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首页> 外文期刊>Journal of Energy Technologies and Policy >The Economic Thickness of Insulation for Steam Process Distribution Pipelines
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The Economic Thickness of Insulation for Steam Process Distribution Pipelines

机译:蒸汽工艺分配管道的隔热层经济厚度

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摘要

Steam pipes are very important in engineering application and are widely used. Thermal insulation is one of the most effective energy-conservation measures in hot pipes. One of the primary purposes of insulation is to conserve energy and increase plant profitability by reducing operating expenses. In existing plants, the planned and conscientious maintenance of insulated hot pipes is required to minimize financial and thermal losses. This seems like a statement of the obvious, and it is. Although an increase in the amount of insulation applied will raise the initial installed cost, but it will reduce the rate of heat loss through the insulation. This paper aims to confirm whether there is an optimal insulation thickness appropriate to the minimum total cost, and to see what the values and facts affecting the value of the minimum cost are. An optimization model is performed depending on Life Cycle Cost analysis. For this purpose, a computer program has been prepared based on the flow chart of the operation procedure overviewed in this paper. The results of Calculations carried out by the computer have given a new concept that is termed as “the critical thermal conductivity of insulation material”, the exceeding of which makes the insulation of pipe a factor that contributes to increase of total cost (ΣC) but not the opposite. The study carried out on steam pipe with outside diameter of 0.1m, steam temperature of 120 °C, steam price of 0.005 $/kg and insulation material price of 175 $/m 3 shows that the critical thermal conductivity of insulation material is 0.21 w/(m. °C), the exceeding of which will not cause decrease in the expected total cost of steam pipe insulation and the optimal insulation thickness can not be achieved. When the thermal conductivity of the insulation material used is less than that of the critical thermal conductivity by 0.10 w/(m.°C), the total cost drops from 9.69 $/(m.year) without insulation to minimum total cost of 5.184 $/(m.year) with the thermal insulation thickness of 0.092m. The outside temperature of insulation material drops from 117 to 34.4 °C. The effect of the price of steam generation, the price of insulation material, pipe diameter and temperature of steam on the optimal insulation thickness and critical thermal conductivity of insulation material are overviewed in this paper.
机译:蒸汽管在工程应用中非常重要,并被广泛使用。保温是热管中最有效的节能措施之一。隔热的主要目的之一是节省能源并通过减少运营费用来提高工厂的盈利能力。在现有工厂中,需要对绝热管进行有计划的认真维护,以最大程度地减少财务和热损失。这似乎是显而易见的陈述。尽管增加绝热材料的用量会增加初始安装成本,但会降低通过绝热材料的热量散失率。本文旨在确认是否存在适合最低总成本的最佳绝缘厚度,并了解影响最低成本价值的价值和事实。根据生命周期成本分析执行优化模型。为此,根据本文概述的操作步骤流程图准备了一个计算机程序。由计算机执行的计算结果给出了一个新概念,称为“绝热材料的临界导热系数”,超过该值会使管道绝热成为导致总成本(ΣC)增加的因素,但并非相反。对外径为0.1m,蒸汽温度为120°C,蒸汽价格为0.005 $ / kg,保温材料价格为175 $ / m 3的蒸汽管进行的研究表明,保温材料的临界导热系数为0.21 w /(m。°C),超过该值将不会导致蒸汽管道保温的预期总成本降低,并且无法实现最佳保温厚度。当所使用的绝缘材料的导热系数比临界导热系数小0.10 w /(m。°C)时,总成本将从无绝缘的9.69 $ /(m.year)降至最低总成本5.184 $ /(m.year),隔热厚度为0.092m。绝缘材料的外部温度从117降至34.4°C。本文概述了蒸汽价格,保温材料价格,蒸汽管径和温度对保温材料的最佳保温厚度和临界导热率的影响。

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