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首页> 外文期刊>ScientificWorldJournal >Effects and Mechanisms of Surface Topography on the Antiwear Properties of Molluscan Shells (Scapharca subcrenata) Using the Fluid-Solid Interaction Method
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Effects and Mechanisms of Surface Topography on the Antiwear Properties of Molluscan Shells (Scapharca subcrenata) Using the Fluid-Solid Interaction Method

机译:表面形貌对软体动物 - 固体相互作用法对软体动物壳(Scapharca Subcrenata)抗磨性能的影响及机制

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The surface topography (surface morphology and structure) of the leftScapharca subcrenatashell differs from that of its right shell. This phenomenon is closely related to antiwear capabilities. The objective of this study is to investigate the effects and mechanisms of surface topography on the antiwear properties ofScapharca subcrenatashells. Two models are constructed—a rib morphology model (RMM) and a coupled structure model (CSM)—to mimic the topographies of the right and left shells. The antiwear performance and mechanisms of the two models are studied using the fluid-solid interaction (FSI) method. The simulation results show that the antiwear capabilities of the CSM are superior to those of the RMM. The CSM is also more conducive to decreasing the impact velocity and energy of abrasive particles, reducing the probability of microcrack generation, extension, and desquamation. It can be deduced that in the real-world environment,Scapharca subcrenata’sleft shell sustains more friction than its right shell. Thus, the coupled structure of the left shell is the result of extensive evolution.
机译:Leftscapharca Subcrenatashell的表面形貌(表面形态和结构)与其右壳的表面形貌不同。这种现象与抗磨能力密切相关。本研究的目的是探讨表面形貌对Scapharca Subcrenatashells抗磨性的影响和机制。构造了两种模型 - 肋形态模型(RMM)和耦合结构模型(CSM) - 模仿右壳和左壳的拓扑结构。使用流体固体相互作用(FSI)方法研究了两种模型的抗磨性能和机制。仿真结果表明,CSM的抗磨能力优于RMM的抗磨机能力。 CSM也更有利于降低磨料颗粒的冲击速度和能量,从而降低微裂纹产生,延伸和脱落的可能性。它可以推断出在真实世界的环境中,Scapharca Subcrenata'left壳体比其右壳维持更多的摩擦。因此,左壳的耦合结构是广泛演化的结果。

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