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Experimental and numerical analysis of a reciprocating piston expander with variable valve timing for small-scale organic Rankine cycle power systems

机译:小型有机朗肯循环动力系统中可变气门正时的往复式活塞膨胀机的实验和数值分析

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摘要

This paper presents a reciprocating expander concept for organic Rankine cycle applications using a novel rotating variable timing admission valve system, enabling the adjustment of the expansion ratio in real time while the expander is running. An organic Rankine cycle experimental test rig with n-pentane as the working fluid and a single-cylinder reciprocating piston expander was developed. Experiments were conducted for evaporation temperatures ranging from 125 degrees C to 150 degrees C and condensation temperatures ranging from 20 degrees C to 40 degrees C. The performance of the reciprocating piston expander was investigated in terms of the torque of the expander, pressure inside the cylinder, isentropic efficiency of the expander, and net power produced by the expander. Based on the experimental data, a dynamic model of the system was formulated in the object-oriented language, Modelica. The model was validated using the experimental results and then used to predict the performance of the expander. Special attention was paid to the robust modelling of the valve actuation to avoid computational inefficiencies caused by singularities of state variables or their derivatives. The results indicate that the expander produces up to 2.5 kW of electricity from a low-temperature heat source while operating at pressure ratios ranging from 10 to 16.5 with an isentropic efficiency of approximately 70%. The relative differences between the model and the measurements of the isentropic efficiency and power output of the expander per revolution were +/- 10% and +/- 30%, respectively.
机译:本文介绍了使用新型旋转可变正时进气阀系统的有机朗肯循环应用的往复式膨胀机概念,该系统可在膨胀机运行时实时调节膨胀比。开发了以正戊烷为工作液和单缸往复活塞式膨胀机的有机朗肯循环实验试验台。对蒸发温度为125摄氏度至150摄氏度,冷凝温度为20摄氏度至40摄氏度进行了实验。研究了往复式活塞式膨胀机的性能,包括膨胀机的扭矩,气缸内的压力。 ,膨胀机的等熵效率以及膨胀机产生的净功率。根据实验数据,以面向对象的语言Modelica制定了系统的动态模型。使用实验结果验证了该模型,然后将其用于预测扩展器的性能。特别注意阀门致动的鲁棒建模,以避免因状态变量或其导数的奇异性而引起的计算效率低下。结果表明,膨胀机从低温热源产生高达2.5 kW的电能,同时在10至16.5的压力比下运行,等熵效率约为70%。模型与膨胀机每转的等熵效率和功率输出的测量值之间的相对差分别为+/- 10%和+/- 30%。

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