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首页> 外文期刊>Polish maritime research >Design and Experiment of Low-Pressure Gas Supply System for Dual Fuel Engine
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Design and Experiment of Low-Pressure Gas Supply System for Dual Fuel Engine

机译:双燃料发动机低压气体供应系统的设计与实验

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摘要

A low-pressure gas supply system for dual fuel engines was designed to transport liquid natural gas from a storage tank to a dual fuel engine and gasify it during transportation. The heat exchange area and pressure drop in the spiral- wound heat exchanger, the volume of the buffer tank and the pressure drop in the pipeline of the gas supply system were calculated by programming using Python. Experiments were carried out during the process of starting and running the dual fuel engine using this gas supply system. Experimental data show that the gas supply system can supply gas stably during the process and ensure the stable operation of the dual fuel engine. The effects of the parameters of natural gas and ethylene glycol solution on the heat exchange area of the spiral-wound heat exchanger and the volume of the buffer tank in the gas supply system were studied. The results show that the heat exchange area calculated according to pure methane can adapt to the case of non-pure methane. The temperature difference between natural gas and ethylene glycol solution should be increased in order to reduce the heat exchange area. The heat exchange area selected according to the high pressure of natural gas can adapt to the low pressure of natural gas. The volume of the buffer tank should be selected according to the situation of the minimum methane content to adapt to the situation of high methane content. The main influencing factor in selecting the volume of the buffer tank is the natural gas flow. The results can provide guidance for the design of the gas supply system for dual fuel engines.
机译:用于双燃料发动机的低压气体供应系统被设计成将液体天然气从储罐运送到双燃料发动机并在运输过程中气化。通过使用Python编程计算螺旋缠绕热交换器中的热交换区域和压力下降,缓冲罐的体积和气体供应系统管道中的压降。使用该气体供应系统开始和运行双燃料发动机的过程中进行实验。实验数据表明,气体供应系统可以在工艺期间稳定供应气体,并确保双燃料发动机的稳定运行。研究了天然气和乙二醇溶液对螺旋缠绕热交换器的热交换区域的影响及气体供应系统中缓冲罐的体积。结果表明,根据纯甲烷计算的热交换区域可以适应非纯甲烷的情况。应增加天然气和乙二醇溶液之间的温差,以减少热交换区域。根据天然气的高压选择的热交换区域可以适应天然气的低压。应根据最低甲烷含量的情况选择缓冲罐的体积,以适应高甲烷含量的情况。选择缓冲罐的体积的主要影响因素是天然气流量。结果可以为双燃料发动机的供气系统设计提供指导。

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