WO2022011751A1 - 一种基于压电和形状记忆合金的复合型轴向耗能装置 - Google Patents

一种基于压电和形状记忆合金的复合型轴向耗能装置 Download PDF

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Publication number
WO2022011751A1
WO2022011751A1 PCT/CN2020/106048 CN2020106048W WO2022011751A1 WO 2022011751 A1 WO2022011751 A1 WO 2022011751A1 CN 2020106048 W CN2020106048 W CN 2020106048W WO 2022011751 A1 WO2022011751 A1 WO 2022011751A1
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Prior art keywords
energy dissipation
shape memory
piezoelectric
steel sheet
sma wire
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PCT/CN2020/106048
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English (en)
French (fr)
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付兴
李宏男
李钢
董志骞
徐志凯
张兴恒
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Dalian University of Technology
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Dalian University of Technology
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Priority to US17/297,872 priority Critical patent/US11293415B2/en
Publication of WO2022011751A1 publication Critical patent/WO2022011751A1/zh
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    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04HBUILDINGS OR LIKE STRUCTURES FOR PARTICULAR PURPOSES; SWIMMING OR SPLASH BATHS OR POOLS; MASTS; FENCING; TENTS OR CANOPIES, IN GENERAL
    • E04H9/00Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate
    • E04H9/02Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate withstanding earthquake or sinking of ground
    • E04H9/021Bearing, supporting or connecting constructions specially adapted for such buildings
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03GSPRING, WEIGHT, INERTIA OR LIKE MOTORS; MECHANICAL-POWER PRODUCING DEVICES OR MECHANISMS, NOT OTHERWISE PROVIDED FOR OR USING ENERGY SOURCES NOT OTHERWISE PROVIDED FOR
    • F03G7/00Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for
    • F03G7/06Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like
    • F03G7/061Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like characterised by the actuating element
    • F03G7/0614Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like characterised by the actuating element using shape memory elements
    • F03G7/06143Wires
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/62Insulation or other protection; Elements or use of specified material therefor
    • E04B1/92Protection against other undesired influences or dangers
    • E04B1/98Protection against other undesired influences or dangers against vibrations or shocks; against mechanical destruction, e.g. by air-raids
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04HBUILDINGS OR LIKE STRUCTURES FOR PARTICULAR PURPOSES; SWIMMING OR SPLASH BATHS OR POOLS; MASTS; FENCING; TENTS OR CANOPIES, IN GENERAL
    • E04H9/00Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate
    • E04H9/02Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate withstanding earthquake or sinking of ground
    • E04H9/024Structures with steel columns and beams
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03GSPRING, WEIGHT, INERTIA OR LIKE MOTORS; MECHANICAL-POWER PRODUCING DEVICES OR MECHANISMS, NOT OTHERWISE PROVIDED FOR OR USING ENERGY SOURCES NOT OTHERWISE PROVIDED FOR
    • F03G7/00Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for
    • F03G7/06Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like
    • F03G7/063Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like characterised by the mechanic interaction
    • F03G7/0635Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like characterised by the mechanic interaction with several elements connected in series
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03GSPRING, WEIGHT, INERTIA OR LIKE MOTORS; MECHANICAL-POWER PRODUCING DEVICES OR MECHANISMS, NOT OTHERWISE PROVIDED FOR OR USING ENERGY SOURCES NOT OTHERWISE PROVIDED FOR
    • F03G7/00Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for
    • F03G7/06Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like
    • F03G7/063Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like characterised by the mechanic interaction
    • F03G7/0636Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like characterised by the mechanic interaction with several elements connected in parallel
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03GSPRING, WEIGHT, INERTIA OR LIKE MOTORS; MECHANICAL-POWER PRODUCING DEVICES OR MECHANISMS, NOT OTHERWISE PROVIDED FOR OR USING ENERGY SOURCES NOT OTHERWISE PROVIDED FOR
    • F03G7/00Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for
    • F03G7/06Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like
    • F03G7/064Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like characterised by its use
    • F03G7/0641Motors; Energy harvesting or waste energy recovery
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02NELECTRIC MACHINES NOT OTHERWISE PROVIDED FOR
    • H02N2/00Electric machines in general using piezoelectric effect, electrostriction or magnetostriction
    • H02N2/18Electric machines in general using piezoelectric effect, electrostriction or magnetostriction producing electrical output from mechanical input, e.g. generators
    • H02N2/186Vibration harvesters

Definitions

  • the invention belongs to the technical field of structural vibration control, in particular to a composite axial energy dissipation device based on piezoelectricity and shape memory alloy.
  • the invention creatively proposes a composite axial energy dissipation device based on piezoelectricity and shape memory alloy.
  • the axial pressure on the steel pipe is converted into electric energy, and then the resistance wire is used to convert it into thermal energy consumption.
  • shape memory alloys shape memory alloys, SMA
  • SMA shape memory alloys
  • the purpose of the present invention is to design a truss connecting device with reasonable structure and obvious energy consumption effect.
  • a composite axial energy dissipation device based on piezoelectric and shape memory alloy mainly composed of screw rod, steel pipe, nut, piezoelectric ceramics, stiffener, steel sheet, nut and SMA wire bundle,
  • the entire composite axial energy dissipation device is provided with several segments, each segment is mainly composed of steel pipes, steel sheets and piezoelectric ceramics, and all segments are connected in series by SMA wire bundles;
  • the steel sheet is rigidly connected to the steel pipe, and the piezoelectric ceramics between the segments are in close contact with the upper and lower steel sheets, and are fixed by a buckle formed by the steel sheet and the end of the steel pipe;
  • a stiffening rib is arranged between the steel pipe and the steel sheet; a hole is reserved at the center of the steel sheet and the piezoelectric ceramic;
  • the upper end of the SMA wire bundle is rigidly connected to the screw rod, and the lower end is rigidly connected to the nut, and passes through the steel sheet on each segment and the hole reserved in the center of the piezoelectric ceramic in turn;
  • the nut and the screw are tightened to fix the SMA tow and apply a pre-tightening force.
  • the reserved holes of the steel sheet on each segment can just pass through the SMA tow to limit the lateral displacement of the SMA tow.
  • the number of segments is adjusted according to the magnitude of the axial force and the specific force.
  • Eight symmetrical stiffeners are used in a single segment to make the structure more stable.
  • a composite axial energy dissipation device based on piezoelectric and shape memory alloys of the present invention converts the mechanical energy of the structure under compression into the electrical energy of piezoelectric ceramics, and then into thermal energy, with high energy consumption efficiency and high stress resistance. good performance;
  • a composite axial energy dissipation device based on piezoelectric and shape memory alloys of the present invention adopts SMA tows with large stress and small strain, which can withstand greater tensile force; has shape memory effect and can realize self-reset ;
  • a composite axial energy dissipation device based on piezoelectric and shape memory alloys of the present invention can apply a pre-tightening force to the SMA wire bundle through bolts, and the numerical value is flexible, which not only enhances the safety of the structure, but also can Make the structure suitable for different stress situations;
  • a composite axial energy dissipation device based on piezoelectric and shape memory alloy of the present invention can adjust the number of segments, the specifications of piezoelectric ceramics and SMA wire bundles according to actual needs, so that the structure can be adjusted according to the actual needs. Adjust the size of the axial force and the specific force;
  • the composite axial energy dissipation device based on piezoelectric and shape memory alloy of the present invention has the advantages of simple structure, easy maintenance, and better mechanical performance than ordinary steel pipes.
  • FIG. 1 is a plan view of a composite axial energy dissipation device based on piezoelectric and shape memory alloy provided by an embodiment of the present invention
  • FIG. 2 is an A-A cross-sectional view of a composite axial energy dissipation device based on piezoelectric and shape memory alloy provided by an embodiment of the present invention
  • FIG. 3 is a B-B cross-sectional view of a composite axial energy dissipation device based on piezoelectric and shape memory alloy provided by an embodiment of the present invention
  • An embodiment of a composite axial energy dissipation device based on piezoelectric and shape memory alloy includes: a screw 1, a steel pipe 2, a nut 3, a piezoelectric ceramic 4, a stiffening rib 5, a steel sheet 6. Nut 7, SMA wire bundle 8.
  • the whole device is provided with several segments, each segment is composed of steel pipe 2, steel sheet 6, piezoelectric ceramics 4, and all segments are connected in series by SMA wire bundles 8.
  • each segment is composed of steel pipe 2, steel sheet 6, piezoelectric ceramics 4, and all segments are connected in series by SMA wire bundles 8.
  • the steel pipe 2 bears The pressure will be transmitted to the steel sheet 6.
  • eight symmetrical stiffeners 5 the local stability of the welded joint between the steel pipe 2 and the steel sheet 6 can be ensured and the concentrated force can be transmitted evenly.
  • the position of the electric ceramic 4 prevents it from sliding left and right; through the pre-tightening force applied to the SMA tow, the structure is given certain bending, torsion and shear resistance properties, so that the axial force component is subjected to bending moment, torque and It can still remain as a whole when shearing.
  • the structure is subjected to reciprocating tension and pressure under the action of power.
  • the steel sheet squeezes the piezoelectric ceramic, and the upper and lower surfaces of the piezoelectric ceramic generate positive and negative charges respectively.
  • a closed loop is formed by connecting the positive and negative copper wires, and the electrical energy is converted into heat energy and quickly dissipated.
  • the SMA tow is subjected to the tension from two adjacent segments. Due to its large elastic coefficient, it produces a small deformation when it is stressed, and has good self-resetting ability when unloaded. It has the advantages of shape memory, superelasticity and high damping characteristics, which can effectively prevent the structure from being damaged in tension.
  • the mechanical energy of the structure under compression is converted into the electrical energy of piezoelectric ceramics, and then into heat energy, with high energy consumption efficiency and good mechanical performance; SMA tows with large stress and small strain are used, which can withstand greater tensile force and have shape memory effect. , and good corrosion resistance and fatigue resistance; the number of segments, the specifications of piezoelectric ceramics and SMA tows can be adjusted according to actual needs, so that the structure can be adjusted according to the magnitude of the axial force and the specific force. ; It has the advantages of simple structure, easy maintenance, and better mechanical performance than ordinary steel pipes.
  • the compressive bearing capacity of the piezoelectric ceramic sheet is higher than the design pressure of the steel pipe or the component, so as to ensure that the piezoelectric ceramic sheet can stably consume energy before the failure of the component;
  • the SMA wire bundle The tensile bearing capacity of the steel tube is higher than the design tensile force of the steel tube or component, and its tensile stiffness should be similar to the steel tube or design stiffness to ensure the overall stiffness and stability of the structure;
  • the screw and nut just connected to the SMA wire bundle need Sufficient strength and rigidity, the preload formed by these three should be large enough to connect each segment to form a whole; fourth, set up eight symmetrical stiffeners to ensure the local welding of steel pipe and steel sheet. Stable and uniform transmission of concentrated force;
  • Fifth, the upper and lower surfaces of piezoelectric ceramics should be connected by multiple (2 or more) copper wires to ensure the reliability and redundancy of the system.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Architecture (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Environmental & Geological Engineering (AREA)
  • Emergency Management (AREA)
  • Business, Economics & Management (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Electromagnetism (AREA)
  • Physics & Mathematics (AREA)
  • General Electrical Machinery Utilizing Piezoelectricity, Electrostriction Or Magnetostriction (AREA)
  • Vibration Prevention Devices (AREA)

Abstract

一种基于压电和形状记忆合金的复合型轴向耗能装置,包括螺杆(1)、钢管(2)、加劲肋(5)、钢片(6)、螺母(3)、压电陶瓷(4)、螺帽(7)和SMA丝束(8),该耗能装置能够将结构受压的机械能转化为压电陶瓷(4)的电能,再转化为热能,耗能效率高,受力性能好;SMA丝束(8)抗拉承载力大,具有形状记忆效应,而且抗腐性抗疲劳性好;可根据实际需要对节段数量、压电陶瓷(4)及SMA丝束(8)的规格进行调整,使结构可根据所受轴向力的大小及具体受力情况进行调节;该耗能装置具有构造简单,易于维修,耗能能力优良等特点,且安装方便,不影响外部造型,具有广泛的应用前景。

Description

一种基于压电和形状记忆合金的复合型轴向耗能装置 技术领域
本发明属于结构振动控制技术领域,具体是指一种基于压电和形状记忆合金的复合型轴向耗能装置。
背景技术
近年来,随着我国钢铁产量的不断增长,管桁架在被越来越广泛地使用,在建筑中所占的比例越来越大,管桁架结构截面材料绕中和轴较均匀分布,使截面同时具有良好的抗压性能及大扭转刚度等特点。另外,管桁架结构整体性能好、构造简单、外表美观,制作、安装、翻身、起吊都比较容易。
当前很多钢桁架构件由于长期受到动力循环荷载,容易造成疲劳裂纹和缺陷,从而产生结构承载能力、耐久性降低等结构性缺陷,不能满足人们正常使用的需求。
本发明创造性地提出了一种基于压电和形状记忆合金的复合型轴向耗能装置,利用压电效应原理,将钢管所受轴向压力转换为电能,再利用电阻丝转化成热能消耗,大大增加耗能效率;利用形状记忆合金(shape memory alloys,SMA)丝束承受拉力,具有允许变形大且变形可恢复等优点,和压电耗能装置共同作用,可有效消耗结构在动力荷载下的能量,从而降低结构动力响应、提高其使用寿命。
技术问题
本发明的目的是设计一种构造合理,耗能效果明显的桁架连接装置。
技术解决方案
本发明的技术方案:
一种基于压电和形状记忆合金的复合型轴向耗能装置,主要由螺杆、钢管、螺母、压电陶瓷、加劲肋、钢片、螺帽和SMA丝束组成,
整个复合型轴向耗能装置设置若干节段,每个节段主要由钢管、钢片和压电陶瓷组成,由SMA丝束串联所有节段;
所述钢片与钢管刚接,节段之间压电陶瓷与上下钢片紧密接触,并由钢片与钢管端部构成的卡扣固定;
所述钢管与钢片之间设置加劲肋;钢片与压电陶瓷中心处预留孔洞;
所述SMA丝束上端与螺杆刚接,下端与螺帽刚接,依次穿过各节段上的钢片与压电陶瓷中心处预留的孔洞;
所述螺母与螺杆扭紧,固定SMA丝束并施加预紧力。
各节段上的钢片预留孔洞刚好可穿过SMA丝束,以限制SMA丝束的横向位移。
节段的数量根据所受轴向力的大小及具体受力情况调节。
单个节段中采用八个对称的加劲肋,使结构更加稳定。
有益效果
本发明的有益效果:
(1)本发明的一种基于压电和形状记忆合金的复合型轴向耗能装置,将结构受压的机械能转化为压电陶瓷的电能,再转化为热能,耗能效率高,受力性能好;
(2)本发明的一种基于压电和形状记忆合金的复合型轴向耗能装置,采用应力大应变小的SMA丝束,可承受更大的拉力;具有形状记忆效应,可实现自复位;
(3)本发明的一种基于压电和形状记忆合金的复合型轴向耗能装置,可通过螺栓对SMA丝束施加预紧力,且数值灵活,既增强了结构的安全性,也可使结构适用于不同的受力情况;
(4)本发明的一种基于压电和形状记忆合金的复合型轴向耗能装置,可根据实际需要对节段的数量、压电陶瓷及SMA丝束的规格进行调整,使结构根据所受轴向力的大小及具体受力情况进行调节;
(5)本发明的一种基于压电和形状记忆合金的复合型轴向耗能装置,具有构造简单,易于维修,受力性能优于普通钢管等优点。
附图说明
图1为本发明实施例提供的一种基于压电和形状记忆合金的复合型轴向耗能装置的平面图;
图2为本发明实施例提供的一种基于压电和形状记忆合金的复合型轴向耗能装置的A-A剖面图;
图3为本发明实施例提供的一种基于压电和形状记忆合金的复合型轴向耗能装置的B-B剖面图;
图中:1螺杆;2钢管;3螺母;4压电陶瓷;5加劲肋;6钢片;7螺帽;8 SMA丝束。
本发明的实施方式
以下结合附图和技术方案,进一步说明本发明的具体实施方式。
本发明实施例提供的一种基于压电和形状记忆合金的复合型轴向耗能装置的一个实施例,包括:螺杆1、钢管2、螺母3、压电陶瓷4、加劲肋5、钢片6、螺帽7、SMA丝束8。
在本实施例中,整个装置设置若干节段,每个节段由钢管2、钢片6、压电陶瓷4组成,由SMA丝束8串联所有节段,当结构受压时,钢管2承受的压力会传递给钢片6,通过设置八个对称的加劲肋5,可保证钢管2与钢片6焊接处的局部稳定并均匀传递集中力,上下两钢片6形成的卡扣可以固定压电陶瓷4的位置,防止其左右滑动;通过施加在SMA丝束上的预紧力,赋予了结构一定的抗弯、抗扭、抗剪性能,使该轴力构件在受到弯矩、扭矩和剪力时仍能保持为一个整体。
结构在动力作用下受到往复的拉力和压力。当该构件受压时,钢片挤压压电陶瓷,压电陶瓷上下表面分别产生正负电荷,通过连接正负极的铜丝形成闭合回路,将电能转化为热能并快速耗散。当该构件受到拉力时,SMA丝束受到两相邻节段传来的拉力,由于其弹性系数较大,受力时产生较小的变形,卸载时具有良好的自复位能力,SMA材料由于其具有形状记忆、超弹性和高阻尼特性的优点,可有效防止结构受拉破坏。
将结构受压的机械能转化为压电陶瓷的电能,再转化为热能,耗能效率高,受力性能好;采用应力大应变小的SMA丝束,可承受更大的拉力,具有形状记忆效应,而且抗腐性抗疲劳性好;可根据实际需要对节段的数量、压电陶瓷及SMA丝束的规格进行调整,使结构可以根据所受轴向力的大小及具体受力情况进行调节;具有构造简单,易于维修,受力性能优于普通钢管等优点。
设计本发明时需注意:第一,压电陶瓷片的抗压承载力要高于钢管管或构件设计压力,保证压电陶瓷片在构件失效前可一直稳定耗能;第二,SMA丝束的抗拉承载力要高于钢管或构件设计拉力,其抗拉刚度要与钢管或设计刚度近似,保证结构整体的刚度和稳定性;第三,与SMA丝束刚接的螺杆与螺帽需要足够的强度与刚度,通过这三者形成的预紧力也要足够大,足以让各个节段相连形成一个整体;第四,设置八个对称的加劲肋,可保证钢管与钢片焊接处的局部稳定并均匀传递集中力;第五,压电陶瓷上下表面应采用多根(2根以上)铜丝相连,保证系统的可靠度和冗余度。
本发明的上述实施例并不是对本发明保护范围的限定,本发明的实施方式不限于此,凡此种种根据本发明的上述内容,按照本领域的普通技术知识和惯用手段,在不脱离本发明上述基本技术思想前提下,对本发明上述结构做出的其它多种形式的修改、替换或变更,均应落在本发明的保护范围之内。

Claims (5)

  1. 一种基于压电和形状记忆合金的复合型轴向耗能装置,主要由螺杆(1)、钢管(2)、螺母(3)、压电陶瓷(4)、加劲肋(5)、钢片(6)、螺帽(7)和SMA丝束(8)组成,其特征在于:
    整个复合型轴向耗能装置设置若干节段,每个节段主要由钢管(2)、钢片(6)和压电陶瓷(4)组成,由SMA丝束(8)串联所有节段;
    所述钢片(6)与钢管(2)刚接,节段之间压电陶瓷(4)与上下钢片(6)紧密接触,并由钢片(6)与钢管(2)端部构成的卡扣固定;
    所述钢管(2)与钢片(6)之间设置加劲肋(5);钢片(6)与压电陶瓷(4)中心处预留孔洞;
    所述SMA丝束(8)上端与螺杆(1)刚接,下端与螺帽(7)刚接,依次穿过各节段上的钢片(6)与压电陶瓷(4)中心处预留的孔洞;
    所述螺母(3)与螺杆(1)扭紧,固定SMA丝束(8)并施加预紧力。
  2. 根据权利要求1所述的基于压电和形状记忆合金的复合型轴向耗能装置,其特征在于:各节段上的钢片(6)预留孔洞刚好可穿过SMA丝束(8),以限制SMA丝束(8)的横向位移。
  3. 根据权利要求1或2所述的基于压电和形状记忆合金的复合型轴向耗能装置,其特征在于:节段的数量根据所受轴向力的大小及具体受力情况调节。
  4. 根据权利要求1或2所述的基于压电和形状记忆合金的复合型轴向耗能装置,其特征在于:单个节段中采用八个对称的加劲肋,使结构更加稳定。
  5. 根据权利要求3所述的基于压电和形状记忆合金的复合型轴向耗能装置,其特征在于:单个节段中采用八个对称的加劲肋,使结构更加稳定。
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