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Numerical simulation and experimental investigation on suction heating of a BOG compressor

机译:BOG压缩机吸气加热的数值模拟与实验研究。

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One of the key components of a liquefied natural gas (LNG) receiving terminal is the boil-off gas (BOG) compressor, which is used to pump out the BOG from the LNG storage tank to ensure safety in the transportation and receiving systems. Owing to the ultra-low suction temperature, the heat exchange between the intake gas and the cylinder, piston, and cylinder cover cannot be ignored as in normal conditions. This paper presents an investigation focusing on suction heating of the BOG compressor. A finite element model with dynamic mesh was established to simulate the suction process. At the same time, a performance test rig was built to study the characteristics of the BOG compressor under low suction temperature conditions and verify the numerical model. Consequently, the results of the simulation were in good agreement with experimental results. Both results implied that the temperature of cylinder surface increased starting from the cylinder cover to the crankcase. In addition, at lower suction temperature, the temperature difference between various points on the cylinder surface and cylinder cover was much larger than that at higher suction temperature. With increasing suction temperature, the temperature coefficient increased markedly, and the difference between gas temperatures at the beginning and end of the suction process, as well as the compressor flow rate, decreased significantly; however, the volumetric efficiency increased first and then decreased. Furthermore, the temperature coefficient clearly increased when the compressor rotational speed increased from 250 rpm to 3000 rpm, and it decreased from 0.81 to 0.66 as the pressure ratio increased from 3.0 to 6.0. (C) 2016 Elsevier Ltd. All rights reserved.
机译:液化天然气(LNG)接收终端的关键组件之一是蒸发气体(BOG)压缩机,该压缩机用于从LNG储罐中抽出BOG,以确保运输和接收系统的安全。由于吸入温度极低,因此进气与气缸,活塞和气缸盖之间的热交换不能像通常情况下那样被忽略。本文针对BOG压缩机的吸热进行了研究。建立了带有动态网格的有限元模型来模拟吸力过程。同时,建造了性能试验台,以研究低吸气条件下BOG压缩机的特性并验证数值模型。因此,仿真结果与实验结果吻合良好。这两个结果都暗示从汽缸盖到曲轴箱的汽缸表面温度升高。另外,在较低的吸入温度下,气缸表面和气缸盖上各点之间的温差要比较高的吸入温度大得多。随着吸入温度的升高,温度系数显着增加,吸入过程开始和结束时的气体温度差以及压缩机流量均显着减小;但是,容积效率先上升然后下降。此外,当压缩机转速从250 rpm增加到3000 rpm时,温度系数明显增加,而随着压力比从3.0增加到6.0,温度系数从0.81降低到0.66。 (C)2016 Elsevier Ltd.保留所有权利。

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