CN111625911A - Modeling method for simulating screw connection - Google Patents

Modeling method for simulating screw connection Download PDF

Info

Publication number
CN111625911A
CN111625911A CN202010498929.7A CN202010498929A CN111625911A CN 111625911 A CN111625911 A CN 111625911A CN 202010498929 A CN202010498929 A CN 202010498929A CN 111625911 A CN111625911 A CN 111625911A
Authority
CN
China
Prior art keywords
screw
connecting piece
thin layer
model
screw connection
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.)
Granted
Application number
CN202010498929.7A
Other languages
Chinese (zh)
Other versions
CN111625911B (en
Inventor
董得义
胡海飞
樊延超
姜肖楠
余达
柴方茂
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.)
Changchun Institute of Optics Fine Mechanics and Physics of CAS
Original Assignee
Changchun Institute of Optics Fine Mechanics and Physics of CAS
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 Changchun Institute of Optics Fine Mechanics and Physics of CAS filed Critical Changchun Institute of Optics Fine Mechanics and Physics of CAS
Priority to CN202010498929.7A priority Critical patent/CN111625911B/en
Publication of CN111625911A publication Critical patent/CN111625911A/en
Application granted granted Critical
Publication of CN111625911B publication Critical patent/CN111625911B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Classifications

    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F30/00Computer-aided design [CAD]
    • G06F30/10Geometric CAD
    • G06F30/17Mechanical parametric or variational design
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F30/00Computer-aided design [CAD]
    • G06F30/20Design optimisation, verification or simulation
    • G06F30/23Design optimisation, verification or simulation using finite element methods [FEM] or finite difference methods [FDM]
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F2119/00Details relating to the type or aim of the analysis or the optimisation
    • G06F2119/14Force analysis or force optimisation, e.g. static or dynamic forces
    • 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
    • Y02T90/00Enabling technologies or technologies with a potential or indirect contribution to GHG emissions mitigation

Abstract

A modeling method for simulating screw connection relates to the field of engineering analysis, and is used for simplifying the screw connection in the engineering analysis of a complex model on the premise of ensuring the calculation precision, thereby reducing the scale of a finite element model of the whole machine and improving the analysis efficiency of the complex model. Firstly, a beam unit is adopted to simulate a screw structure, and the connection between the beam unit and an upper connecting piece and a lower connecting piece is realized through multi-point constraint; and secondly, simulating the shear stiffness of the screw connection by using the thin layer unit in the screw connection area, wherein the shear stiffness of the thin layer unit is obtained by analyzing and correcting a fine model. The modeling method has the advantage of simplifying the modeling method, and avoids the problem of overlarge scale of a complex model caused by adopting a fine modeling method; meanwhile, the problem that the shear rigidity of a screw connection area is not considered in a simplified model method is avoided; the thin layer unit in the method only needs to correct the shear stiffness, so that the model parameters needing to be corrected are reduced, and the difficulty of model correction is obviously reduced.

Description

Modeling method for simulating screw connection
Technical Field
The invention relates to the technical field of engineering analysis, in particular to a modeling method for simulating screw connection, which can reduce the scale of a finite element model of a complete machine with a complex structure and improve the efficiency of engineering analysis on the premise of ensuring the analysis precision.
Background
The screw connection has the advantages of simple manufacture, strong external load bearing capacity, convenient assembly and disassembly, higher reliability and the like, and is widely used for assembling the optical-mechanical structure of the space camera. Therefore, in the finite element analysis of the space camera structure, the modeling method of the screw connection has an important influence on the accuracy of the analysis result.
Currently, there are three main methods for screw connection modeling, the first is a fine modeling method, the second is a simplified modeling method, and the third is a thin layer unit method.
The fine modeling method is to perform simulation analysis on a screw connection area through a contact nonlinear algorithm by establishing a fine finite element model of a bolt structure and fully considering contact and friction factors, and has high calculation precision, but because the method needs to use small-size units for grid division, the finite element model of the whole machine has huge scale, so the method is only suitable for static analysis of a simple structure and is not suitable for engineering analysis of complex models;
the simplified model method can be divided into a direct node connection method, a spring element method and a simplified beam model method according to different selected simplified units, wherein the simplified beam model method is the most common simplified method for screw connection, the method generally simplifies bolts into beam unit models and is connected with an upper connecting piece and a lower connecting piece through multipoint constraint, the modeling method greatly simplifies the modeling scale of the screws, and the rigidity contribution of the screws to connection areas is considered, so that the method has certain superiority compared with direct node connection. The method has the disadvantages that the contribution of the bolt pretightening force and the hole edge contact force to the rigidity of the connection area is not considered, so that the dynamic simulation analysis result of the assembly has certain deviation;
the thin layer unit method is characterized in that a layer of thin unit is adopted to simulate screw connection on a screw connection interface, surface-surface contact of a connection structure is equivalent to a very thin entity unit, and an optimization algorithm is used for correcting parameters of the thin layer unit in combination with modal test results.
The accuracy of the screw connection model is characterized by accurate simulation of screw connection rigidity. Wherein the screw connection stiffness mainly comprises: axial tensile stiffness, shear stiffness, and bending stiffness. In the simplified model method, because the beam unit is adopted for the screw to be simplified, the tensile rigidity and the bending rigidity of the screw can be accurately simulated, but the action of a pretightening force is not considered, so the influence of the shear rigidity is not considered in the modeling method, and the thin layer unit is built in the screw connection influence area on the basis of the simplified beam model and only has the shear rigidity by combining the thought of the thin layer unit method.
Disclosure of Invention
The invention provides a modeling method for simulating screw connection, aiming at solving the problem that the existing screw connection modeling methods can not meet the use requirements.
A modeling method for simulating screw connection comprises a lower connecting piece, an upper connecting piece, a thin layer unit, a beam unit, a multi-point constraint point A and a multi-point constraint point B; the beam unit is adopted to simulate a screw structure, and the connection between the beam unit and the upper and lower connecting pieces is realized through multi-point constraint points; the lamellar units in the area of the screw connection simulate the shear stiffness of the screw connection.
The method comprises the following specific steps:
the beam unit is connected with the upper end face and the lower end face of the upper connecting piece through a multi-point constraint point A to simulate a threaded connection state, and the beam unit is connected with the lower end face of the lower connecting piece through a multi-point constraint point B; the thin layer unit is respectively connected with the lower connecting piece and the upper connecting piece;
determining the shear stiffness of the thin layer unit by adopting a fine modeling method;
the screw is connected with the upper connecting surface node and the lower connecting surface node of the connecting hole, the head of the screw is in a contact state with the lower connecting piece, and the lower connecting piece is in a contact state with the upper connecting piece; and applying pretightening force in the screw, constraining one side of the lower connecting piece in the state, applying tension F on one side of the upper connecting piece for analysis, determining the shearing rigidity of the thin-layer unit, and realizing the connection of the simulation screw.
The invention has the beneficial effects that:
according to the modeling method, the screw adopts the beam unit to simplify modeling, the beam unit is connected with the upper end face and the lower end face of the upper connecting piece through multi-point constraint, and the connection state of threads is simulated; the beam unit is connected with the lower end face of the lower connecting piece through multi-point constraint; the two layers of connecting pieces are connected through a thin layer entity unit, the thin layer entity unit is made of anisotropic materials and only has shear rigidity, and the shear modulus of the thin layer unit is corrected through an analysis result of a fine modeling analysis method.
The method combines the thought of a thin layer unit method, and establishes a thin layer unit in the screw connection influence area on the basis of simplifying the beam model, and the thin layer unit only has shear rigidity, so that the defect of simplifying the beam model is overcome, and the method has the advantage of simplifying the beam model. The method only needs to correct the shear rigidity of the thin layer unit, and the difficulty of model correction is greatly reduced.
1) The problem of overlarge scale of a complete machine model caused by a fine modeling method is avoided by adopting a simplified model method, and the problem that the influence of pretightening force cannot be considered by the simplified model method is solved by introducing a thin layer unit;
2) through the combined use of the simplified model and the thin layer unit, the axial rigidity of bolt connection is not required to be corrected, only the shear rigidity of the thin layer unit is required to be corrected, and the difficulty and the workload of model parameter correction are effectively reduced.
Drawings
FIG. 1 is a schematic diagram of a modeling method for simulating a screw connection according to the present invention;
FIG. 2 is a diagram of finite element models and boundary conditions corresponding to a fine modeling method for determining the shear modulus of a lamellar unit.
Detailed Description
In the present embodiment, a modeling method for simulating screw connection is described with reference to fig. 1 and 2, and first, axial stiffness and bending stiffness of a screw are simulated by simplifying the screw into a beam unit; secondly, the shear stiffness of the screw connection area is simulated by building a thin layer unit on the screw connection area, so that the modeling scale of the screw is simplified, and three stiffness contributions of the screw connection to the connection area are considered.
Wherein the lamellar unit only has shear rigidity, and the correction method of the shear rigidity is described as follows: firstly, establishing a finite element model of screw connection by a fine model method, fully considering pretightening force and contact characteristics, as shown in fig. 2, fixing one end of a lower connecting piece, applying a tension force F to one end of an upper connecting piece, applying corresponding pretightening force in a screw, performing stress analysis on the two connecting pieces under the condition of the screw connection in a tension state, and calculating the shearing equivalent stiffness K of a thin-layer unit as follows if the displacement dislocation of the two connecting plates at a connecting hole is delta S:
K=F/ΔS
as shown in fig. 1, mainly consists of: the screw-thread connection simulation device comprises a lower connecting piece 1, an upper connecting piece 2, a thin layer unit 3, a beam unit 4, a multi-point constraint point A5 and a multi-point constraint point B6, wherein the screw is simulated by the beam unit 4, the beam unit 4 is connected with the upper end face and the lower end face of the upper connecting piece 2 through a first multi-point constraint point 5 to simulate a thread connection state, the beam unit 4 is connected with the lower connecting piece 1 through a multi-point constraint point B6, and the thin layer unit 3 is respectively connected with the lower connecting piece 1 and the upper connecting piece 2.
The thin layer unit 3 only has shear stiffness, and the shear stiffness is corrected by adopting an analysis result of a fine modeling method. As shown in fig. 2, the fine modeling finite element model is that a fine modeling screw 7 is connected with an upper connecting piece 2 at upper and lower connecting surface nodes of a connecting hole, a contact state 10 is set between the head of the screw 7 and the lower connecting piece, a contact state 11 is also set between the lower connecting piece 1 and the upper connecting piece 2, a pretightening force 12 is applied inside the screw 7, in this state, one side of the lower connecting piece 1 is restrained 8 (six degrees of freedom of each node, such as 123456 marked in the figure), one side of the upper connecting piece 2 is applied with a pulling force F9 for analysis, generally 80-100N is taken, a dislocation Δ S of the upper connecting piece and the lower connecting piece at the connecting hole is obtained, and the shearing rigidity of the: k is F/delta S.
The modeling method can be applied to engineering analysis of a complex model, and screw connection is simplified under the premise of ensuring calculation accuracy, so that the scale of a finite element model of the whole machine is reduced, and the analysis efficiency of the complex model is improved. Firstly, a beam unit is adopted to simulate a screw structure, and the connection between the beam unit and an upper connecting piece and a lower connecting piece is realized through multi-point constraint; and secondly, simulating the shear stiffness of the screw connection by using the thin layer unit in the screw connection area, wherein the shear stiffness of the thin layer unit is obtained by analyzing and correcting a fine model.
The modeling method has the advantage of simplifying the modeling method, and avoids the problem of overlarge scale of a complex model caused by adopting a fine modeling method; meanwhile, the problem that the shear rigidity of a screw connection area is not considered in a simplified model method is avoided; compared with the traditional thin layer unit method, the thin layer unit in the current modeling method only needs to correct the shear stiffness, so that model parameters needing to be corrected are reduced, and the difficulty of model correction is obviously reduced.
The above description is only an embodiment of the present invention, and is not intended to limit the embodiment of the present invention; other equivalent variations of those skilled in the art are intended to be within the scope of the invention as claimed.

Claims (2)

1. A modeling method for simulating screw connection comprises a lower connecting piece (1), an upper connecting piece (2), a thin layer unit (3), a beam unit (4), a multi-point constraint point A (5) and a multi-point constraint point B (6); the method is characterized in that: the beam unit (4) is adopted to simulate a screw structure, and the connection between the beam unit (4) and the upper and lower connecting pieces is realized through multi-point constraint points; the lamellar units in the region of the screw (7) connection simulate the shear stiffness of the screw connection;
the method comprises the following specific steps:
firstly, connecting the beam unit (4) with the upper end surface and the lower end surface of the upper connecting piece (2) through a multipoint constraint point A (5) to simulate a threaded connection state, and connecting the beam unit (4) with the lower end surface of the lower connecting piece (1) through a multipoint constraint point B (6); the thin layer unit (3) is respectively connected with the lower connecting piece (1) and the upper connecting piece (2);
step two, determining the shear stiffness K of the thin layer unit (3) by adopting a fine modeling method;
the screw (7) is connected with the upper connecting surface node and the lower connecting surface node of the upper connecting part (2) through the connecting hole, the head of the screw (7) is in a contact state with the lower connecting part (1), and the lower connecting part (1) is in a contact state with the upper connecting part (2);
applying a pretightening force (12) in the screw (7), in the state, constraining (8) one side of the lower connecting piece (1), and applying a pulling force F (9) on one side of the upper connecting piece (2) for analysis, so as to determine the shearing rigidity of the thin layer unit (4) and realize the connection of the simulation screw.
2. A modeling method for simulating screw connections according to claim 1, characterized in that: according to the dislocation delta S of the upper connecting piece and the lower connecting piece in the connecting hole, the shear stiffness of the thin layer unit (4) is determined through a formula, and the connection of the simulation screw is realized; the formula is as follows: k is F/delta S.
CN202010498929.7A 2020-06-04 2020-06-04 Modeling method for simulating screw connection Active CN111625911B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202010498929.7A CN111625911B (en) 2020-06-04 2020-06-04 Modeling method for simulating screw connection

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202010498929.7A CN111625911B (en) 2020-06-04 2020-06-04 Modeling method for simulating screw connection

Publications (2)

Publication Number Publication Date
CN111625911A true CN111625911A (en) 2020-09-04
CN111625911B CN111625911B (en) 2023-03-31

Family

ID=72259300

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202010498929.7A Active CN111625911B (en) 2020-06-04 2020-06-04 Modeling method for simulating screw connection

Country Status (1)

Country Link
CN (1) CN111625911B (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112685940A (en) * 2020-12-29 2021-04-20 摩登汽车(盐城)有限公司 Finite element modeling method for simulating bolt collision fracture failure
CN112685940B (en) * 2020-12-29 2024-04-26 摩登汽车(盐城)有限公司 Finite element modeling method for simulating bolt collision fracture failure

Citations (26)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN85105302A (en) * 1985-07-10 1987-01-14 伊·詹姆斯·米勒 Improved flexible pavement
WO1998057013A1 (en) * 1997-06-10 1998-12-17 Energy Research, Inc. Elastomeric seismic isolation bearing and method
US20090014320A1 (en) * 2004-06-14 2009-01-15 Massachusetts Institute Of Technology Electrochemical actuator
US20090090070A1 (en) * 2007-10-03 2009-04-09 Steven Caffall Finch Railway arch linings and mezzanine floors
CN101566718A (en) * 2009-06-05 2009-10-28 中国科学院长春光学精密机械与物理研究所 Flexible supporting structure for the back of reflecting mirror
CN101982625A (en) * 2010-10-15 2011-03-02 清华大学 Shear wall composed of multilayer steel plates
US20120313307A1 (en) * 2011-06-13 2012-12-13 Goodrich Corporation Polymer composites possessing improved vibration damping
CN102913255A (en) * 2012-11-09 2013-02-06 中国矿业大学(北京) Method for preventing bottom board of deep-seated heading from bulging and deforming
WO2014109799A1 (en) * 2012-09-17 2014-07-17 President And Fellows Of Harvard College Soft exosuit for assistance with human motion
CN104120651A (en) * 2014-08-06 2014-10-29 南京工业大学 Unidirectional lead core rubber vibration insulation support
CN204059186U (en) * 2014-08-06 2014-12-31 南京工业大学 Unidirectional lead rubber laminated bearing
CN104677742A (en) * 2015-03-25 2015-06-03 成都理工大学 Model box provided with high confining pressure loading system
WO2015157164A1 (en) * 2014-04-09 2015-10-15 Natel Energy, Inc. Belt attachment and system
WO2016201109A1 (en) * 2015-06-10 2016-12-15 The Regents Of The University Of California Architected material design for seismic isolation
CN206034285U (en) * 2016-08-12 2017-03-22 上海申继交通科技有限公司 Antifatigue rigidity combination steel bridge deck pavement structure
CN106894432A (en) * 2017-04-08 2017-06-27 山东省建筑科学研究院 A kind of pile variation rigidity reinforcement cushion composite foundation and its construction method
US20170282247A1 (en) * 2016-04-01 2017-10-05 Board Of Regents, The University Of Texas System Modeling of nanoparticle agglomeration and powder bed formation in microscale selective laser sintering systems
CN108141668A (en) * 2015-09-14 2018-06-08 翼声有限公司 In audio converter or relative improvement
US20180278200A1 (en) * 2017-03-22 2018-09-27 Sungeun K. Jeon Compact Structures and Methods for Deploying Foldable Origami Solar Arrays, Solar Sails, and Antenna Structures
CN109505229A (en) * 2018-12-13 2019-03-22 中交公局桥隧工程有限公司 Highway high gradient slope stress equilibrium and vibration damping are taken precautions against natural calamities high bridge pier structure and construction method
CN109657337A (en) * 2018-12-14 2019-04-19 中国航空工业集团公司西安飞机设计研究所 A kind of bolted modeling method of Fast simulation single lap joint part
CN109973506A (en) * 2019-04-04 2019-07-05 大连交通大学 A kind of bolt fastening structure and its modeling method with lock washer
CN110029550A (en) * 2019-05-28 2019-07-19 广东金长成桥梁隧道科技有限公司 A kind of novel bridge deck pavement structure and its construction technology
CN110777823A (en) * 2019-11-19 2020-02-11 中航勘察设计研究院有限公司 Flexible net surface layer and rigid beam composite soil nailing wall supporting system
CN110847018A (en) * 2019-11-12 2020-02-28 山东交通学院 Assembled concrete pier and construction method thereof
CN110886529A (en) * 2019-12-12 2020-03-17 邢台职业技术学院 Energy consumption beam embedded with viscoelastic layer

Patent Citations (27)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN85105302A (en) * 1985-07-10 1987-01-14 伊·詹姆斯·米勒 Improved flexible pavement
WO1998057013A1 (en) * 1997-06-10 1998-12-17 Energy Research, Inc. Elastomeric seismic isolation bearing and method
US20090014320A1 (en) * 2004-06-14 2009-01-15 Massachusetts Institute Of Technology Electrochemical actuator
US20090090070A1 (en) * 2007-10-03 2009-04-09 Steven Caffall Finch Railway arch linings and mezzanine floors
CN101566718A (en) * 2009-06-05 2009-10-28 中国科学院长春光学精密机械与物理研究所 Flexible supporting structure for the back of reflecting mirror
CN101982625A (en) * 2010-10-15 2011-03-02 清华大学 Shear wall composed of multilayer steel plates
US20120313307A1 (en) * 2011-06-13 2012-12-13 Goodrich Corporation Polymer composites possessing improved vibration damping
CN103906795A (en) * 2011-06-13 2014-07-02 古德里奇公司 Polymer composites possessing improved vibration damping
WO2014109799A1 (en) * 2012-09-17 2014-07-17 President And Fellows Of Harvard College Soft exosuit for assistance with human motion
CN102913255A (en) * 2012-11-09 2013-02-06 中国矿业大学(北京) Method for preventing bottom board of deep-seated heading from bulging and deforming
WO2015157164A1 (en) * 2014-04-09 2015-10-15 Natel Energy, Inc. Belt attachment and system
CN104120651A (en) * 2014-08-06 2014-10-29 南京工业大学 Unidirectional lead core rubber vibration insulation support
CN204059186U (en) * 2014-08-06 2014-12-31 南京工业大学 Unidirectional lead rubber laminated bearing
CN104677742A (en) * 2015-03-25 2015-06-03 成都理工大学 Model box provided with high confining pressure loading system
WO2016201109A1 (en) * 2015-06-10 2016-12-15 The Regents Of The University Of California Architected material design for seismic isolation
CN108141668A (en) * 2015-09-14 2018-06-08 翼声有限公司 In audio converter or relative improvement
US20170282247A1 (en) * 2016-04-01 2017-10-05 Board Of Regents, The University Of Texas System Modeling of nanoparticle agglomeration and powder bed formation in microscale selective laser sintering systems
CN206034285U (en) * 2016-08-12 2017-03-22 上海申继交通科技有限公司 Antifatigue rigidity combination steel bridge deck pavement structure
US20180278200A1 (en) * 2017-03-22 2018-09-27 Sungeun K. Jeon Compact Structures and Methods for Deploying Foldable Origami Solar Arrays, Solar Sails, and Antenna Structures
CN106894432A (en) * 2017-04-08 2017-06-27 山东省建筑科学研究院 A kind of pile variation rigidity reinforcement cushion composite foundation and its construction method
CN109505229A (en) * 2018-12-13 2019-03-22 中交公局桥隧工程有限公司 Highway high gradient slope stress equilibrium and vibration damping are taken precautions against natural calamities high bridge pier structure and construction method
CN109657337A (en) * 2018-12-14 2019-04-19 中国航空工业集团公司西安飞机设计研究所 A kind of bolted modeling method of Fast simulation single lap joint part
CN109973506A (en) * 2019-04-04 2019-07-05 大连交通大学 A kind of bolt fastening structure and its modeling method with lock washer
CN110029550A (en) * 2019-05-28 2019-07-19 广东金长成桥梁隧道科技有限公司 A kind of novel bridge deck pavement structure and its construction technology
CN110847018A (en) * 2019-11-12 2020-02-28 山东交通学院 Assembled concrete pier and construction method thereof
CN110777823A (en) * 2019-11-19 2020-02-11 中航勘察设计研究院有限公司 Flexible net surface layer and rigid beam composite soil nailing wall supporting system
CN110886529A (en) * 2019-12-12 2020-03-17 邢台职业技术学院 Energy consumption beam embedded with viscoelastic layer

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
周李真辉等: "锁定状态下一维可展桁架球铰连接刚度识别", 《振动与冲击》 *
方自文等: "基于联接层的螺栓联接复合梁振动特性建模", 《噪声与振动控制》 *

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112685940A (en) * 2020-12-29 2021-04-20 摩登汽车(盐城)有限公司 Finite element modeling method for simulating bolt collision fracture failure
CN112685940B (en) * 2020-12-29 2024-04-26 摩登汽车(盐城)有限公司 Finite element modeling method for simulating bolt collision fracture failure

Also Published As

Publication number Publication date
CN111625911B (en) 2023-03-31

Similar Documents

Publication Publication Date Title
CN108153981A (en) A kind of composite material fuselage Material Stiffened Panel Post-Buckling Analysis of Structures method based on finite element analysis
CN103593542B (en) A kind of compound material bolt connection structure pin load distribution defining method considering gap and screw-down torque
CN102799729B (en) Effective method for quickly eliminating residual stress of heterogeneous component
CN103745066B (en) Determining method for structural stiffness index of high-aspect-ratio wing
CN105241630A (en) Pulse type rod strain balance applied to shock tunnel dynamometric test
CN115630558B (en) Method for predicting assembly deformation of composite material component
CN105653883A (en) Method for checking useful load of auxiliary springs of non-end contact diagonal main and auxiliary spring
CN104200016A (en) Multi-control-surface aircraft modal calculation and verification method
CN102799728B (en) The method for making of leaf spring Dynamics Simulation Model
CN110516365A (en) A method of test bolt joint stiffness
CN104298823A (en) Analysis method and system of high- and low-temperature balances
CN106021689A (en) Method for calculating contact force of structure after deformation
CN111709174A (en) Composite material laminated plate strength analysis method based on failure surface theory
CN111625911B (en) Modeling method for simulating screw connection
CN104992039A (en) Calculation method of pressure during conical-surface oil-pressure interference installation process
CN112464401B (en) Accurate modeling method for metal material welding spot
CN104807606A (en) MATLAB-STM32 hybrid power test system and test method thereof
Guo et al. Construction of virtual mulch film model based on discrete element method and simulation of its physical mechanical properties
CN111259575B (en) Finite element analysis design method for complex steel pipe node integral model
CN104699912A (en) Strength calculation method of hub and spindle connecting bolt of wind generator set
CN112528393B (en) Ship shafting connecting flange dynamic analysis modeling method
CN113722950B (en) Fatigue strength checking method for T-shaped flange anchor bolts of wind turbine
CN112115616B (en) Dynamic characteristic analysis method and device of power transmission tower
CN112100873A (en) Method for determining bearing capacity of hydraulic building
CN111507027B (en) Method for judging integral power failure time of steel truss tower structure

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