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Numerical simulation and experimental validation of novel hyperelastic micro-motion manipulator for water conserving device

机译:新型高级弹性微观运动机械手用于节水装置的数值模拟与实验验证

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The aim of this study was to evaluate a novel water-conserving micro-motion manipulator (manipulator) for application in the fluid flow rate regulator of a faucet through numerical simulation and experimental validation. The manipulator was analyzed with various diameters of the water channel. When the channel is narrow, the water flow rate decreases, and the water channel becomes narrower as the inlet water pressure increases. Moreover, the water channel returns to the rest position and provides the required minimum flow rate when the inlet water pressure is minimum. The behavior of the manipulator was simulated using the fluid-structure interaction model of COMSOL multiphysics. The Mooney-Rivlin two-parameter model was used for the simulation. This study employed two methods to obtain the coefficients C-10 and C-01. The first method was performed according to Gent's relation, a relation between the ASTM D2240 Shore hardness and Young's modulus. The second method was employed to validate the coefficients during the simulation on the basis of tensile tests performed according to ASTM 412-C. Through the simulations and laboratory testing, the manipulator complies with the requirements of the California Energy Commission (CEC) and U.S. Environmental Protection Agency (EPA). The results show that the physical samples of the manipulator installed in the water-conserving regulators complied with the CEC and EPA standards. The experimental validation results confirmed the suitability of the numerical simulation in predicting the water-conserving performance of the manipulator with respect to the inlet water pressure by using a hyperelastic silicone rubber material.
机译:本研究的目的是通过数值模拟和实验验证来评估一种新的水保存微型运动机械手(操纵器),用于在水龙头的流体流量调节器中应用。用各种水通道的直径分析操纵器。当通道窄时,水流速率降低,随着入口水压力的增加,水道变窄。此外,当入口水压力最小时,水通道返回到静止位置并提供所需的最小流速。使用COMSOL Multiphysics的流体结构相互作用模型进行模拟操纵器的行为。 Mooney-Rivlin两参数模型用于模拟。该研究采用了两种方法来获得系数C-10和C-01。第一种方法是根据绅士的关系进行的,ASTM D2240肖氏硬度与杨氏模量之间的关系。采用第二种方法在根据ASTM 412-C执行的拉伸试验的基础上验证系数。通过模拟和实验室测试,机械手符合加州能源委员会(CEC)和美国环境保护局(EPA)的要求。结果表明,安装在水保管机中的机械手的物理样本符合CEC和EPA标准。实验验证结果证实了数值模拟的适用性通过使用超弹性硅橡胶材料预测机械手的水保存性能。

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