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ORGANIC RANKINE CYCLE FOR WASTE HEAT RECOVERY IN A HYBRID VEHICLE

机译:有机RANKINE循环在混合动力汽车中进行废热回收

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The Rankine cycle is used commercially to generate power in stationary power plants using water as the working fluid. For waste heat recovery applications, where the temperature is lower, water is typically replaced by a carefully selected organic fluid. This work is based on using the waste heat in an automobile to generate electricity using the Organic Rankine cycle (ORC) with R245fa (1, 1, 1, 3, 3 penta-fluoropropane) as the working fluid. The electricity thus generated can be used to drive the accessory load or charge the battery which in any case helps improve the fuel economy. A simple transient numerical model has been developed that is capable of capturing the main effects of this cycle. Results show that exhaust heat alone can generate enough electricity that is capable of bringing about an improvement to the fuel economy under transient drive cycle conditions. Power output during EPA Highway drive cycle is much higher than EPA City due to higher exhaust mass flow rate and temperature. Time needed to reach operating conditions or in other words, the warm-up time plays an important role in the overall drive cycle output. Performance is found to improve significantly when coolant waste heat is used in conjunction with the residual exhaust heat to pre-heat the liquid. A sizing study is also performed to keep the cost, weight, and packaging requirement down without sacrificing too much power. With careful selection of heat exchanger design parameters, it has been demonstrated that the backpressure on the engine can be actually lowered by cooling off the exhaust gas. This lower backpressure will further boost the fuel economy gained by the electricity produced by the Rankine bottoming cycle.
机译:朗肯循环在商业上用于使用水作为工作流体在固定式发电厂中发电。对于温度较低的废热回收应用,通常用精心选择的有机液体代替水。这项工作是基于利用R245fa(1、1、1、3、3五氟丙烷)作为工作流体的有机朗肯循环(ORC),利用汽车中的废热发电的。这样产生的电能可用于驱动附件负载或为电池充电,这在任何情况下都有助于提高燃油经济性。已经开发出了一个简单的瞬态数值模型,能够捕获该循环的主要影响。结果表明,仅废气就可以产生足够的电能,从而能够在瞬态驾驶循环条件下改善燃油经济性。由于更高的排气质量流量和温度,EPA高速公路驾驶周期内的功率输出远高于EPA City。达到运行条件所需的时间,换句话说,预热时间在整个行驶周期输出中起着重要的作用。当将冷却液废热与残留的废热结合使用以预热液体时,性能会显着提高。还进行了尺寸研究,以降低成本,重量和包装要求,而又不牺牲太多功率。通过精心选择热交换器的设计参数,可以证明通过冷却废气可以降低发动机的背压。较低的背压将进一步提高兰金循环底部循环所产生的电能,从而提高燃油经济性。

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