Flexible joint based on opposite-mounted planar torsion springs

A technology of planar torsion springs and joints, applied in the field of robotics, can solve the problems of short system response time and high robot motion precision, and achieve the effect of short response time, high motion precision requirements, and simple structure

Active Publication Date: 2020-01-03
HARBIN INST OF TECH SHENZHEN GRADUATE SCHOOL
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

[0009] The planar torsion spring in the prior art adopts a symmetrical structure in order to meet the requirements of bidirectional deformation. The design of such a planar torsion spring needs to consider the deformation required by the elastic body during bidirectional deformation, and reserve enough deformation space for it. When the joint rotates in reverse, because the elastic part needs to return to the equilibrium position first, it will inevitably produce a reverse empty return, and then the joint can be driven in reverse. Such a reverse empty return is difficult to meet the requirements of the system. The response time is short, the robot For high motion precision

Method used

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  • Flexible joint based on opposite-mounted planar torsion springs
  • Flexible joint based on opposite-mounted planar torsion springs
  • Flexible joint based on opposite-mounted planar torsion springs

Examples

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Embodiment 1

[0054] Such as figure 1 As shown in -10, a compliant joint based on paired plane torsion springs includes a fixed housing 100 , an output housing 200 , a shaft 300 and a one-way rotation device 400 .

[0055] An end cover 101 is provided on the fixed housing 100, and one end of the output housing 200 is connected to the end cover 101 by bolts, and the other end of the output housing 200 is rotatably connected to the fixed housing through a deep groove ball bearing 200a (rotating body one). 100, wherein the output housing 200 can rotate relative to the fixed housing 100, and the shaft 300 is arranged on the rotation center of the output housing 200, which is respectively connected to the output through the deep groove ball bearing 200b and the deep groove ball bearing 200c (rotating body 2). The housing 200 is connected to the fixed housing 100 , specifically, the end cover 101 is also connected to the fixed housing 100 through a deep groove ball bearing 200 c to realize relati...

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Abstract

The invention provides a flexible joint based on opposite-mounted planar torsion springs. The flexible joint comprises a fixing shell, an output shell, a shaft and at least one one-way rotating deviceconnected with the shaft, wherein the output shell is connected to the fixing shell through a first rotating body; the shaft is positioned at the rotation center of the output shell and is connectedto the output shell through a second rotating body; the one-way rotating device comprises two opposite-mounted one-way planar torsion springs and one-way rotating members assembled on the one-way planar torsion springs; the rotating directions of the two one-way planar torsion springs are opposite; the one-way planar torsion springs comprise inner rings and outer rings, wherein the inner rings andthe outer rings are capable of rotating relative to each other; the one-way rotating members are fixedly connected to the inner rings and / or the outer rings of the one-way planar torsion springs; andthe stopping directions of the one-way rotating members are the same as the the stopping directions of the one-way planar torsion springs connected with the one-way rotating members. According to theflexible joint, the defect of reverse idle return can be avoided while unidirectional torque output is carried out, and meanwhile, the joint is flexible.

Description

technical field [0001] The invention belongs to the technical field of robots, and in particular relates to a compliant joint based on paired plane torsion springs. Background technique [0002] Traditional robot joints are characterized by high rigidity. The high rigidity of robot joints can ensure the accuracy of robot end movement and high repeatability of execution actions, which makes robots play a great role in manufacturing and other fields. However, in fields involving human-machine collaboration such as service robots and nursing robots, the high rigidity of robot joints will pose a potential threat to human safety. When a robot collides with a human, the rigid joints cannot absorb the energy of the collision, which may cause Causing casualties and property damage. [0003] In recent years, systems for establishing safe interactions between humans and robots have been realized through impedance control, sensor perception, and series elastic actuators. Among them, ...

Claims

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Application Information

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IPC IPC(8): B25J17/00
CPCB25J17/00
Inventor李兵刘一帆宁英豪黄海林徐文福杨晓钧
OwnerHARBIN INST OF TECH SHENZHEN GRADUATE SCHOOL