable Structure surface point about the rate of change of time also along with time variations, obtain being carved at sunrise the same day after sunrise moment next day between 30 minutes by RealTime Monitoring, at synchronization, after HBE " Cable Structure is along the temperature profile data of thickness ", calculate the difference amounting to maximum temperature in BE " identical sea level elevation Cable Structure is along the temperature profile data of thickness " and minimum temperature at the sea level elevation place that each is chosen, the absolute value of this difference is called " identical sea level elevation place Cable Structure thickness direction maximum temperature difference ", have chosen H different sea level elevation just to have H " identical sea level elevation place Cable Structure thickness direction maximum temperature difference ", the maximal value in this H " identical sea level elevation place Cable Structure thickness direction maximum temperature difference " is claimed to be " Cable Structure thickness direction maximum temperature difference ", be designated as Δ T
_{tmax},
B3: survey calculation obtains Cable Structure steady temperature data, first, determine the moment obtaining Cable Structure steady temperature data, the condition relevant to the moment determining to obtain Cable Structure steady temperature data has six, Section 1 condition is moment of obtaining Cable Structure steady temperature data between after being carved into sunrise moment next day at sunset between 30 minutes on same day, the sunset moment refers to the sunset moment on base area revolutions and the meteorology determined of revolution rule, can inquire about data or be calculated sunset moment of each required day by conventional meteorology, the a condition of Section 2 condition be after being carved into sunrise moment next day at sunrise between 30 minutes on same day during this period of time in, reference plate maximum temperature difference Δ T
_{pmax}with Cable Structure surface maximum temperature difference Δ T
_{smax}all be not more than 5 degrees Celsius, the b condition of Section 2 condition be after being carved into sunrise moment next day at sunrise between 30 minutes on same day during this period of time in, the environment maximum temperature difference Δ T that survey calculation obtains above
_{emax}be not more than with reference to temperature difference per day Δ T
_{r}, and reference plate maximum temperature difference Δ T
_{pmax}Δ T is not more than after deducting 2 degrees Celsius
_{emax}, and Cable Structure surface maximum temperature difference Δ T
_{smax}be not more than Δ T
_{pmax}, one of only need meet in a condition of Section 2 and b condition is just called and meets Section 2 condition, Section 3 condition is when obtaining Cable Structure steady temperature data, and the temperature of Cable Structure place environment is not more than 0.1 degree Celsius per hour about the absolute value of the rate of change of time, Section 4 condition is when obtaining Cable Structure steady temperature data, and the temperature of each the Cable Structure surface point in R Cable Structure surface point is not more than 0.1 degree Celsius per hour about the absolute value of the rate of change of time, Section 5 condition is when obtaining Cable Structure steady temperature data, and the Cable Structure surface temperature measured data of each the Cable Structure surface point in R Cable Structure surface point is be carved into the minimal value after sunrise moment next day between 30 minutes the same day at sunrise, Section 6 condition is when obtaining Cable Structure steady temperature data, " Cable Structure thickness direction maximum temperature difference " Δ T
_{tmax}be not more than 1 degree Celsius, this method utilizes abovementioned six conditions, any one in following three kinds of moment is called " the mathematics moment obtaining Cable Structure steady temperature data ", the first moment meets the moment of the Section 1 in abovementioned " condition relevant to the moment determining to obtain Cable Structure steady temperature data " to Section 5 condition, the second moment is moment of the Section 6 condition only met in abovementioned " condition relevant to determining to obtain moment of Cable Structure steady temperature data ", simultaneously the third moment meets the moment of the Section 1 in abovementioned " condition relevant to the moment determining to obtain Cable Structure steady temperature data " to Section 6 condition, when the mathematics moment obtaining Cable Structure steady temperature data is exactly a moment in this method in the physical record data moment, the moment obtaining Cable Structure steady temperature data is exactly the mathematics moment obtaining Cable Structure steady temperature data, if the mathematics moment obtaining Cable Structure steady temperature data is not any one moment in this method in the physical record data moment, then getting this method closest to moment of those physical record data in the mathematics moment obtaining Cable Structure steady temperature data is the moment obtaining Cable Structure steady temperature data, the amount being used in the moment survey record obtaining Cable Structure steady temperature data is carried out Cable Structure relevant health monitoring analysis by this method, this method is similar to thinks that the Cable Structure temperature field in the moment obtaining Cable Structure steady temperature data is in stable state, and namely the Cable Structure temperature in this moment does not change in time, and this moment is exactly " obtaining the moment of Cable Structure steady temperature data " of this method, then, according to Cable Structure heat transfer characteristic, utilize " R the Cable Structure surface temperature measured data " and " HBE Cable Structure is along thickness temperature measured data " in the moment obtaining Cable Structure steady temperature data, utilize the Thermodynamic calculation model of Cable Structure, the Temperature Distribution of the Cable Structure in the moment obtaining Cable Structure steady temperature data is calculated by conventional heat transfer, now the temperature field of Cable Structure calculates by stable state, the temperature profile data of the Cable Structure in the moment in acquisition Cable Structure steady temperature data calculated comprises the accounting temperature of R Cable Structure surface point in Cable Structure, the accounting temperature of R Cable Structure surface point is called that R Cable Structure steadystate surface temperature calculates data, also comprise the accounting temperature of Cable Structure selected HBE " measuring the point of Cable Structure along the temperature profile data of thickness " above, the accounting temperature of HBE " measuring the point of Cable Structure along the temperature profile data of thickness " is called " HBE Cable Structure calculates data along thickness temperature ", when R Cable Structure surface temperature measured data and R Cable Structure steadystate surface temperature calculate data correspondent equal, and when " HBE Cable Structure is along thickness temperature measured data " and " HBE Cable Structure calculates data along thickness temperature " correspondent equal, the temperature profile data of the Cable Structure in the moment in acquisition Cable Structure steady temperature data calculated is called " Cable Structure steady temperature data " in the method, " R Cable Structure surface temperature measured data " is now called " R Cable Structure steadystate surface temperature measured data ", " HBE Cable Structure is along thickness temperature measured data " is called " HBE Cable Structure is along thickness steady temperature measured data ", when the surface of Cable Structure is got " R Cable Structure surface point ", the quantity of " R Cable Structure surface point " must meet three conditions with distribution, first condition is when Cable Structure temperature field is in stable state, when the temperature of Cable Structure any point be on the surface by " R Cable Structure surface point " in obtain with the observed temperature linear interpolation of the Cable Structure point that this arbitrfary point is adjacent on the surface time, the error of the Cable Structure that linear interpolation the obtains temperature of this arbitrfary point and the Cable Structure actual temperature of this arbitrfary point on the surface is on the surface not more than 5%, Cable Structure surface comprises support cable surface, second condition is not less than 4 in the quantity of the point of same sea level elevation in " R Cable Structure surface point ", and uniform along Cable Structure surface at the point of same sea level elevation in " R Cable Structure surface point ", " R Cable Structure surface point " is not more than 0.2 DEG C divided by Δ T along the maximal value Δ h in the absolute value of all differences of the sea level elevation of adjacent Cable Structure surface point between two of sea level elevation
_{h}the numerical value obtained, gets Δ T for convenience of describing
_{h}unit be DEG C/m, be m for convenience of describing the unit getting Δ h, " R Cable Structure surface point " along the definition of the adjacent between two Cable Structure surface point of sea level elevation refer to only consider sea level elevation time, in " R Cable Structure surface point ", there is not a Cable Structure surface point, the sea level elevation numerical value of this Cable Structure surface point is between the sea level elevation numerical value of adjacent Cable Structure surface point between two, 3rd condition is inquiry or obtains the rule at sunshine between Cable Structure location and Altitude Region, place by meteorology conventionally calculation, again according to geometric properties and the bearing data of Cable Structure, Cable Structure finds the annual position by sunshineduration those surface points the most sufficient, in " R Cable Structure surface point ", has at least a Cable Structure surface point to be annual by a point in sunshineduration the most fully those surface points in Cable Structure,
C. the Cable Structure steady temperature data under original state are obtained according to " the temperature survey calculating method of the Cable Structure of this method " direct survey calculation, Cable Structure steady temperature data under original state are called initial Cable Structure steady temperature data, are designated as " initial Cable Structure steady temperature data vector T
_{o}"; Survey or consult reference materials and obtain the temperature variant physical and mechanical properties parameter of the various materials that Cable Structure uses; T is obtained in actual measurement
_{o}while, namely at the initial Cable Structure steady temperature data vector T of acquisition
_{o}the synchronization in moment, direct survey calculation obtains the measured data of initial Cable Structure, and the measured data of initial Cable Structure comprises the Nondestructive Testing Data of the health status expressing support cable, Cable Structure bearing initial translation displacement measurement data, the initial value of all monitored amounts, the Initial cable force data of all support cables, initial Cable Structure modal data, initial Cable Structure strain data, initial Cable Structure geometric data, initial Cable Structure support coordinate data, initial Cable Structure angledata, initial Cable Structure spatial data; The initial value of all monitored amounts forms monitored amount initial value vector C
_{o}, monitored amount initial value vector C
_{o}the coding rule of coding rule and M monitored amount identical; Utilization can express the Nondestructive Testing Data of the health status of support cable and Cable Structure bearing initial translation displacement measurement data set up evaluation object initial damage vector d
_{o}, vectorial d
_{o}represent with initial mechanical Calculation Basis model A
_{o}the initial health of the evaluation object of the Cable Structure represented; Evaluation object initial damage vector d
_{o}element number equal N, d
_{o}element and evaluation object be onetoone relationship, vectorial d
_{o}the coding rule of element identical with the coding rule of evaluation object; If d
_{o}evaluation object corresponding to some elements be support cable, so a d in cable system
_{o}the numerical value of this element represent the initial damage degree of corresponding support cable, if the numerical value of this element is 0, represent that the support cable corresponding to this element is intact, do not damage, if its numerical value is 100%, then represent that the support cable corresponding to this element completely loses loadbearing capacity, if its numerical value is between 0 and 100%, then represent that this support cable loses the loadbearing capacity of corresponding proportion; If d
_{o}evaluation object corresponding to some elements be some translational displacement components of some bearings, so d
_{o}the numerical value of this element represent the initial value of this translational displacement component of this bearing; If there is no the Nondestructive Testing Data of support cable and other are when can express the data of the health status of support cable, or can think structure original state be not damaged without relaxed state time, vectorial d
_{o}in each element numerical value relevant to support cable get 0, if when there is no Cable Structure bearing initial translation displacement measurement data or can think that the displacement of Cable Structure bearing initial translation is 0, vectorial d
_{o}in each element numerical value relevant to Cable Structure bearing translational displacement get 0; Initial Cable Structure support coordinate data refer to the support coordinate data under Cable Structure design point, and Cable Structure bearing initial translation displacement measurement data refer to setting up initial mechanical Calculation Basis model A
_{o}time, the translational displacement that Cable Structure bearing occurs relative to the bearing under Cable Structure design point;
Temperature variant physical and mechanical properties parameter, the initial Cable Structure steady temperature data vector T of the various materials d. used according to the measured data of the design drawing of Cable Structure, asconstructed drawing and initial Cable Structure, the Nondestructive Testing Data of support cable, Cable Structure bearing initial translation displacement measurement data, Cable Structure
_{o}with all Cable Structure data that preceding step obtains, set up the initial mechanical Calculation Basis model A counting the Cable Structure of " Cable Structure steady temperature data "
_{o}, based on A
_{o}the Cable Structure that calculates calculates data must closely its measured data, and difference therebetween must not be greater than 5%; Corresponding to A
_{o}" Cable Structure steady temperature data " be exactly " initial Cable Structure steady temperature data vector T
_{o}"; Corresponding to A
_{o}evaluation object health status with evaluation object initial damage vector d
_{o}represent; Corresponding to A
_{o}the initial value monitored amount initial value vector C of all monitored amount
_{o}represent; T
_{o}and d
_{o}a
_{o}parameter, by A
_{o}the initial value of all monitored amount that obtains of Mechanics Calculation result and C
_{o}the initial value of all monitored amount represented is identical, therefore alternatively C
_{o}by A
_{o}mechanics Calculation result composition, A in the method
_{o}, C
_{o}, d
_{o}and T
_{o}constant;
E. in the method, alphabetical i is except representing the place of number of steps significantly, and alphabetical i only represents cycle index, i.e. ith circulation; Ith circulation needs the current initial mechanical Calculation Basis model of Cable Structure that is that set up or that set up to be designated as current initial mechanical Calculation Basis model A when starting
^{i} _{o}, A
_{o}and A
^{i} _{o}count temperature parameter, can the Effect on Mechanical Properties of accounting temperature change to Cable Structure; When ith circulation starts, corresponding to A
^{i} _{o}" Cable Structure steady temperature data " with current initial Cable Structure steady temperature data vector T
^{i} _{o}represent, vector T
^{i} _{o}definition mode and vector T
_{o}definition mode identical, T
^{i} _{o}element and T
_{o}element one_to_one corresponding; The current initial damage vector of evaluation object that ith circulation needs when starting is designated as d
^{i} _{o}, d
^{i} _{o}cable Structure A when representing that this circulation starts
^{i} _{o}the health status of evaluation object, d
^{i} _{o}definition mode and d
_{o}definition mode identical, d
^{i} _{o}element and d
_{o}element one_to_one corresponding; When ith circulation starts, the initial value of all monitored amounts, with monitored amount current initial value vector C
^{i} _{o}represent, vectorial C
^{i} _{o}definition mode and vectorial C
_{o}definition mode identical, C
^{i} _{o}element and C
_{o}element one_to_one corresponding, monitored amount current initial value vector C
^{i} _{o}represent and correspond to A
^{i} _{o}the concrete numerical value of all monitored amount; T
^{i} _{o}and d
^{i} _{o}a
^{i} _{o}characterisitic parameter, C
^{i} _{o}by A
^{i} _{o}mechanics Calculation result composition; When first time, circulation started, A
^{i} _{o}be designated as A
^{1} _{o}, set up A
^{1} _{o}method for making A
^{1} _{o}equal A
_{o}; When first time, circulation started, T
^{i} _{o}be designated as T
^{1} _{o}, set up T
^{1} _{o}method for making T
^{1} _{o}equal T
_{o}; When first time, circulation started, d
^{i} _{o}be designated as d
^{1} _{o}, set up d
^{1} _{o}method for making d
^{1} _{o}equal d
_{o}; When first time, circulation started, C
^{i} _{o}be designated as C
^{1} _{o}, set up C
^{1} _{o}method for making C
^{1} _{o}equal C
_{o};
F. from entering the circulation being walked to q step by f here; In structure military service process, the current data of Cable Structure steady temperature data is obtained, the current data composition current cable structure steady temperature data vector T of all " Cable Structure steady temperature data " according to " the temperature survey calculating method of the Cable Structure of this method " continuous Actual measurement
^{i}, vector T
^{i}definition mode and vector T
_{o}definition mode identical, T
^{i}element and T
_{o}element one_to_one corresponding; Vector T is obtained in actual measurement
^{i}while, actual measurement obtains at acquisition current cable structure steady temperature data vector T
^{i}moment synchronization Cable Structure in the currency of all monitored amounts, all these numerical value form monitored amount current value vector C
^{i}, vectorial C
^{i}definition mode and vectorial C
_{o}definition mode identical, C
^{i}element and C
_{o}element one_to_one corresponding, represent that identical monitored amount is at not numerical value in the same time;
G. according to current cable structure steady temperature data vector T
^{i}, upgrade current initial mechanical Calculation Basis model A according to step g 1 to g3
^{i} _{o}, monitored amount current initial value vector C
^{i} _{o}with current initial Cable Structure steady temperature data vector T
^{i} _{o}, and evaluation object current initial damage vector d
^{i} _{o}remain unchanged;
G1. T is compared
^{i}with T
^{i} _{o}if, T
^{i}equal T
^{i} _{o}, then A
^{i} _{o}, C
^{i} _{o}and T
^{i} _{o}remain unchanged; Otherwise need to follow these steps to A
^{i} _{o}, C
^{i} _{o}and T
^{i} _{o}upgrade;
G2. T is calculated
^{i}with T
_{o}difference, T
^{i}with T
_{o}difference be exactly the changes of current cable structure steady temperature data about initial Cable Structure steady temperature data, T
^{i}with T
_{o}difference represent with steady temperature change vector S, S equals T
^{i}deduct T
_{o}, S represents the change of Cable Structure steady temperature data;
G3. to A
_{o}in Cable Structure apply temperature variation, the numerical value of the temperature variation of applying just takes from steady temperature change vector S, to A
_{o}in Cable Structure apply temperature variation after obtain upgrade current initial mechanical Calculation Basis model A
^{i} _{o}, upgrade A
^{i} _{o}while, T
^{i} _{o}all elements numerical value also uses T
^{i}all elements numerical value correspondence replace, namely have updated T
^{i} _{o}, so just obtain and correctly correspond to A
^{i} _{o}t
^{i} _{o}; Now d
^{i} _{o}remain unchanged; As renewal A
^{i} _{o}after, A
^{i} _{o}the health status evaluation object of rope current initial damage vector d
^{i} _{o}represent, A
^{i} _{o}cable Structure steady temperature current cable structure steady temperature data vector T
^{i}represent, upgrade C
^{i} _{o}method be: when renewal A
^{i} _{o}after, obtain A by Mechanics Calculation
^{i} _{o}in all monitored amounts, current concrete numerical value, these concrete numerical value composition C
^{i} _{o};
H. at current initial mechanical Calculation Basis model A
^{i} _{o}basis on, carry out several times Mechanics Calculation according to step h1 to step h4, by calculate set up unit damage monitored numerical quantity unit change matrix Δ C
^{i}with unit damage or unit translational displacement vector D
^{i} _{u};
H1., when ith circulation starts, directly Δ C is obtained by method listed by step h2 to step h4
^{i}and D
^{i} _{u}; In other moment, when in step g to A
^{i} _{o}after upgrading, Δ C must be regained by method listed by step h2 to step h4
^{i}and D
^{i} _{u}if, not to A in step g
^{i} _{o}upgrade, then directly proceed to step I herein and carry out followup work;
H2. at current initial mechanical Calculation Basis model A
^{i} _{o}basis on carry out several times Mechanics Calculation, calculation times numerically equals the quantity N of all evaluation objects, has N number of evaluation object just to have N calculating; According to the coding rule of evaluation object, calculate successively; Calculating hypothesis each time only has an evaluation object to increase unit damage or unit translational displacement again on the basis of original damage or translational displacement, concrete, if this evaluation object is a support cable in cable system, so just suppose that this support cable increases unit damage again, if this evaluation object is the translational displacement component in a direction of a bearing, just suppose that this bearing increases unit translational displacement again at this sense of displacement, use D
^{i} _{uk}record unit damage or the unit translational displacement of this increase, wherein k represents the numbering of the evaluation object increasing unit damage or unit translational displacement, D
^{i} _{uk}unit damage or unit translational displacement vector D
^{i} _{u}an element, unit damage or unit translational displacement vector D
^{i} _{u}the coding rule of element and vectorial d
_{o}the coding rule of element identical; The evaluation object increasing unit damage or unit translational displacement in calculating each time is again different from during other time calculates the evaluation object increasing unit damage or unit translational displacement again, calculate the current calculated value all utilizing mechanics method to calculate all monitored amount of Cable Structure each time, the current calculated value of all monitored amount calculated each time forms a monitored amount calculation current vector; When supposing that a kth evaluation object increases unit damage or unit translational displacement again, use C
^{i} _{tk}represent corresponding " monitored amount calculation current vector "; When giving the element number of each vector in this step, same coding rule should be used with other vector in this method, to ensure any one element in this step in each vector, with in other vector, number identical element, have expressed the relevant information of same monitored amount or same target; C
^{i} _{tk}definition mode and vectorial C
_{o}definition mode identical, C
^{i} _{tk}element and C
_{o}element one_to_one corresponding;
H3. the vectorial C calculated each time
^{i} _{tk}deduct vectorial C
^{i} _{o}obtain a vector, then after each element of this vector is calculated divided by this unit damage or unit translational displacement numerical value supposed, obtain " numerical value change vector δ a C for monitored amount
^{i} _{k}"; N number of evaluation object is had just to have N number of " the numerical value change vector of monitored amount ";
H4. by this is N number of " the numerical value change vector of monitored amount " according to the coding rule of N number of evaluation object, " the unit damage monitored numerical quantity unit change matrix Δ C having N to arrange is formed successively
^{i}"; Unit damage monitored numerical quantity unit change matrix Δ C
^{i}each row correspond to a monitored amount unit change vector; Unit damage monitored numerical quantity unit change matrix Δ C
^{i}every a line correspond to the different unit change amplitude of same monitored amount when different evaluation object increases unit damage or unit translational displacement; Unit damage monitored numerical quantity unit change matrix Δ C
^{i}the coding rule of row and vectorial d
_{o}the coding rule of element identical, unit damage monitored numerical quantity unit change matrix Δ C
^{i}the coding rule of coding rule and M monitored amount of row identical;
I. current nominal fatigue vector d is defined
^{i} _{c}with current actual damage vector d
^{i}, d
^{i} _{c}and d
^{i}element number equal the quantity of support cable, d
^{i} _{c}and d
^{i}element and support cable between be onetoone relationship, d
^{i} _{c}and d
^{i}element numerical value represent degree of injury or the health status of corresponding support cable, d
^{i} _{c}and d
^{i}with evaluation object initial damage vector d
_{o}element number rule identical, d
^{i} _{c}element, d
^{i}element and d
_{o}element be onetoone relationship;
J. according to monitored amount current value vector C
^{i}with " monitored amount current initial value vector C
^{i} _{o}", " unit damage monitored numerical quantity unit change matrix Δ C
^{i}" and " current nominal fatigue vector d
^{i} _{c}" between the linear approximate relationship that exists, this linear approximate relationship can be expressed as formula 1, except d in formula 1
^{i} _{c}other outer amount is known, solves formula 1 and just can calculate current nominal fatigue vector d
^{i} _{c};
K. the current actual damage vector d utilizing formula 2 to express
^{i}a kth element d
^{i} _{k}with evaluation object current initial damage vector d
^{i} _{o}a kth element d
^{i} _{ok}with current nominal fatigue vector d
^{i} _{c}a kth element d
^{i} _{ck}between relation, calculate current actual damage vector d
^{i}all elements;
k=1 in formula 2,2,3 ..., N; d
^{i} _{k}represent the current actual health status of a kth evaluation object in ith circulation, if this evaluation object is support cable, so a d in cable system
^{i} _{k}represent its current actual damage, d
^{i} _{k}represent not damaged when being 0, when being 100%, represent that this support cable thoroughly loses loadbearing capacity, represent the loadbearing capacity losing corresponding proportion time between 0 and 100%, if this evaluation object is translational displacement component, so a d of a bearing
^{i} _{k}represent its current actual translational displacement numerical value, vectorial d
^{i}the coding rule of element and formula (1) in vectorial d
_{o}the coding rule of element identical;
L. current nominal fatigue vector d is tried to achieve
^{i} _{c}after, set up mark vector B according to formula 3
^{i}, formula 4 gives mark vector B
^{i}the definition of a kth element;
Element B in formula 4
^{i} _{k}mark vector B
^{i}a kth element, D
^{i} _{uk}unit damage or unit translational displacement vector D
^{i} _{u}a kth element, d
^{i} _{ck}evaluation object current nominal fatigue vector d
^{i} _{c}a kth element, they all represent the relevant information of a kth evaluation object, k=1 in formula 4,2,3 ..., N;
If m. mark vector B
^{i}element be 0 entirely, then get back to step f continue this circulation; If mark vector B
^{i}element be not 0 entirely, then enter next step, i.e. step n;
N. calculate next time according to formula 5, evaluation object current initial damage vector d namely needed for the ith+1 time circulation
^{i+1} _{o}each element;
D in formula 5
^{i+1} _{ok}the evaluation object current initial damage vector d next time, namely needed for the ith+1 time circulation
^{i+1} _{o}a kth element, d
^{i} _{ok}this, i.e. the evaluation object of ith circulation current initial damage vector d
^{i} _{o}a kth element, D
^{i} _{uk}unit damage or the unit translational displacement vector D of ith circulation
^{i} _{u}a kth element, B
^{i} _{k}the mark vector B of ith circulation
^{i}a kth element, k=1 in formula 5,2,3 ..., N;
O. take off once, namely the ith+1 time circulation needed for current initial Cable Structure steady temperature data vector T
^{i+1} _{o}equal the current initial Cable Structure steady temperature data vector T of ith circulation
^{i} _{o};
P. at initial mechanical Calculation Basis model A
_{o}basis on, to A
_{o}in Cable Structure apply temperature variation, the numerical value of the temperature variation of applying just takes from steady temperature change vector S, then makes the health status of rope be d
^{i+1} _{o}after obtain be exactly next time, namely the ith+1 time circulation needed for Mechanics Calculation benchmark model A
^{i+1}; Obtain A
^{i+1}after, obtain A by Mechanics Calculation
^{i+1}in all monitored amounts, current concrete numerical value, these the monitored amounts of concrete numerical value composition next time, namely needed for the ith+1 time circulation current initial value vector C
^{i+1} _{o};
Q. get back to step f, start to circulate next time.
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