Thermal Management System for In Vitro Evalution of Circulatory Assist Devices at In Vivo Temperatures

J. Richard, Ryan Jeansonne, J. Hebert, G. Stoute, Jacob M. King, Charles E. Taylor
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Abstract

Typical in vitro analysis of medical device performance occurs at room temperature (~70 degrees Fahrenheit). Effective evaluation requires at temperature studies for blood contacting medical devices for the following purposes: wear characteristics, thermal expansion, and temperature effects on sensors in the design. The task was to control the fluid within an ISO5198 hydraulic loop used to evaluate left ventricular assist devices at a given temperature between 95F and 105F. The design was to function within one degree Fahrenheit. This task was accomplished utilizing a microcontroller, the PowerSwitch Tail II, a DS18B20 waterproof temperature sensor, and an immersion heater. To manage heat loss from the piping section of the loop foam piping insulation was installed to all non-testing sections. The group was able to successfully thermally regulate temperature in the loop for a range of flow rates (2-10 LPM). The team utilized a pulsing control architecture to keep overshoot within the system to a minimum. The system takes approximately 6 mins to come to temperature with approximately a one degree overshoot. The longest recorded success of controlling the loop within a plus or minus one degree accuracy is approximately 2 hours. A computational model of the system was made using the thermofluid blocks of the Simulink Simscape foundation library. Approximated heat loss is roughly 70 W for the entire circuit, which equates to one degree Fahrenheit drop for every five minutes without heat input. The result of this design is a cost effective means of producing reflective in vivo thermal conditions.
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在体内温度下循环辅助装置体外评估的热管理系统
医疗器械性能的典型体外分析在室温(~70华氏度)下进行。有效的评估需要对血液接触医疗器械进行温度研究,以达到以下目的:磨损特性、热膨胀和设计中对传感器的温度影响。任务是控制流体在ISO5198液压回路中,用于在95华氏度到105华氏度之间的给定温度下评估左心室辅助装置。设计是在1华氏度内工作。这项任务是利用微控制器、PowerSwitch Tail II、DS18B20防水温度传感器和浸入式加热器完成的。为了控制环路管道部分的热损失,在所有非测试部分安装了泡沫管道保温材料。该小组能够成功地在流量范围(2-10 LPM)内热调节回路中的温度。该团队利用脉冲控制体系结构将系统内的超调降至最低。系统大约需要6分钟才能达到超过1度的温度。在正负一度精度范围内控制回路的最长记录成功时间约为2小时。利用Simulink Simscape基础库中的热流体模块建立了系统的计算模型。整个电路的近似热损失约为70瓦,相当于每五分钟在没有热量输入的情况下下降1华氏度。这种设计的结果是一种具有成本效益的生产体内反射热条件的手段。
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