Evaluation the effect of the ambient temperature on the liquid petroleum gas transportation pipeline

IF 1 Q4 ENGINEERING, CHEMICAL Chemical Product and Process Modeling Pub Date : 2021-06-04 DOI:10.1515/cppm-2021-0024
A. Abd, S. Naji, C. Tye, M. Othman
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Abstract

Abstract Liquefied petroleum gas (LPG) plays a major role in worldwide energy consumption as a clean source of energy with low greenhouse gases emission. LPG transportation is exhibited through networks of pipelines, maritime, and tracks. LPG transmission using pipeline is environmentally friendly owing to the low greenhouse gases emission and low energy requirements. This work is a comprehensive evaluation of transportation petroleum gas in liquid state and compressible liquid state concerning LPG density, temperature and pressure, flow velocity, and pump energy consumption under the impact of different ambient temperatures. Inevitably, the pipeline surface exchanges heat between LPG and surrounding soil owing to the temperature difference and change in elevation. To prevent phase change, it is important to pay attention for several parameters such as ambient temperature, thermal conductivity of pipeline materials, soil type, and change in elevation for safe, reliable, and economic transportation. Transporting LPG at high pressure requests smaller pipeline size and consumes less energy for pumps due to its higher density. Also, LPG transportation under moderate or low pressure is more likely exposed to phase change, thus more thermal insulation and pressure boosting stations required to maintain the phase envelope. The models developed in this work aim to advance the existing knowledge and serve as a guide for efficient design by underling the importance of the mentioned parameters.
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评价环境温度对液化石油气输送管道的影响
液化石油气(LPG)作为一种低温室气体排放的清洁能源,在全球能源消费中发挥着重要作用。液化石油气运输通过管道、海运、轨道网络进行展示。使用管道输送液化石油气,温室气体排放量低,能源需求低,对环境友好。本文对不同环境温度影响下液化石油气密度、温度压力、流速、泵能耗等液态和可压缩液态输送石油气进行了综合评价。由于温度的差异和海拔的变化,管道表面不可避免地要与周围的土壤进行热量交换。为了防止相变,需要注意环境温度、管道材料导热系数、土壤类型、高程变化等参数,确保运输安全、可靠、经济。在高压条件下输送液化石油气,由于其密度较高,需要更小的管道尺寸和更少的泵能耗。此外,在中压或低压下的LPG运输更容易发生相变,因此需要更多的隔热和增压站来维持相包线。在这项工作中开发的模型旨在通过强调上述参数的重要性来推进现有知识并作为有效设计的指南。
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来源期刊
Chemical Product and Process Modeling
Chemical Product and Process Modeling ENGINEERING, CHEMICAL-
CiteScore
2.10
自引率
11.10%
发文量
27
期刊介绍: Chemical Product and Process Modeling (CPPM) is a quarterly journal that publishes theoretical and applied research on product and process design modeling, simulation and optimization. Thanks to its international editorial board, the journal assembles the best papers from around the world on to cover the gap between product and process. The journal brings together chemical and process engineering researchers, practitioners, and software developers in a new forum for the international modeling and simulation community. Topics: equation oriented and modular simulation optimization technology for process and materials design, new modeling techniques shortcut modeling and design approaches performance of commercial and in-house simulation and optimization tools challenges faced in industrial product and process simulation and optimization computational fluid dynamics environmental process, food and pharmaceutical modeling topics drawn from the substantial areas of overlap between modeling and mathematics applied to chemical products and processes.
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