Design and Characteristic Research on Variable Displacement Mechanism of Two-Dimensional (2D) Bivariable Pump

Author:

Xing Tong1ORCID,Ji Xu1ORCID,Yang Zeri1,Ruan Jian1

Affiliation:

1. Key Laboratory of Special Purpose Equipment and Advanced Manufacturing Technology, Zhejiang University of Technology, Ministry of Education & Zhejiang Province, Hangzhou 310014, China

Abstract

In a hydraulic system, a micro variable pump is required to be high pressure and high speed, and this work presents a new type of 2D bivariable pump structure in which the worm gear and worm mechanism are used to rotate the cylinder block to change the flow distribution state of the cylinder window and the piston groove to change the displacement of the 2D pump. The flow–pressure mathematical model of the 2D variable pump is established to analyze the relationship between pump displacement and the pump cylinder rotation angle and the effects of variable displacement on pump pressure characteristics, flow characteristics, and volume efficiency in Matlab. During the experiment, we tested the change in the corresponding pump output flow when the cylinder rotation angle is 0~12°, which verifies the correctness of the variable calculation model. The experimental results indicate that the volume efficiency and mechanical efficiency of the single-piston 2D pump are reduced to different degrees after variable displacement, the volume efficiency is reduced by approximately 3% at most, and the mechanical efficiency is reduced by approximately 5% at most.

Funder

the National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

MDPI AG

Reference26 articles.

1. Research on Control System of Hydraulic Bionic Quadruped Robot;Lou;Microcontroll. Embed. Syst.,2015

2. The development and prospect of hydraulic power system in civil aircrafts;Jiao;Aeronaut. Sci. Technol.,2019

3. Single and Double Pump Controlled Distributed Hydraulic System of Excavator Using Active Disturbance Rejection Control;Zhang;Chin. Hydraul. Pneum.,2023

4. Analysis on the friction losses of a bent-axis type hydraulic piston pump;Hong;KSME Int. J.,2004

5. Present Development Status and Key Technology Research of Airborne Electro-Hydrostatic Actuation System;Li;Aeronaut. Manuf. Technol.,2005

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