A GPU-boosted high-performance multi-working condition joint analysis framework for predicting dynamics of textured axial piston pump
Xin Yao, Yang Liu, Jin Jiang, Yesen Chen, Zhilong Chen, Hongkang Dong, Xiaofeng Wei, Teng Zhang, Dongyun Wang

TL;DR
This paper introduces a GPU-accelerated framework for simulating the dynamics of textured axial piston pumps, significantly improving efficiency and enabling multi-period analysis of complex pump behaviors.
Contribution
The paper presents a novel GPU-boosted multi-condition analysis framework using advanced iterative methods for high-performance simulation of textured axial piston pumps.
Findings
GPU acceleration greatly reduces simulation time.
Pressure and force responses to input pressure are characterized.
Textured surfaces enhance pressure capacity and torsion resistance.
Abstract
Accurate simulation to dynamics of axial piston pump (APP) is essential for its design, manufacture and maintenance. However, limited by computation capacity of CPU device and traditional solvers, conventional iteration methods are inefficient in complicated case with textured surface requiring refined mesh, and could not handle simulation during multiple periods. To accelerate Picard iteration for predicting dynamics of APP, a GPU-boosted high-performance Multi-working condition joint Analysis Framework (GMAF) is designed, which adopts Preconditioned Conjugate Gradient method (PCG) using Approximate Symmetric Successive Over-Relaxation preconditioner (ASSOR). GMAF abundantly utilizes GPU device via elevating computational intensity and expanding scale of massive parallel computation. Therefore, it possesses novel performance in analyzing dynamics of both smooth and textured APPs during…
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Taxonomy
TopicsHydraulic and Pneumatic Systems · Cavitation Phenomena in Pumps · Tribology and Lubrication Engineering
