Potentials and effects of electricity cogeneration via ORC integration in small-scale biomass district heating system

Truong Nguyen , Leteng Lin
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Abstract

This study explores the potential and impact of electricity cogeneration using Organic Rankine Cycle (ORC) integrated with small-scale biomass boilers within district heating systems. An analysis is conducted on a 3 MWth biomass-fired district heating plant in southern Sweden. Process monitoring data, collected over a one-year period from the plant, serves as the basis for simulation and analysis. The study examines operational changes and fuel usage at a local level, together with an extension to a regional scale considering both short-term and long-term energy system implications. The results show that integrating a 200 kWe ORC unit with the existing boiler having a flue gas condenser is cost-optimal and could cogenerate approximately 1.1 GWh electricity annually, with a levelized electricity cost of €64.4 per MWh. This is equivalent to a system power-to-heat ratio of 7.5%. From a broader energy system perspective, this efficient integration could potentially reduce CO2 emissions by 234∼454 tons per year when the saved energy locally is used to replace fossil fuels in the energy system, depending on how biomass is utilized and what type of fossil fuels are replaced. Increasing installed capacity of ORC unit to maximize electricity co-generation could result in a carbon abatement cost ranging from €204 to €79 per ton CO2. This cost fluctuates depending on the installed capacity, operation of the ORC units, and prevailing electricity prices. The study highlights the trade-off between financial gains and CO2 emission reductions, underscoring the complex decision-making involved in energy system optimization.

Abstract Image

小型生物质区域供热系统中ORC集成热电联产的潜力和效果
本研究探讨了在区域供热系统中使用有机朗肯循环(ORC)与小型生物质锅炉相结合的热电联产的潜力和影响。对瑞典南部一个3兆瓦的生物质燃烧区域供热厂进行了分析。从工厂收集了一年的过程监控数据,作为模拟和分析的基础。该研究审查了地方一级的业务变化和燃料使用情况,并考虑到短期和长期能源系统的影响,将其扩展到区域范围。结果表明,将200千瓦时的ORC机组与现有的带有烟气冷凝器的锅炉集成是成本最优的,每年可产生约1.1吉瓦时的电力,平均每兆瓦时的电力成本为64.4欧元。这相当于系统的功率热比为7.5%。从更广泛的能源系统的角度来看,如果将当地节省的能源用于替代能源系统中的化石燃料,这种有效的整合可能每年减少234 ~ 454吨二氧化碳排放,具体取决于如何利用生物质和替代哪种类型的化石燃料。增加ORC装置的装机容量以最大限度地实现热电联产,可能导致每吨二氧化碳的碳减排成本从204欧元到79欧元不等。这一成本根据装机容量、ORC机组的运行情况和现行电价而波动。该研究强调了经济收益与二氧化碳减排之间的权衡,强调了能源系统优化所涉及的复杂决策。
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