Energy, exergy, sustainability, environmental emission, and fuel cost analysis of a hot-dip galvanised steel wire process

IF 9.4 1区 工程技术 Q1 ENERGY & FUELS Energy Pub Date : 2025-02-14 DOI:10.1016/j.energy.2025.134897
T. Álvarez-Álvarez , A. Barbón , L. Bayón , C.A. Silva
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Abstract

Hot-dip galvanised steel is a widely used process to protect metals from corrosion. This process is considered an energy-intensive and highly polluting industry. In this context, the present study aims to investigate an energy, exergy, sustainability, environmental emissions and fuel cost analysis of a hot-dip galvanised steel wire process. For this purpose, a real hot-dip galvanised steel wire process belonging to the company Moreda Riviere Trefilerías S.A. (Spain) has been analysed. The parameters necessary to perform the thermodynamic analysis are obtained by means of process models. The methodology used comprises the following steps: a process analysis, an experimental setup, a modelling of the flue gases using the Aspen HYSYS model, a modelling of the galvanising barrel using the computational fluid dynamics model, and a validation of the process. The following conclusions can be drawn from the results: (i) The energy efficiency of the system, burners and galvanising barrel is 62.11%, 42.36% and 34.27%, respectively; (ii) The exergy efficiency of the system, burners and galvanising barrel is 90.84%, 78.90% and 56.60%, respectively; (iii) The sustainability index is 10.92; (iv) The galvanising process emits 72.61 (kg/h) CO2, i.e. 636.06 (t) CO2 per year. Therefore, galvanising 1 (kg) of wire in the actual process emits 0.0348 (kg) of CO2; and (v) The natural gas consumption is 25.67 (kg/h), i.e. 224.87 (t) of natural gas per year. Therefore, galvanising 1 (kg) of wire requires 0.0123 (kg) of natural gas. These results invite to study, in future work, the possibility of including other technologies, such as cogeneration systems, the use of new burner arrangements, hydrogen-enriched natural gas, solar thermal energy and photovoltaic systems.
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热镀锌钢丝工艺的能源、能源、可持续性、环境排放和燃料成本分析
热镀锌是一种广泛应用于保护金属免受腐蚀的工艺。这一过程被认为是一个能源密集型和高污染的行业。在此背景下,本研究旨在调查热浸镀锌钢丝工艺的能源,能源,可持续性,环境排放和燃料成本分析。为此,对Moreda Riviere Trefilerías S.A.(西班牙)公司的实际热镀锌钢丝工艺进行了分析。进行热力学分析所需的参数是通过过程模型得到的。所使用的方法包括以下步骤:过程分析、实验设置、使用Aspen HYSYS模型对烟气进行建模、使用计算流体动力学模型对镀锌桶进行建模,以及对该过程进行验证。结果表明:(1)系统、燃烧器和镀锌桶的能效分别为62.11%、42.36%和34.27%;(ii)系统、燃烧器、镀锌桶的火用效率分别为90.84%、78.90%、56.60%;可持续性指数为10.92;(iv)镀锌过程排放72.61 (kg/h)二氧化碳,即每年636.06 (t)二氧化碳。因此,在实际过程中镀锌1 (kg)电线排放0.0348 (kg)二氧化碳;天然气消费量为25.67 (kg/h),即每年224.87 (t)天然气。因此,镀锌1 (kg)钢丝需要0.0123 (kg)天然气。这些结果要求在今后的工作中研究是否可能包括其他技术,例如热电联产系统、使用新的燃烧器安排、富氢天然气、太阳能热能和光电系统。
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来源期刊
Energy
Energy 工程技术-能源与燃料
CiteScore
15.30
自引率
14.40%
发文量
0
审稿时长
14.2 weeks
期刊介绍: Energy is a multidisciplinary, international journal that publishes research and analysis in the field of energy engineering. Our aim is to become a leading peer-reviewed platform and a trusted source of information for energy-related topics. The journal covers a range of areas including mechanical engineering, thermal sciences, and energy analysis. We are particularly interested in research on energy modelling, prediction, integrated energy systems, planning, and management. Additionally, we welcome papers on energy conservation, efficiency, biomass and bioenergy, renewable energy, electricity supply and demand, energy storage, buildings, and economic and policy issues. These topics should align with our broader multidisciplinary focus.
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