CN104833536A - Structure fatigue life calculation method based on non-linear cumulative damage theory - Google Patents

Structure fatigue life calculation method based on non-linear cumulative damage theory Download PDF

Info

Publication number
CN104833536A
CN104833536A CN201410049401.6A CN201410049401A CN104833536A CN 104833536 A CN104833536 A CN 104833536A CN 201410049401 A CN201410049401 A CN 201410049401A CN 104833536 A CN104833536 A CN 104833536A
Authority
CN
China
Prior art keywords
stress
damage
fatigue
sigma
rho
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
CN201410049401.6A
Other languages
Chinese (zh)
Inventor
蔡福海
王兴权
潘志毅
罗建国
李树清
丁国林
张玉林
李梦然
商国旭
何映仁
姜官斌
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
CHANGZHOU YILIYA HEAVY INDUSTRY MACHINERY TECHNOLOGY Co Ltd
DALIAN UNIVERSITY OF Technology (XUZHOU)ENGINEERING MACHINERY RESEARCH CENTRAL
DALIAN YILIYA CONSULTING Co Ltd
Special Equipment Inspection Institute Of Chifeng City
Dalian University of Technology
Original Assignee
CHANGZHOU YILIYA HEAVY INDUSTRY MACHINERY TECHNOLOGY Co Ltd
DALIAN UNIVERSITY OF Technology (XUZHOU)ENGINEERING MACHINERY RESEARCH CENTRAL
DALIAN YILIYA CONSULTING Co Ltd
Special Equipment Inspection Institute Of Chifeng City
Dalian University of Technology
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by CHANGZHOU YILIYA HEAVY INDUSTRY MACHINERY TECHNOLOGY Co Ltd, DALIAN UNIVERSITY OF Technology (XUZHOU)ENGINEERING MACHINERY RESEARCH CENTRAL, DALIAN YILIYA CONSULTING Co Ltd, Special Equipment Inspection Institute Of Chifeng City, Dalian University of Technology filed Critical CHANGZHOU YILIYA HEAVY INDUSTRY MACHINERY TECHNOLOGY Co Ltd
Priority to CN201410049401.6A priority Critical patent/CN104833536A/en
Publication of CN104833536A publication Critical patent/CN104833536A/en
Pending legal-status Critical Current

Links

Landscapes

  • Investigating Strength Of Materials By Application Of Mechanical Stress (AREA)

Abstract

A structure fatigue life calculation method based on the non-linear cumulative damage theory comprises the following steps: firstly, performing a stress analysis on a metal structure through the finite element technology and determining a large-stress-value area as a dangerous area, secondly, determining initial damage of the structure according to a served age and surface quality detection of the structure, thirdly, measuring a stress spectrum of the structure in a certain period through a stress detector, fourthly, calculating cumulative damage of the structure under the stress spectrum through the non-linear cumulative damage theory, and fifthly, calculating a fatigue life of the metal structure through the cumulative damage. According to the method, the multi-stage load loading sequence and an influence of the size of a load on the cumulative damage are taken into account, and precision of the fatigue life is higher than the precision of a fatigue life calculated according to the linear cumulative damage theory. The method only needs a small amount of material performance data such as a cyclic stress-strain curve and a constant-amplitude strain life curve, calculation is simple, and the method is suitable for engineering applications.

Description

A kind of structure fatigue life computing method based on Nonlinear Cumulative defect theory
Technical field
The invention provides a kind of structure fatigue life computing method based on Nonlinear Cumulative defect theory, belong to Analysis of Fatigue and reliability assessment technical field.
Background technology
According to statistics, the fatigue break that occurs in engineering reality destroys, and accounts for the 50%-90% of whole mechanical failure, is one of the most common form of machinery, structural failure.Product, under the anticorrosion ringing of load, can produce fatigue damage, and when impairment value reaches certain threshold value, structure is by fatigue failure.
Current variable amplitude loading calculates the more employing of damage and shows the linear rule of Palmgren-Miner, but its result of calculation has larger dispersion rate, and therefore life appraisal precision is lower.In recent years, some models based on various Theory of Fracture Mechanics and In-Situ Observation Technique are developed, consider the unrelieved stress and crack tip closing phenomenon that are caused by the material plastic deformation of crack tip, comprise some Nonlinear Cumulative defect theories based on experimental data.Although these model methods are more more accurate than Miner rule, obtain application to a certain extent, owing to needing a large amount of experimental datas to carry out matching, engineering adaptability is not strong.
Based on above background and analysis, the present invention proposes a kind of structure fatigue life computing method based on Nonlinear Cumulative defect theory, only need the material characteristic data that the cyclic stress-strain curve of material and normal width Strain life curves etc. are a small amount of, calculate simple, can in applied metal component in low circumferential strain analysis of Fatigue-life.
Summary of the invention
(1) object of the present invention: the feature of and former Nonlinear Cumulative defect theory computing method complexity low for Palmgren-Miner linear rule computational accuracy, there is provided a kind of Nonlinear Cumulative defect theory based on strain parameter of reduced form to calculate accumulated damage, thus calculate the fatigue lifetime of component.First it need the hazardous location determining component, then determines that initial damage substitutes into and calculate, obtain stress spectra by instrument or simulation means, by Nonlinear Cumulative defect theory, calculates the accumulated damage of metal construction under stress spectra and fatigue lifetime.
(2) technical scheme:
A kind of structure fatigue life computing method based on Nonlinear Cumulative defect theory that the present invention proposes, based on following hypothesis:
Suppose that 1 fatigue load spectrum is known, the load varied in size by m level forms, and every grade of damage caused is designated as D m, D mpermanent after producing exist;
Suppose that 2 work as D maccumulation when reaching the limit values D, general D gets between 0.5-2, and the fatigue representing metal construction reaches capacity, and structural fatigue destroys.
The concrete steps of the method are as follows:
Step one, to be calculated by finite element analysis software or theory of mechanics, stress analysis is carried out to metal construction, determines that the region that in metal construction, stress value is larger is analyzed as hazardous location.
For finite element analysis software, the softwares such as NASTRAN, ADINA, ANSYS, ABAQUS, MARC, MAGSOFT, COSMOS can be utilized, set up the finite element model of metal construction, and the operating mode of getting one exemplary carries out statics and dynamic analysis, find out under typical condition, stress value or the larger dangerous point of stress amplitude or hazardous location.For general metal construction, its stress reaches more than 80% of its yield limit, belongs to more dangerous, should be classified as hazardous location.
Step 2, according to the Years Of Service of metal construction and appearance quality testing, determine its initial damage.
According to the Years Of Service of metal construction and its material stress-cycle index curve (S-N curve), can preliminary judgement its whether enter fatigue.Low-cycle fatigue cycle index may be defined as 10 3-10 5number of times, high cycle fatigue cycle index is greater than 10 5number of times.When cycle index of being on active service is more than 10 3time, initial damage can count damage.According to appearance quality testing, whether it has crackle to exist, and can judge the concrete numerical value of initial damage.When crackle is less than 0.2mm, initial damage can be defined as between 0.01-0.1.
Step 3, by structural stress detecting instrument, measure strain-time spectrum or the stress-time spectrum of structure in hazardous location in some cycles, obtain stress spectra as shown in Figure 1.Meanwhile, ADAMS software can be utilized, carry out dynamics simulation, obtain its simulated stress spectrum.
By on metallic structures, adopt foil gauge patch form, measure the strain-time history of works under various typical condition.For simple metal works, the real data that the data that can directly adopt foil gauge to measure strain as it.For welded structure, the stress of its welding toe directly can not measure acquisition, adopts the mode of multimetering, and indirect calculation obtains the stress of welding toe.As shown in Figure 2, the stress of welding toe adopts shown in formula 1 the measuring point figure of the welded stress paster of template.As shown in Figure 3, the stress of welding toe adopts shown in formula 2 and formula 3 the measuring point figure of the welded stress paster of cast.
σ hs = x 2 · σ 1 - x 1 · σ 2 x 2 - x 1 - - - ( 1 )
Wherein, σ hswelding toe focus stress, σ 1, σ 2that distance welding toe is apart from being x respectively 1, x 2surface stress, can be obtained by FEM (finite element) calculation or stress test.
In Fig. 3, a = 0.2 rt , b 1 = b 2 = 0.65 rt , b 3 = 0.5 RT
Welding toe Stress calculation formula is:
σ bhs = b 1 · σ a - a · σ b 1 b 1 - a - - - ( 2 )
σ chs = b 3 · σ a - a · σ b 3 b 3 - a - - - ( 3 )
In formula (1), (2), σ bhsfor the focus stress of web member welding toe, σ chsfor the focus stress of chord member welding toe, being respectively distance toe of weld is a, b 1, b 3surface stress, the same Fig. 3 of other parameters.
Step 4, by Nonlinear Cumulative defect theory, calculate the accumulated damage of metal construction under stress spectra.By accumulated damage, calculate the fatigue lifetime of metal construction.When each circulation damage accumulation until lost efficacy time total impairment value D tbe 1, the fatigue lifetime of the component for this reason of cycle index i now.The flow process of whole calculating as shown in Figure 4.
Suppose D tall circulations damage D isummation, shown in (4).
D T = Σ i = = 1 2 N T D i - - - ( 4 )
D in this definition ibe damaged by i-th normalization oppositely caused, work as D tlost efficacy when being 1.Normal width strain-life formula adopts Basquin-Manson-Coffin (BMC) formula, shown in (5).
Δϵ 2 = Δϵ e 2 + Δϵ p 2 = σ f ' E ( 2 N f ) b + ϵ f ' ( 2 N f ) c - - - ( 5 )
Δ ε/2 are half of range of strain, Δ ε efor elastic strain, Δ ε pfor moulding strain, 2N ffor number of occurrence during fatigue failure.
As material be Q345B time, elastic modulus E=200741MPa, fatigue strength exponent b=-0.0943, fatigue ductility index c=-0.5395, fatigue strength coefficient σ f'=947.1MPa, fatigue ductile coefficient ε f, there is cyclic hardening characteristic '=0.4644.
Strain normal width, the Crack Extension under each circulation can use hyperbolic sine function representation.For crack size a, the spreading rate of crack tip is greater than 2N in cycle index kafter, can be written as:
da dN ∝ sinh ( 2 N k 2 N f ρ ) - - - ( 6 )
2N fbe under given plastic strain amplitude, until circulation total degree when losing efficacy, ρ is a scale factor, and be used for suitably adjusting the size of damage increment, da/dN has just had correct funtcional relationship with strain amplitude. 2N fderive from BMC formula, γ can use-c/2 ε ' freplace.
Calculate damage with formula (6), the damage normalization that i-th circulation produces is expressed as follows,
D i = Σ k = 1 N T + 1 sinh ( 2 N k 2 N f ρ ) - Σ k = 1 N T sinh ( 2 N k 2 N f ρ ) Σ j = 1 N f sinh ( 2 N j 2 N f ρ ) ≈ ∫ N T N T + 1 sinh ( 2 N k 2 N f ρ ) dN k ∫ 1 N f sinh ( 2 N j 2 N f ρ ) dN j - - - ( 7 )
N tthe cycle index for reaching required for accumulated damage, D tby normal width range of strain circulate the damage caused.Each circulation damage accumulation until lost efficacy time total impairment value be 1.
D tcan know from formula (5), be increment damage D iand, shown in (8).
D T = Σ k = 1 N T sinh ( 2 N k 2 N f ρ ) Σ j = 1 N f sinh ( 2 N j 2 N f ρ ) ≈ ∫ 1 N T sinh ( 2 N k 2 N f ρ ) dN k ∫ 1 N f sinh ( 2 N j 2 N f ρ ) dN j - - - ( 8 )
Formula (6) can be separated and be:
2 N T = 2 N f ρ × cosh - 1 ( D T ( cosh ( ρ ) - ( cosh ( ρ 2 N f ) ) + cosh ( ρ 2 N f ) ) - - - ( 9 )
Through above-mentioned analysis, formula (4)-(9) constitute the basic model of essentially nonlinear cumulative damage theory.
(3) advantage and effect: the invention provides a kind of structure fatigue life computing method based on Nonlinear Cumulative defect theory, its advantage is:
1) the present invention calculates compared with method fatigue lifetime with traditional based on linear cumulative damage law Palmgren-Miner rule, consider the impact of multi-level load loading sequence, magnitude of load, precision fatigue lifetime that the ratio of precision linear cumulative damage law of this method calculates wants high.
2), compared with the present invention calculates method fatigue lifetime with traditional Nonlinear Cumulative defect theory, the material characteristic data that this method only needs the cyclic stress-strain curve of material and normal width Strain life curves etc. a small amount of, calculates simple, is suitable for engineer applied.
3) contemplated by the invention the impact of different initial damages on fatigue lifetime, go for simple metal and welded structure, applicable surface is wider.
Accompanying drawing explanation
In order to make content of the present invention more easily be clearly understood, below according to specific embodiment also by reference to the accompanying drawings, the present invention is further detailed explanation, wherein:
Fig. 1 is the measured stress spectrum of cast weld assembly under six working cycle and the comparison diagram of simulated stress spectrum.
Fig. 2 is that the pressure detection point of the welded welding toe of template is arranged.
Fig. 3 is that the pressure detection point of the welded welding toe of cast is arranged.
Fig. 4 is the Nonlinear Cumulative damage life-span calculation process based on strain.
Fig. 5 is the truss arm figure of certain crane.
Fig. 6 is the cast welding piece dimensional drawing of hazardous location on certain crane truss arm.
Fig. 7 is the torture test figure of cast welding piece.
Fig. 8 is the error of calculation contrast table of fatigue lifetime when considering different initial damage
Label in accompanying drawing 7 is:
Be rigidly connected 1, horizontal actuator 2, cast test specimen 3, vertical actuator 4.
Embodiment
Below in conjunction with drawings and Examples, the present invention is described in further details.
The welding structural element of case selection shown in Fig. 5, is taken from a joint hazardous location of rubber tired crane truss arm.Its material parameter is: when material is Q345B, elastic modulus E=200741MPa, fatigue strength exponent b=-0.0943, fatigue ductility index c=-0.5395, fatigue strength coefficient σ f'=947.1MPa, fatigue ductile coefficient ε f, there is cyclic hardening characteristic '=0.4644.
By calculating its complete accumulated damage, determine its fatigue lifetime.Concrete steps are as follows:
Step one: by finite element analysis software, determines the tired hazardous location of component.By setting up finite element model to Fig. 5, in Ansys, carrying out two typical condition analyses, obtaining the point that multiple stress value is larger.Two typical conditions are in table 1, and the dangerous point obtained is in table 2.
Table 1 design condition table
The FEM (finite element) calculation stress amplitude of table 2 dangerous point
By table 2,7 dangerous points can be found.
Step 2, according to the Years Of Service of metal construction and appearance quality testing, determine its initial damage.
According to its Years Of Service, this equipment has been on active service 9 years, and according to annual work 200 days, work every day 8 hours, work per hour 30 minutes, a cycle index per minute calculated, then military service cycle index is 4.32 × 105 times, enters fatigue stage.Observe its welded cracks.At dangerous point 2, average crack length is approximately 3.5-5.5mm.At dangerous point 7, average crack length is approximately 3.5-6.0mm.On this jib, general admissible maximum crack length is 10-15mm.Therefore, this jib has had larger damage.Major part crackle has entered stable extension phase, more dangerous, and therefore jib needs to repair.Initial damage can list calculating in, between desirable 0.01-0.1.
Step 3, by structural stress detecting instrument, measure the strain-time spectrum of structure in hazardous location in some cycles, obtain stress spectra as shown in Figure 1.For simplicity, point layout is carried out in the place that have employed from toe of weld 30mm, using the data directly the measured stress value as dangerous point.Operating mode 1 time, made six working cycle, its stress spectra as shown in Figure 1.Utilize ADAMS software, the simulated stress spectrum of acquisition as shown in Figure 1.
Step 4, by Nonlinear Cumulative defect theory, calculate the accumulated damage of metal construction under stress spectra.
According to algorithm of the present invention, do following comparative analysis:
(1) when contrast initial damage is zero, the precision size of result of calculation;
(2) fatigue lifetime utilizing Palmgren-Miner linear approach to calculate is contrasted;
(3) result of theory calculate and experiment test is contrasted;
(4) error of measured stress spectrum and simulated stress spectrum is contrasted.
Table 3 is setting initial damage D twhen=0, every error contrast fatigue lifetime.Can find out:
(1) error of the fatigue lifetime of being calculated by two kinds of stress spectra is no more than 10%, engineering demands.
(2) Nonlinear Cumulative defect theory is higher than the computational accuracy of linear cumulative damage law.Based on the computational accuracy of Nonlinear Calculation Method at about 1.14-1.19, and based on the computational accuracy of linear computational method at about 0.29-0.32, be tending towards very much conservative.
(3) initial damage has material impact to fatigue lifetime, nonlinear damage constitutive model is higher than the computational accuracy of Miner linear damage model, but also have gap from the average in torture test life-span, be tending towards slight danger, Here it is initial damage is on the impact in life-span.
Substituted into by initial damage and calculate, and to set initial damage be that 0.01-0.08 is analyzed, the torture test life-span of reference calculates according to simulated stress spectrum block.Its comparing calculation error result is in table 4 and Fig. 8.Can find out:
The initial damage of (1) two operating mode between 0.03 ~ 0.04, based on nonlinear Calculation of Fatigue Life error range within 10%.
(2) after initial damage setting is greater than 0.07, the error of calculation more than 20%, and will be tending towards conservative.
(3) consider from engineering, design needs certain surplus capacity, the initial damage of suggestion weld assembly can be decided to be between 0.04-0.07, while ensureing precision, has the conservative of appropriateness.
Table 3 result of calculation contrast (initial damage DT=0)
Table 4 is based on the error of calculation (the torture test life-span comes from simulated stress spectrum block) of Nonlinear Cumulative damage algorithm

Claims (1)

1. a fatigue life calculation method for Nonlinear Cumulative defect theory, is characterized in that:
It carries out under following assumed condition:
Suppose that 1 fatigue load spectrum is known, the load varied in size by m level forms, and every grade of damage caused is designated as D m, D mpermanent after producing exist;
Suppose that 2 work as D maccumulation when reaching the limit values D, general D gets between 0.5-2, and the fatigue representing metal construction reaches capacity, and structural fatigue destroys;
The concrete steps of the method are as follows:
Step one, to be calculated by finite element analysis software or theory of mechanics, stress analysis is carried out to metal construction, determines that the region that in metal construction, stress value is larger is analyzed as hazardous location;
For finite element analysis software, the softwares such as NASTRAN, ADINA, ANSYS, ABAQUS, MARC, MAGSOFT, COSMOS can be utilized, set up the finite element model of metal construction, and the operating mode of getting one exemplary carries out statics and dynamic analysis, find out under typical condition, stress value or the larger dangerous point of stress amplitude or hazardous location; For general metal construction, its stress reaches more than 80% of its yield limit, belongs to more dangerous, should be classified as hazardous location;
Step 2, according to the Years Of Service of metal construction and appearance quality testing, determine its initial damage;
According to the Years Of Service of metal construction and its material stress-cycle index curve (S-N curve), can preliminary judgement its whether enter fatigue; Low-cycle fatigue cycle index may be defined as 10 3-10 5number of times, high cycle fatigue cycle index is greater than 10 5number of times; When cycle index of being on active service is more than 10 3time, initial damage can count damage; According to appearance quality testing, whether it has crackle to exist, and can judge the concrete numerical value of initial damage; When crackle is less than 0.2mm, initial damage can be defined as between 0.01-0.1;
Step 3, by structural stress detecting instrument, measure strain-time spectrum or the stress-time spectrum of structure in hazardous location in some cycles, obtain stress spectra as shown in Figure 1;
By on metallic structures, adopt foil gauge patch form, measure the strain-time history of works under various typical condition; For simple metal works, the real data that the data that can directly adopt foil gauge to measure strain as it; For welded structure, the stress of its welding toe directly can not measure acquisition, adopts the mode of multimetering, and indirect calculation obtains the stress of welding toe; As shown in Figure 2, the stress of welding toe adopts shown in formula 1 the measuring point figure of the welded stress paster of template; As shown in Figure 3, the stress of welding toe adopts shown in formula 2 and formula 3 the measuring point figure of the welded stress paster of cast;
σ hs = x 2 · σ 1 - x 1 · σ 2 x 2 - x 1 - - - ( 1 )
Wherein, σ hswelding toe focus stress, σ 1, σ 2that distance welding toe is apart from being x respectively 1, x 2surface stress, can be obtained by FEM (finite element) calculation or stress test;
In Fig. 3, a = 0.2 rt , b 1 = b 2 = 0.65 rt , b 3 = 0.5 RT
Welding toe Stress calculation formula is:
σ bhs = b 1 · σ a - a · σ b 1 b 1 - a - - - ( 2 )
σ chs = b 3 · σ a - a · σ b 3 b 3 - a - - - ( 3 )
In formula (1), (2), σ bhsfor the focus stress of web member welding toe, σ chsfor the focus stress of chord member welding toe, being respectively distance toe of weld is a, b 1, b 3surface stress, the same Fig. 3 of other parameters;
Step 4, by Nonlinear Cumulative defect theory, calculate the accumulated damage of metal construction under stress spectra and fatigue lifetime;
Suppose D tall circulations damage D isummation, shown in (4).
D T = Σ i = = 1 2 N T D i - - - ( 4 )
D in this definition ibe damaged by i-th normalization oppositely caused, work as D tlost efficacy when being 1; Normal width strain-life formula adopts Basquin-Manson-Coffin (BMC) formula, shown in (5);
Δϵ 2 = Δϵ e 2 + Δϵ p 2 = σ f ' E ( 2 N f ) b + ϵ f ' ( 2 N f ) c - - - ( 5 )
Δ ε/2 are half of range of strain, Δ ε efor elastic strain, Δ ε pfor moulding strain, 2N ffor number of occurrence during fatigue failure;
As material be Q345B time, elastic modulus E=200741MPa, fatigue strength exponent b=-0.0943, fatigue ductility index c=-0.5395, fatigue strength coefficient σ f'=947.1MPa, fatigue ductile coefficient ε f, there is cyclic hardening characteristic '=0.4644;
Strain normal width, the Crack Extension under each circulation can use hyperbolic sine function representation; For crack size a, the spreading rate of crack tip is greater than 2N in cycle index kafter, can be written as:
da dN ∝ sinh ( 2 N k 2 N f ρ ) - - - ( 6 )
2N fbe under given plastic strain amplitude, until circulation total degree when losing efficacy, ρ is a scale factor, and be used for suitably adjusting the size of damage increment, da/dN has just had correct funtcional relationship with strain amplitude; 2N fderive from BMC formula, γ can use-c/2 ε ' freplace;
Calculate damage with formula (6), the damage normalization that i-th circulation produces is expressed as follows,
D i = Σ k = 1 N T + 1 sinh ( 2 N k 2 N f ρ ) - Σ k = 1 N T sinh ( 2 N k 2 N f ρ ) Σ j = 1 N f sinh ( 2 N j 2 N f ρ ) ≈ ∫ N T N T + 1 sinh ( 2 N k 2 N f ρ ) dN k ∫ 1 N f sinh ( 2 N j 2 N f ρ ) dN j - - - ( 7 )
NT is the cycle index for reaching required for accumulated damage, D tby normal width range of strain circulate the damage caused; Each circulation damage accumulation until lost efficacy time total impairment value be 1;
D tcan know from formula (5), be increment damage D iand, shown in (8);
D T = Σ k = 1 N T sinh ( 2 N k 2 N f ρ ) Σ j = 1 N f sinh ( 2 N j 2 N f ρ ) ≈ ∫ 1 N T sinh ( 2 N k 2 N f ρ ) dN k ∫ 1 N f sinh ( 2 N j 2 N f ρ ) dN j - - - ( 8 )
Formula (6) can be separated and be:
2 N T = 2 N f ρ × cosh - 1 ( D T ( cosh ( ρ ) - ( cosh ( ρ 2 N f ) ) + cosh ( ρ 2 N f ) ) - - - ( 9 )
Through above-mentioned analysis, formula (4)-(9) constitute the basic model of essentially nonlinear cumulative damage theory; By accumulated damage, calculate the fatigue lifetime of metal construction; When each circulation damage accumulation until lost efficacy time total impairment value D tbe 1, the fatigue lifetime of the component for this reason of cycle index i now; The flow process of whole calculating as shown in Figure 4.
CN201410049401.6A 2014-02-12 2014-02-12 Structure fatigue life calculation method based on non-linear cumulative damage theory Pending CN104833536A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201410049401.6A CN104833536A (en) 2014-02-12 2014-02-12 Structure fatigue life calculation method based on non-linear cumulative damage theory

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201410049401.6A CN104833536A (en) 2014-02-12 2014-02-12 Structure fatigue life calculation method based on non-linear cumulative damage theory

Publications (1)

Publication Number Publication Date
CN104833536A true CN104833536A (en) 2015-08-12

Family

ID=53811559

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201410049401.6A Pending CN104833536A (en) 2014-02-12 2014-02-12 Structure fatigue life calculation method based on non-linear cumulative damage theory

Country Status (1)

Country Link
CN (1) CN104833536A (en)

Cited By (22)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105606159A (en) * 2016-03-22 2016-05-25 韦醒妃 Heat source tower chemical heat pump with life real-time prediction function
CN105716659A (en) * 2016-03-22 2016-06-29 韦醒妃 Electric tower outdoor damage-preventing early-warning system
CN105760577A (en) * 2016-01-28 2016-07-13 北京航空航天大学 Estimation method for sound vibration fatigue life containing uncertain metal structure
CN105841738A (en) * 2016-03-22 2016-08-10 韦醒妃 Real-time monitoring and protection system for slopes at two sides of water channel or river channel
CN105865515A (en) * 2016-03-22 2016-08-17 韦醒妃 Mineral conveying pipe real-time monitoring system
CN107092728A (en) * 2017-03-30 2017-08-25 成都航空职业技术学院 A kind of fanjet tenses axle fatigue test method
CN107729596A (en) * 2017-08-28 2018-02-23 上海工程技术大学 A kind of method calculated for material damage
CN108090301A (en) * 2018-01-04 2018-05-29 重庆大学 A kind of meter and the compression joint type IGBT device reliability calculation method of internal material fatigue life
CN108108530A (en) * 2017-12-01 2018-06-01 中国航空工业集团公司沈阳飞机设计研究所 A kind of fatigue life calibration method suitable for structural connection
CN108563878A (en) * 2018-04-19 2018-09-21 大连五州轨道科技有限公司 Multi-functional welding structure Calculation of Fatigue Life confirms integrated integrated system with welding quality grade
CN108627406A (en) * 2018-04-27 2018-10-09 佛山科学技术学院 A kind of high tensile metal material luffing super high cycle fatigue life-span prediction method based on damage mechanics
CN108956286A (en) * 2018-05-03 2018-12-07 长沙理工大学 The method for normalizing of asphalt fatigue properties under a kind of different stress
CN108984977A (en) * 2018-08-27 2018-12-11 北京航空航天大学 The finite element method of electronic interconnection solder joint vibration damage accumulation rule under a kind of determining phased mission system
CN109977459A (en) * 2019-02-11 2019-07-05 中国第一汽车股份有限公司 A method of it is improved using CAE technology and strengthens loading spectrum precision
CN110188377A (en) * 2019-04-12 2019-08-30 中国大唐集团科学技术研究院有限公司火力发电技术研究院 It is a kind of fatigue operating condition under steam guiding tube welding line structure damage measurement method
CN110208086A (en) * 2019-06-05 2019-09-06 东北石油大学 Pulsation pressure break rock accumulated damage method for solving
CN110926785A (en) * 2019-09-02 2020-03-27 北京源清慧虹信息科技有限公司 Method and device for monitoring fatigue damage of steel structure
CN111855405A (en) * 2020-07-20 2020-10-30 暨南大学 Method for predicting FRP-concrete beam interface crack length under variable amplitude fatigue
CN112580235A (en) * 2020-11-25 2021-03-30 西北工业大学 Nonlinear estimation method for high cycle fatigue crack initiation life of metal structure
CN112748124A (en) * 2020-12-10 2021-05-04 上海发电设备成套设计研究院有限责任公司 Rotor outer surface manufacturing defect monitoring method, device, equipment, system and medium
CN113239477A (en) * 2021-04-01 2021-08-10 四川大学 Application of cyclic hardening model based on welding line dislocation entanglement in fatigue life prediction of welding joint
CN113496067A (en) * 2020-03-19 2021-10-12 上海电气电站设备有限公司 Material fatigue test data processing method and system and service device

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2003149091A (en) * 2001-11-08 2003-05-21 Hitachi Constr Mach Co Ltd Fatigue life evaluating system
CN103344514A (en) * 2013-07-05 2013-10-09 北京航空航天大学 High-cycle fatigue and low-intensity impact coupled damage calculation method based on nominal stress method
CN103344515A (en) * 2013-07-05 2013-10-09 北京航空航天大学 Damage calculation method for low-cycle fatigue and high-strength impact coupling based on local stress strain method

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2003149091A (en) * 2001-11-08 2003-05-21 Hitachi Constr Mach Co Ltd Fatigue life evaluating system
CN103344514A (en) * 2013-07-05 2013-10-09 北京航空航天大学 High-cycle fatigue and low-intensity impact coupled damage calculation method based on nominal stress method
CN103344515A (en) * 2013-07-05 2013-10-09 北京航空航天大学 Damage calculation method for low-cycle fatigue and high-strength impact coupling based on local stress strain method

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
王斌杰: ""高速列车结构热点应力疲劳评定方法及应用研究"", 《中国博士学位论文全文数据库》 *
蔡福海 等: ""A New Fatigue Life Calculation Method Based on Non-linear Cumulative Damage Theory"", 《APPLIED MECHANICS AND MATERIALS》 *

Cited By (32)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105760577A (en) * 2016-01-28 2016-07-13 北京航空航天大学 Estimation method for sound vibration fatigue life containing uncertain metal structure
CN105760577B (en) * 2016-01-28 2019-02-22 北京航空航天大学 A kind of evaluation method containing uncertain metal structure sound and vibration fatigue life
CN105716659B (en) * 2016-03-22 2018-03-23 国网安徽省电力有限公司铜陵市义安区供电公司 Electric force pole tower outdoor damage prevention pre-warning system
CN105716659A (en) * 2016-03-22 2016-06-29 韦醒妃 Electric tower outdoor damage-preventing early-warning system
CN105841738A (en) * 2016-03-22 2016-08-10 韦醒妃 Real-time monitoring and protection system for slopes at two sides of water channel or river channel
CN105865515A (en) * 2016-03-22 2016-08-17 韦醒妃 Mineral conveying pipe real-time monitoring system
CN105606159A (en) * 2016-03-22 2016-05-25 韦醒妃 Heat source tower chemical heat pump with life real-time prediction function
CN105865515B (en) * 2016-03-22 2017-11-14 武平紫金矿业有限公司 Mineral conveyance conduit real-time monitoring system
CN105841738B (en) * 2016-03-22 2017-11-24 北京大恒软件技术有限公司 Water channel, the real-time monitoring protection system of river course both sides side slope
CN105606159B (en) * 2016-03-22 2017-12-08 泰兴市东城水处理工程有限公司 Heat source tower chemical heat pump with life-span real-time estimate function
CN107092728A (en) * 2017-03-30 2017-08-25 成都航空职业技术学院 A kind of fanjet tenses axle fatigue test method
CN107092728B (en) * 2017-03-30 2020-05-26 成都航空职业技术学院 Fatigue test method for tensioning shaft of turbofan engine
CN107729596A (en) * 2017-08-28 2018-02-23 上海工程技术大学 A kind of method calculated for material damage
CN108108530A (en) * 2017-12-01 2018-06-01 中国航空工业集团公司沈阳飞机设计研究所 A kind of fatigue life calibration method suitable for structural connection
CN108108530B (en) * 2017-12-01 2021-05-28 中国航空工业集团公司沈阳飞机设计研究所 Fatigue life calibration method suitable for structural connecting piece
CN108090301A (en) * 2018-01-04 2018-05-29 重庆大学 A kind of meter and the compression joint type IGBT device reliability calculation method of internal material fatigue life
CN108090301B (en) * 2018-01-04 2021-05-14 重庆大学 Crimping type IGBT device reliability calculation method considering fatigue life of internal material
CN108563878A (en) * 2018-04-19 2018-09-21 大连五州轨道科技有限公司 Multi-functional welding structure Calculation of Fatigue Life confirms integrated integrated system with welding quality grade
CN108627406A (en) * 2018-04-27 2018-10-09 佛山科学技术学院 A kind of high tensile metal material luffing super high cycle fatigue life-span prediction method based on damage mechanics
CN108627406B (en) * 2018-04-27 2020-07-14 佛山科学技术学院 High-strength metal material amplitude variation ultrahigh cycle fatigue life prediction method
CN108956286B (en) * 2018-05-03 2020-08-25 长沙理工大学 Method for normalizing fatigue characteristics of asphalt mixture in different stress states
CN108956286A (en) * 2018-05-03 2018-12-07 长沙理工大学 The method for normalizing of asphalt fatigue properties under a kind of different stress
CN108984977A (en) * 2018-08-27 2018-12-11 北京航空航天大学 The finite element method of electronic interconnection solder joint vibration damage accumulation rule under a kind of determining phased mission system
CN109977459A (en) * 2019-02-11 2019-07-05 中国第一汽车股份有限公司 A method of it is improved using CAE technology and strengthens loading spectrum precision
CN110188377A (en) * 2019-04-12 2019-08-30 中国大唐集团科学技术研究院有限公司火力发电技术研究院 It is a kind of fatigue operating condition under steam guiding tube welding line structure damage measurement method
CN110208086A (en) * 2019-06-05 2019-09-06 东北石油大学 Pulsation pressure break rock accumulated damage method for solving
CN110926785A (en) * 2019-09-02 2020-03-27 北京源清慧虹信息科技有限公司 Method and device for monitoring fatigue damage of steel structure
CN113496067A (en) * 2020-03-19 2021-10-12 上海电气电站设备有限公司 Material fatigue test data processing method and system and service device
CN111855405A (en) * 2020-07-20 2020-10-30 暨南大学 Method for predicting FRP-concrete beam interface crack length under variable amplitude fatigue
CN112580235A (en) * 2020-11-25 2021-03-30 西北工业大学 Nonlinear estimation method for high cycle fatigue crack initiation life of metal structure
CN112748124A (en) * 2020-12-10 2021-05-04 上海发电设备成套设计研究院有限责任公司 Rotor outer surface manufacturing defect monitoring method, device, equipment, system and medium
CN113239477A (en) * 2021-04-01 2021-08-10 四川大学 Application of cyclic hardening model based on welding line dislocation entanglement in fatigue life prediction of welding joint

Similar Documents

Publication Publication Date Title
CN104833536A (en) Structure fatigue life calculation method based on non-linear cumulative damage theory
CN111783243B (en) Metal structure fatigue crack propagation life prediction method based on filtering algorithm
CN110487578B (en) Beam structure damage identification method based on support reaction force and strain
CN103018063B (en) Bridge random fatigue life prediction method based on Mittag-Leffler distribution
CN104978490B (en) A kind of method for predicting Aircraft metal structure calendar life
CN111581830B (en) Metal structure fatigue life calculation method
CN106932135B (en) Flexible inhaul cable force testing method for identifying vibration frequency based on weighted narrow-band peak searching method
CN103838931A (en) Method for evaluating remanufacturing access period of engineering mechanical arm rest class structure
CN107908879A (en) A kind of concrete beam bridge fatigue behaviour appraisal procedure
CN103940626A (en) Method for evaluating remaining service life of orthotropic steel deck slab on active service after fatigue cracking
CN107421672A (en) A kind of weighting Suo Li computational methods that peak is searched based on vibration frequency universe
Tao et al. Notch fatigue life prediction considering nonproportionality of local loading path under multiaxial cyclic loading
CN108732048A (en) A kind of elastoplasticity yield point stress of graded broken stone repeated-load test determines method
CN110501127B (en) Equal-section beam damage identification method based on damage state inclination slope
CN117540593A (en) Dynamic safety assessment method for bridge dismantling construction
EP4018171A1 (en) A system and a method for monitoring material fatigue
Van Paepegem The cycle jump concept for modelling high-cycle fatigue in composite materials
CN109490334B (en) Nondestructive testing method for T-shaped forge piece by using residual stress prediction model
Kukielka et al. Modeling and numerical analysis of the thread rolling process
Mahmud et al. On the need to adopt strain-based probabilistic approach in predicting fatigue life
CN107036751B (en) Flexible rope searching force calculation method for identifying vibration frequency through weighted broadband peak searching
CN103514329A (en) Method for evaluating safety of transformer substation lightning conductor tower
CN110501177B (en) Cantilever beam damage identification method based on free end inclination angle influence line curvature
CN107066728A (en) A kind of titanium alloy submersible pressurized spherical shell ultimate bearing capacity evaluation method
CN107192448B (en) Broadband peak searching method for identifying flexible rope vibration frequency

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
WD01 Invention patent application deemed withdrawn after publication

Application publication date: 20150812

WD01 Invention patent application deemed withdrawn after publication