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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Thermal design optimization analysis of an intermediate fluid vaporizer for liquefied natural gas
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Thermal design optimization analysis of an intermediate fluid vaporizer for liquefied natural gas

机译:液化天然气中间液体蒸发器的热设计优化分析

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Highlights?Thermal design model for IFVs was established based on the DPM.?The optimal intermediate fluid was screened by considering saturation parameters.?Effects of operating parameters on heat transfer performance were analyzed.?The heat load ratio was recommended to guide the IFV design.AbstractAn intermediate fluid vaporizer (IFV) is the core heat transfer equipment in a liquefied natural gas (LNG) regasification system, particularly in an offshore floating LNG receiving terminal where more efforts are focused on improving the efficiency and structure size of the vaporizer for reducing the volume and weight. By considering the constraints of both the initial velocities of the working fluids and length of the heat transfer tubes, a new numerical model based on the distributed parameter method is developed to determine the heat transfer performance and required heat transfer area (HTA) of an IFV. The effects of the intermediate fluids and their saturation parameters, inlet temperature of the seawater, and temperature drop of the seawater in the thermolator are investigated. The results show that propylene exhibits the best heat transfer performance, but its higher saturation pressure would require an increase in the wall thickness of the IFVs and therefore, limit its application. The heat transfer performances of propane and dimethylether are better than the other intermediate fluids, and are promising to be used in IFVs. With increase in the saturation temperature of propane, the required total HTA of IFVs first decreases and then increases, and the optimal saturation temperature is in the range of 250–265?K. A higher seawater temperature is beneficial for reducing the HTA, and it is also indicative of a wider optimization saturation temperature range in which the required total HTA is not sensitive to the saturation temperatures. When the temperature drop of the seawater in the thermolator varies from 0.3?K to 0.8?K, the variation in the required area is not more than 5% compared to the lowest area, and the recommended range for the corresponding heat load ratio between the evaporator and condenser is recommended is 5–15.]]>
机译:<![cdata [ 亮点 基于DPM建立IFVS的热门设计模型。 筛选最佳中间流体考虑饱和度参数。 分析了操作参数对传热性能的影响。 建议热负荷比以引导IFV设计。< / ce:para> 抽象 中间流体蒸发器(IFV)是液化天然气(LNG)再扫描系统中的核心传热设备,特别是在近海浮动LNG接收终端,更多努力集中在一起提高蒸发器的效率和结构尺寸减小体积和重量。通过考虑工作流体的初始速度和传热管的长度的约束,开发了一种基于分布式参数方法的新数值模型,以确定IFV的传热性能和所需的传热区域(HTA) 。研究了中间流体及其饱和参数,海水的入口温度,热电阻器中海水的温度下降。结果表明,丙烯表现出最佳的传热性能,但其饱和压力较高将需要IFV的壁厚增加,因此限制其应用。丙烷和二甲醚的传热性能优于其他中间体流体,并且希望在IFV中使用。随着丙烷饱和温度的增加,IFVS的所需总HTA首先降低,然后增加,并且最佳饱和温度在250-265Ω·k的范围内。较高的海水温度有利于减少HTA,并且还指示更广泛的优化饱和温度范围,其中所需的总HTA对饱和温度不敏感。当热电阻器中海水的温度下降变化到0.3Ω·k至0.8?k时,与最低面积相比,所需区域的变化不大于5%,并且相应的热负荷比的推荐范围建议蒸发器和冷凝器是5-15。 ]]>

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