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Design of an Active Cooling System for Thermally Activated Soft Actuators

机译:热激活软执行器主动冷却系统的设计

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A new type of actuator made from twisting a silver-plated nylon thread presents new possibilities for the way wearable mechatronic rehabilitation devices are designed. The twisted coiled actuator (TCA) has been previously shown to provide a power density up to 100 times that of biological muscles, while also encompassing biomimetic characteristics. However, since TCAs require heat to contract, the main drawbacks preventing this type of actuator are its inherent low efficiency and slow reaction times. To combat both of these issues, a simple tube enclosure was designed to provide active cooling using forced air. The two main parameters affecting the efficiency and bandwidth are the cooling air pressure and tube diameter. This study presents a two-way repeated measures test to compare these parameters on the cooling and heating rates of the TCA system, as well as the thermal capacitance with three pressure levels (10, 15 and 20 psi) and three tube diameters (4, 4.5, and 5 mm). The results show that an increase in pressure significantly improves the rate of cooling, while a decrease in tube diameter has negative effects on the efficiency and cooling rate of the system. The mean values of the cooling time (τcool) were 2.972, 2.210, and 2.682 seconds for 4, 4.5, and 5 mm diameters, respectively. These results indicate that a decrease in diameter improves the cooling rate up to the point at which the walls of the tube become so close to the TCA strand, that they prevent rapid heat transfer while cooling.
机译:由扭转镀银尼龙螺纹制成的新型致动器呈现了设计可穿戴机电康复设备的新可能性。扭曲的卷绕致动器(TCA)已经示出,以提供高达100倍的生物肌肉的功率密度,同时也包括仿生特性。然而,由于TCA需要加热才能进行加热,因此防止这种类型的致动器的主要缺点是其固有的低效率和慢速反应时间。为了打击这两个问题,设计了一种简单的管外壳,用于使用强制空气提供主动冷却。影响效率和带宽的两个主要参数是冷却空气压力和管径。本研究提供了双向重复措施测试,以比较这些参数对TCA系统的冷却和加热速率,以及具有三个压力水平(10,15和20psi)和三管直径的热电容(4, 4.5和5 mm)。结果表明,压力的增加显着提高了冷却速率,而管径的降低对系统的效率和冷却速率具有负面影响。冷却时间的平均值(τ cool )分别为2.972,2.210和2.682秒,分别为4,4,5毫米直径。这些结果表明,直径的减小将冷却速率提高到管壁变得如此接近TCA股线的点,使得它们在冷却时防止快速热传递。

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