螺杆转子对啮合间隙的稳健计算方法

IF 4.5 1区 工程技术 Q1 ENGINEERING, MECHANICAL Mechanism and Machine Theory Pub Date : 2024-06-26 DOI:10.1016/j.mechmachtheory.2024.105719
Van-Quyet Tran , Yu-Ren Wu
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引用次数: 0

摘要

本研究提出了一种新型计算方法,用于计算压缩机和真空泵中两个配合螺杆转子之间的啮合间隙。啮合间隙通过计算螺旋曲线与转子表面之间的最小距离获得。螺杆转子对的三维接触点是通过应用所提出的算法找到的。特别是,对于具有多个奇异点(最短距离方向与转子表面的法线方向不一致)的转子类型,该方法具有足够的鲁棒性,可精确计算间隙。正如数值示例所示,所提出的方法可以估算两个螺距恒定或可变的配合螺杆转子之间的间隙,也可以分析两个未啮合转子之间的啮合间隙。此外,可预测偏航和螺距偏差的变螺距螺杆转子对间隙分布的差异。这些结果验证了所提方法的稳健性和灵活性。
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A robust calculation method of meshing clearance for screw rotor pairs

This study proposes a novel calculation method for meshing clearance between two mating screw rotors in compressors and vacuum pumps. The meshing clearance is obtained by calculating the minimum distance between the helix curves and the rotor surface. The 3D contact points of the screw rotor pair are found by applying the proposed algorithm. In particular, this method is robust enough to precisely calculate the clearance for the rotor type with several singular points where the shortest distance direction misaligns with the normal direction of the rotor surface. As demonstrated in the numerical examples, the proposed method is possible to estimate the clearance between two mating screw rotors with constant or variable pitch, as well as feasible to analyze the meshing clearance between two unconjugated rotors. In addition, differences in the clearance distribution of a variable-pitch screw pair with yaw and pitch misalignments are predictable. These results validate the robustness and flexibility of the proposed method.

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来源期刊
Mechanism and Machine Theory
Mechanism and Machine Theory 工程技术-工程:机械
CiteScore
9.90
自引率
23.10%
发文量
450
审稿时长
20 days
期刊介绍: Mechanism and Machine Theory provides a medium of communication between engineers and scientists engaged in research and development within the fields of knowledge embraced by IFToMM, the International Federation for the Promotion of Mechanism and Machine Science, therefore affiliated with IFToMM as its official research journal. The main topics are: Design Theory and Methodology; Haptics and Human-Machine-Interfaces; Robotics, Mechatronics and Micro-Machines; Mechanisms, Mechanical Transmissions and Machines; Kinematics, Dynamics, and Control of Mechanical Systems; Applications to Bioengineering and Molecular Chemistry
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