CN113914279B - Method for balancing weight of ship lift ship receiving chamber and balance weight system - Google Patents

Method for balancing weight of ship lift ship receiving chamber and balance weight system Download PDF

Info

Publication number
CN113914279B
CN113914279B CN202111182489.5A CN202111182489A CN113914279B CN 113914279 B CN113914279 B CN 113914279B CN 202111182489 A CN202111182489 A CN 202111182489A CN 113914279 B CN113914279 B CN 113914279B
Authority
CN
China
Prior art keywords
ship
driving
weight
reception chamber
ship reception
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.)
Active
Application number
CN202111182489.5A
Other languages
Chinese (zh)
Other versions
CN113914279A (en
Inventor
朱厚玲
杨新明
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.)
Wuhan Marine Machinery Plant Co Ltd
Original Assignee
Wuhan Marine Machinery Plant Co Ltd
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 Wuhan Marine Machinery Plant Co Ltd filed Critical Wuhan Marine Machinery Plant Co Ltd
Priority to CN202111182489.5A priority Critical patent/CN113914279B/en
Publication of CN113914279A publication Critical patent/CN113914279A/en
Application granted granted Critical
Publication of CN113914279B publication Critical patent/CN113914279B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Classifications

    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02CSHIP-LIFTING DEVICES OR MECHANISMS
    • E02C5/00Mechanisms for lifting ships vertically
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/60Other road transportation technologies with climate change mitigation effect
    • Y02T10/72Electric energy management in electromobility

Abstract

A method for balancing the weight of a ship lift ship receiving chamber and a balance weight system comprises the following steps: s1, determining a proportionality coefficient between a driving motor running torque and a driving load of a ship reception chamber driving system; s2, determining the rated water depth of a ship receiving chamber when the ship lift runs; s3, the ship reception chamber moves upwards under the rated water depth, and the running torque of the driving motor is recorded; s4, the ship reception chamber runs downwards at the rated water depth, and the running torque of the driving motor is recorded; s5, calculating to obtain a difference value between the weight of the ship reception chamber and the weight of the counterweight system at the rated water depth according to the recorded running torque of the driving motor running up and down the ship reception chamber; and S6, adjusting the weight of the balance weight system according to the difference value to realize the balance of the ship receiving chamber and the balance weight system. The design not only simplifies the balancing flow, reduces the balancing cost, but also improves the accuracy of the balancing result.

Description

Method for balancing weight of ship lift ship receiving chamber and balance weight system
Technical Field
The invention relates to the technical field of engineering machinery, in particular to a method for balancing the weight of a ship lift ship reception chamber and a balance weight system, which is mainly suitable for simplifying a balancing process, reducing the balancing cost and improving the accuracy of a balancing result.
Background
The ship lift is a navigation building which utilizes a mechanical device to lift a ship so as to overcome the concentrated water level drop on a channel. The full-balance ship lift is a ship lift with the total weight of the balance weight equal to that of the ship bearing chamber, and on the premise of balancing the balance weight and the ship bearing chamber, the lifting force generated when the ship lift runs only needs to overcome the misloading water depth, the steel wire rope stiffness resistance, the inertia force, the friction resistance and the like, so that the scale of the driving device is greatly reduced.
In the prior art, when balancing a balance weight and a ship reception chamber, the weight of the ship reception chamber after being manufactured is uncertain, generally by means of weighing, and the method comprises the following steps: respectively weighing and recording the weight of a steel structure of the balancing weight system and the weight of the balancing weight in the manufacturing process, or weighing and recording the weight of the balancing weight system in units after the balancing weight system is installed; before assembling ship chambers of the ship lift, a weighing sensor is arranged between a buttress and the ship chambers below the ship reception chamber, the weight of the ship reception chamber after water filling is obtained through the weighing sensor after the ship chambers are filled with water, and the weight of the ship reception chamber after water filling is balanced through comparing the weight of the ship reception chamber with the weight of the ship reception chamber. However, with the method, the ship receiving chambers and the balance weights are weighed and balanced, so that a large number of ship lifts are required to be weighed, and the process is long; the weight of a ship bearing chamber (including the designed water depth) can usually reach thousands of tons or even tens of thousands of tons, the configuration scale of the weighing sensor has considerable requirements, the resource requirement cost is high, and meanwhile, the error of the ship bearing chamber and the counterweight is large during large-tonnage weighing and metering, so that the balancing cannot well meet the requirement of the actual working condition.
Disclosure of Invention
The invention aims to overcome the defects and problems of complex flow, high cost and low accuracy in the prior art, and provides a method for balancing the weight of a ship lift ship reception chamber and a balance weight system, which has simple flow, low cost and high accuracy.
In order to achieve the above purpose, the technical solution of the invention is as follows: a method for balancing the weight of a ship lift ship receiving chamber and a balance weight system comprises the following steps:
s1, determining a proportionality coefficient between a driving motor running torque and a driving load of a ship reception chamber driving system;
s2, determining the rated water depth of a ship receiving chamber when the ship lift runs;
s3, the ship reception chamber moves upwards under the rated water depth, and the running torque of the driving motor is recorded;
s4, the ship reception chamber runs downwards at the rated water depth, and the running torque of the driving motor is recorded;
s5, calculating to obtain a difference value between the weight of the ship reception chamber and the weight of the counterweight system at the rated water depth according to the recorded running torque of the driving motor running up and down the ship reception chamber;
and S6, adjusting the weight of the balance weight system according to the difference value to realize the balance of the ship receiving chamber and the balance weight system.
In the step S1, the proportionality coefficient comprises the radius of a driving executive component, transmission efficiency, the number of driving motors and the transmission ratio of a driving system, and is obtained according to the following formula:
Figure BDA0003297879710000021
in the formula (1), F is a driving load acted on a driving element by the driving motor running torque, M is the driving motor running torque, r is the radius of a driving execution element, eta is the transmission efficiency, n is the number of the driving motors, and i is the transmission ratio of a driving system.
In step S1, the radius r of the driving actuator is a gear radius, the number n of the driving motors is 8, and the transmission ratio i of the driving system is a transmission ratio of the speed reducer.
In step S3, the ship reception chamber runs upwards at the rated water depth, the running torques of the plurality of driving motors are measured and read through the electric control system, and the sum sigma M of the running torques of all the driving motors is obtained On the upper part
In step S4, the ship reception chamber runs downwards at the rated water depth, the running torque of a plurality of driving motors is measured and read through the electric control system, and the sum sigma M of the running torque of all the driving motors is obtained Lower part
In step S5, when the ship reception chamber moves upwards, the driving load of the driving motor running torque acting on the driving element is:
F on the upper part =F E +F fx +F ax (2)
When the ship reception chamber goes down, the driving load of the driving motor running torque acting on the driving element is as follows:
F lower part =F E -F fx -F ax (3)
In the formulae (2) and (3), F E The difference G between the weight of the ship bearing chamber and the weight of the counterweight system at the rated water depth Ship-holding box -G Balancing weight ,F fs For frictional forces and stiff resistance of the wire rope during upward travel of the ship-holding compartment, F fx For frictional force and stiff resistance of wire rope during the downward movement of ship-carrying chamber, F as Driving force required for upward acceleration of ship-carrying chamber, F ax Driving force required by the downward acceleration of the ship reception chamber;
the speeds and the acceleration values of the ship reception chamber ascending and the ship reception chamber descending are the same, so that the friction force, the steel wire rope stiffness resistance and the driving force required by the acceleration of the ship reception chamber ascending and the ship reception chamber descending are the same, the directions are opposite, and the ship reception chamber driving force can be obtained according to the formulas (1), (2) and (3):
Figure BDA0003297879710000031
the ship-receiving chambers move upwards at a constant speed V, i.e. at a constant speedUp acceleration of zero, F as The value is zero;
the ship-receiving chamber runs downwards at a constant speed V, namely the downward acceleration is zero, F ax The value is zero.
In step S5, the running torque of the driving motor takes a positive value when the driving motor outputs power, and takes a negative value when the driving motor is in a power generation state.
In step S6, if the difference is F E If the weight is positive, the weight of the balance weight block is increased and adjusted; if the difference F E When the weight is negative, the weight of the balancing weight is reduced.
Compared with the prior art, the invention has the beneficial effects that:
according to the method for balancing the weight of the ship-carrying chamber and the balance weight system of the ship lift, the running torque of the driving motor in the electric control system of the ship lift is directly read when the ship-carrying chamber runs up and down, and the difference value between the weight of the ship-carrying chamber and the weight of the balance weight system is obtained through calculation, so that the weighing balancing process is simplified, the cost is saved, the balancing result is more accurate, meanwhile, the balancing of the ship-carrying chamber and the balance weight can be carried out and verified at any time in the running stage, and the convenience of engineering is increased. Therefore, the invention not only simplifies the balancing process and reduces the balancing cost, but also improves the accuracy of the balancing result.
Drawings
Fig. 1 is a schematic view of a transmission structure of a driving system of a ship lift according to the present invention.
Fig. 2 is a flow chart of a method for weight balancing of a ship lift ship receiving chamber and a counterweight system according to the invention.
In the figure: the device comprises a driving motor 1, a coupler 2, a speed reducer 3, a universal coupler 4 and a gear-rack pair 5.
Detailed Description
The present invention will be described in further detail with reference to the following description and embodiments in conjunction with the accompanying drawings.
Referring to fig. 1 and 2, a method for balancing the weight of a ship lift ship receiving chamber and a counterweight system comprises the following steps:
s1, determining a proportional coefficient between a driving motor running torque and a driving load of a ship reception chamber driving system;
s2, determining the rated water depth of a ship receiving chamber when the ship lift runs;
s3, the ship reception chamber moves upwards under the rated water depth, and the running torque of the driving motor is recorded;
s4, the ship reception chamber runs downwards at the rated water depth, and the running torque of the driving motor is recorded;
s5, calculating to obtain a difference value between the weight of the ship reception chamber and the weight of the counterweight system at the rated water depth according to the recorded running torque of the driving motor running up and down the ship reception chamber;
and S6, adjusting the weight of the balance weight system according to the difference value to realize the balance of the ship receiving chamber and the balance weight system.
In the step S1, the proportionality coefficient comprises the radius of a driving executive component, transmission efficiency, the number of driving motors and the transmission ratio of a driving system, and is obtained according to the following formula:
Figure BDA0003297879710000041
in the formula (1), F is a driving load acted on a driving element by the driving motor running torque, M is the driving motor running torque, r is the radius of a driving execution element, eta is the transmission efficiency, n is the number of the driving motors, and i is the transmission ratio of a driving system.
In step S1, the radius r of the driving actuator is a gear radius, the number n of the driving motors is 8, and the transmission ratio i of the driving system is a transmission ratio of the speed reducer.
In step S3, the ship reception chamber moves upwards at the rated water depth, the electric control system measures and reads the running torque of the plurality of driving motors, and the sum sigma M of the running torque of all the driving motors is obtained On the upper part
In step S4, the ship reception chamber runs downwards at the rated water depth, the running torque of a plurality of driving motors is measured and read through the electric control system, and the sum sigma M of the running torque of all the driving motors is obtained Lower part
In step S5, when the ship reception chamber moves upwards, the driving load of the driving motor running torque acting on the driving element is:
F on the upper part =F E +F fs +F as (2)
When the ship reception chamber goes down, the driving load of the driving motor running torque acting on the driving element is as follows:
F lower part =F E -F fx -F ax (3)
In the formulae (2) and (3), F E The difference G between the weight of the ship bearing chamber and the weight of the counterweight system at the rated water depth Ship reception chamber -G Balancing weight ,F fs For frictional forces and stiff resistance of the wire rope during upward travel of the ship-holding compartment, F fx Friction force and stiff resistance of the steel wire rope during the downward movement of the ship reception chamber, F as Driving force required for upward acceleration of ship-carrying chamber, F ax Driving force required by the downward acceleration of the ship reception chamber;
if the speeds and the acceleration values of the ship reception chamber ascending and the ship reception chamber descending are the same, the friction force, the steel wire rope stiffness resistance force and the driving force required by the acceleration of the ship reception chamber ascending and the ship reception chamber descending are the same, and only the directions are opposite, and the ship reception chamber driving force can be obtained according to the formulas (1), (2) and (3):
Figure BDA0003297879710000051
the ship-receiving chamber moves upwards at a constant speed V, namely the upward acceleration is zero, F as The value is zero;
the ship-receiving chamber runs downwards at a constant speed V, namely the downward acceleration is zero, F ax The value is zero.
In step S5, the running torque of the driving motor takes a positive value when the driving motor outputs power, and takes a negative value when the driving motor is in a power generation state.
In step S6, if the difference is F E If the weight is positive, the weight of the balance weight block is increased and adjusted; if the difference F E When the weight is negative, the weight of the balancing weight is reduced.
The principle of the invention is illustrated as follows:
the moment of the driving motor at the constant-speed motion stage of the ship reception chamber is recorded, namely the moment when the acceleration is zero, and the driving force value required by the running acceleration of the ship reception chamber is zero, so that the recording and calculation are more convenient.
The ship lift counterweight system is usually provided with a certain amount of adjusting counterweight blocks, and when the actual weight of a ship bearing chamber deviates from the designed theoretical weight, the weight of the counterweight system can be balanced by increasing or reducing the adjusting counterweight blocks.
Example (b):
the present embodiment relates to a ship lift of the gear rack climbing type, the driving system of which comprises 4 sets of driving mechanisms, and the transmission structure of the single set of driving mechanism is shown in fig. 1; the driving mechanism is driven by two alternating current motors, and the power of the driving motor 1 is transmitted to the gear-rack pair 5 through the floating shaft, the coupler 2, the reducer 3 and the universal coupler 4.
Referring to fig. 2, a method for weight balancing of a ship lift ship reception chamber and a counterweight system comprises the following steps:
s1, determining a proportional coefficient between a driving motor running torque and a driving load of a ship reception chamber driving system;
the proportionality coefficient comprises the radius of a driving execution element, transmission efficiency, the number of driving motors and the transmission ratio of a driving system, and is obtained according to the following formula:
Figure BDA0003297879710000052
in the formula (1), F is a driving load acted on a driving element by the driving motor running torque, M is the driving motor running torque, r is the radius of a driving execution element, eta is the transmission efficiency, n is the number of the driving motors, and i is the transmission ratio of a driving system.
The radius r of the driving executing element is the radius of a gear, the number n of the driving motors is 8, and the transmission ratio i of the driving system is the transmission ratio of the speed reducer.
S2, determining the rated water depth of a ship receiving chamber when the ship lift runs;
s3, the ship reception chamber moves upwards under the rated water depth, and the running torque of the driving motor is recorded;
the ship reception chamber runs upwards under the rated water depth, the running torque of a plurality of driving motors is measured and read through the electric control system, and the sum sigma M of the running torque of all the driving motors is obtained On the upper part
S4, the ship reception chamber runs downwards at the rated water depth, and the running torque of the driving motor is recorded;
the ship reception chamber runs downwards under the rated water depth, the running torque of a plurality of driving motors is measured and read through the electric control system, and the sum sigma M of the running torque of all the driving motors is obtained Lower part
S5, calculating to obtain a difference value between the weight of the ship reception chamber and the weight of the counterweight system at the rated water depth according to the recorded running torque of the driving motor running up and down the ship reception chamber;
when the ship reception chamber ascends, the driving load acted on the driving element by the running torque of the driving motor is as follows:
F on the upper part =F E +F fs +F as (2)
When the ship reception chamber goes down, the driving load of the driving motor running torque acting on the driving element is as follows:
F lower part =F E -F fx -F ax (3)
In the formulas (2) and (3), F E The difference G between the weight of the ship reception chamber and the weight of the balance weight system at rated water depth Ship reception chamber -G Balance weight ,F fs For frictional forces and stiff resistance of the wire rope during upward travel of the ship-holding compartment, F fx For frictional force and stiff resistance of wire rope during the downward movement of ship-carrying chamber, F as Driving force required for upward acceleration of ship reception chamber, F ax Driving force required by the downward acceleration of the ship reception chamber;
the speeds and the acceleration values of the ship reception chamber ascending and the ship reception chamber descending are the same, the friction force, the steel wire rope stiffness resistance and the driving force required by the acceleration of the ship reception chamber ascending and the ship reception chamber descending are the same, the directions are opposite, absolute values are obtained from the numerical values in the formula, and the absolute values can be obtained according to the formula (1), the formula (2) and the formula (3):
Figure BDA0003297879710000061
the ship reception chamber moves upwards at a constant speed V, namely the upward acceleration is zero, F as The value is zero;
the ship-receiving chamber runs downwards at a constant speed V, namely the downward acceleration is zero, F ax The value is zero;
the running torque of the driving motor takes a positive value when the driving motor outputs power, and takes a negative value when the driving motor is in a power generation state;
s6, adjusting the weight of the counterweight system according to the difference value to realize the balancing of the ship receiving chamber and the counterweight system;
if the difference F E If the time is positive, the weight of the balancing weight block is increased and adjusted; if the difference F E When the weight is negative, the weight of the balancing weight is reduced.

Claims (5)

1. A method for balancing the weight of a ship lift ship receiving chamber and a balance weight system is characterized by comprising the following steps:
s1, determining a proportionality coefficient between a driving motor running torque and a driving load of a ship reception chamber driving system;
the proportionality coefficient comprises the radius of a driving executive component, transmission efficiency, the number of driving motors and the transmission ratio of a driving system, and is obtained according to the following formula:
Figure DEST_PATH_IMAGE002
(1)
in the formula (1), the reaction mixture is,
Figure DEST_PATH_IMAGE004
for the drive motor running torque to act on the drive load on the drive element,
Figure DEST_PATH_IMAGE006
in order to drive the motor to run the torque,
Figure DEST_PATH_IMAGE008
in order to drive the radius of the actuator,
Figure DEST_PATH_IMAGE010
in order to achieve the efficiency of the transmission,
Figure DEST_PATH_IMAGE012
in order to drive the number of motors,
Figure DEST_PATH_IMAGE014
is the drive train gear ratio;
s2, determining the rated water depth of a ship receiving chamber when the ship lift runs;
s3, the ship reception chamber moves upwards under the rated water depth, and the running torque of the driving motor is recorded;
the ship reception chamber runs upwards under the rated water depth, the running torque of a plurality of driving motors is measured and read through the electric control system, and the sum of the running torque of all the driving motors is obtained
Figure DEST_PATH_IMAGE016
S4, the ship reception chamber runs downwards at the rated water depth, and the running torque of the driving motor is recorded;
the ship reception chamber runs downwards under the rated water depth, the running torque of a plurality of driving motors is measured and read through the electric control system, and the sum of the running torque of all the driving motors is obtained
Figure DEST_PATH_IMAGE018
S5, calculating to obtain a difference value between the weight of the ship reception chamber and the weight of the counterweight system at the rated water depth according to the recorded running torque of the driving motor running up and down the ship reception chamber;
when the ship reception chamber ascends, the driving load acted on the driving element by the running torque of the driving motor is as follows:
Figure DEST_PATH_IMAGE020
(2)
when the ship reception chamber goes down, the driving load of the driving motor running torque acting on the driving element is as follows:
Figure DEST_PATH_IMAGE022
(3)
in the formula (2) and the formula (3),
Figure DEST_PATH_IMAGE024
the difference between the weight of the ship reception chamber and the weight of the balance weight system at rated water depth
Figure DEST_PATH_IMAGE026
Figure DEST_PATH_IMAGE028
For the friction force and the stiff resistance of the steel wire rope when the ship reception chamber ascends,
Figure DEST_PATH_IMAGE030
for the friction force and the stiff resistance of the steel wire rope when the ship reception chamber goes down,
Figure DEST_PATH_IMAGE032
the driving force required by the upward acceleration of the ship reception chamber,
Figure DEST_PATH_IMAGE034
driving force required by the downward acceleration of the ship reception chamber;
the speeds and the acceleration values of the ship reception chamber ascending and the ship reception chamber descending are the same, so that the friction force, the steel wire rope stiffness resistance and the driving force required by the acceleration of the ship reception chamber ascending and the ship reception chamber descending are the same, the directions are opposite, and the ship reception chamber driving force can be obtained according to the formulas (1), (2) and (3):
Figure DEST_PATH_IMAGE036
(4)
and S6, adjusting the weight of the balance weight system according to the difference value to realize the balance of the ship receiving chamber and the balance weight system.
2. The method for weight balancing of a ship lift ship reception chamber and counterweight system of claim 1, wherein: in step S1, the radius of the driving actuator
Figure 613827DEST_PATH_IMAGE008
The number of the drive motors being the gear radius
Figure 530967DEST_PATH_IMAGE012
Is 8, the transmission ratio of the driving system
Figure 310705DEST_PATH_IMAGE014
The transmission ratio of the speed reducer.
3. The method for weight balancing of a ship lift ship reception chamber and counterweight system of claim 1, wherein:
the ship reception chamber is in speed
Figure DEST_PATH_IMAGE038
The device runs upwards at a constant speed, namely the upward acceleration is zero,
Figure 768231DEST_PATH_IMAGE032
the value is zero;
the ship reception chamber is in speed
Figure 644920DEST_PATH_IMAGE038
The device runs downwards at a constant speed, namely the downward acceleration is zero,
Figure 467382DEST_PATH_IMAGE034
the value is zero.
4. The method for weight balancing of a ship lift ship reception chamber and counterweight system of claim 3, wherein: in step S5, the running torque of the driving motor takes a positive value when the driving motor outputs power, and takes a negative value when the driving motor is in a power generation state.
5. The method for weight balancing of the ship lift ship reception chamber and the counterweight system according to claim 4, wherein: in step S6, if the difference value is not equal to the predetermined value
Figure 734416DEST_PATH_IMAGE024
If the weight is positive, the weight of the balance weight block is increased and adjusted; if the difference is not the same
Figure 995633DEST_PATH_IMAGE024
When the weight is negative, the weight of the balancing weight is reduced.
CN202111182489.5A 2021-10-11 2021-10-11 Method for balancing weight of ship lift ship receiving chamber and balance weight system Active CN113914279B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202111182489.5A CN113914279B (en) 2021-10-11 2021-10-11 Method for balancing weight of ship lift ship receiving chamber and balance weight system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202111182489.5A CN113914279B (en) 2021-10-11 2021-10-11 Method for balancing weight of ship lift ship receiving chamber and balance weight system

Publications (2)

Publication Number Publication Date
CN113914279A CN113914279A (en) 2022-01-11
CN113914279B true CN113914279B (en) 2022-10-25

Family

ID=79239229

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202111182489.5A Active CN113914279B (en) 2021-10-11 2021-10-11 Method for balancing weight of ship lift ship receiving chamber and balance weight system

Country Status (1)

Country Link
CN (1) CN113914279B (en)

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102535424A (en) * 2012-02-14 2012-07-04 水利部交通运输部国家能源局南京水利科学研究院 Full flat type balance vertical ship lift adaptive to ship reception chamber outlet-inlet water
CN202466553U (en) * 2012-02-14 2012-10-03 水利部交通运输部国家能源局南京水利科学研究院 Full-level balanced vertical ship elevator suitable for ship reception chamber to go in and go out of water
CN103924570A (en) * 2014-04-15 2014-07-16 中国葛洲坝集团机械船舶有限公司 Safety protection device for ship reception chamber of full balanced steel wire rope hoisting vertical ship lift and lifting protection method
CN109837881A (en) * 2019-03-25 2019-06-04 杭州国电机械设计研究院有限公司 A kind of balance of full balance rope hoisting formula vertical ship lift re-mounts and ship reception chamber leveling method
CN112776956A (en) * 2021-03-05 2021-05-11 杭州国电机械设计研究院有限公司 Method for determining water level of balance critical point of vertical ship lift

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070297856A1 (en) * 2006-06-21 2007-12-27 Francis Brachet System for dry transfer of boats from at least one water surface

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102535424A (en) * 2012-02-14 2012-07-04 水利部交通运输部国家能源局南京水利科学研究院 Full flat type balance vertical ship lift adaptive to ship reception chamber outlet-inlet water
CN202466553U (en) * 2012-02-14 2012-10-03 水利部交通运输部国家能源局南京水利科学研究院 Full-level balanced vertical ship elevator suitable for ship reception chamber to go in and go out of water
CN103924570A (en) * 2014-04-15 2014-07-16 中国葛洲坝集团机械船舶有限公司 Safety protection device for ship reception chamber of full balanced steel wire rope hoisting vertical ship lift and lifting protection method
CN109837881A (en) * 2019-03-25 2019-06-04 杭州国电机械设计研究院有限公司 A kind of balance of full balance rope hoisting formula vertical ship lift re-mounts and ship reception chamber leveling method
CN112776956A (en) * 2021-03-05 2021-05-11 杭州国电机械设计研究院有限公司 Method for determining water level of balance critical point of vertical ship lift

Also Published As

Publication number Publication date
CN113914279A (en) 2022-01-11

Similar Documents

Publication Publication Date Title
CN102435944B (en) Method for testing force characteristic of linear electric motor
CN101082530A (en) Method for measuring static state weight difference in two sides of elvator balancing coefficient
CN103086237A (en) Elevator with vibration damper
CN102419291B (en) Rolling friction-wear testing machine capable of controlling friction coefficient and slip frequency on line
CN105668358B (en) The special nothing of elevator is weighed staring torque backoff algorithm
CN108519179B (en) Method for measuring actual maximum torque of motor
CN113914279B (en) Method for balancing weight of ship lift ship receiving chamber and balance weight system
US20190330016A1 (en) Method for determining the weight of the car and counterweight in an elevator
CN105008260B (en) Method for determining elevator balanced weight difference in elevator
CN109982952A (en) Elevator control gear and elevator control method
CN2709520Y (en) Safety device of machine for vertically winding lifting ship by wirerope
CN106885751A (en) Weighing type evaporating-osmosis instrument
CN212358245U (en) Hydraulic ship lift with superconducting linear motor
CN111648336A (en) Hydraulic ship lift with linear motor
CN111807169B (en) Real-time monitoring method for load rate of elevator
CN208120502U (en) A kind of elevator balanced property real-time monitoring system improving traction machine structure
CA2240106A1 (en) Method and device for the regulation of a drive
CN107512637B (en) A method of making elevator even running
CN206751215U (en) A kind of special hoist engine surveyed pulling force and subject shake can be reduced of crane
JP5691162B2 (en) Elevator control device
CN114323525A (en) Physical model test device and method for vertical ship lift
CN212358243U (en) Linear motor hydraulic ship lift
CN212358246U (en) Electric ship lift with superconducting linear motor
CN116127612B (en) Method for judging longitudinal capsizing stability of ship reception chamber by utilizing differential equation eigenvalue
CN111648337A (en) Electric ship lift with linear motor

Legal Events

Date Code Title Description
PB01 Publication
PB01 Publication
SE01 Entry into force of request for substantive examination
SE01 Entry into force of request for substantive examination
GR01 Patent grant
GR01 Patent grant