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From biomass to styrene: Modelling and simulating a sustainable production pathway

可再生能源 生物量(生态学) 环境科学 废物管理 木质纤维素生物量 化石燃料 工艺工程 生产(经济) 高效能源利用 蒸馏 可再生资源 火力发电站 乙苯 生物燃料 热能 可再生燃料 热效率 温室气体 过程(计算) 节能 生物能源
作者
Letitia Petrescu,Dorina-Daniela Talos,Ştefan Cristian Galusnyak
出处
期刊:Biomass & Bioenergy [Elsevier BV]
卷期号:204: 108407-108407
标识
DOI:10.1016/j.biombioe.2025.108407
摘要

As one of the largest consumers of fossil-based energy, the chemical sector highlights the urgent need to explore renewable energy alternatives given the ongoing depletion of fossil fuel reserves and the unprecedented release of greenhouse gas emissions. A cleaner and more sustainable pathway for the production of styrene, a key intermediate in the plastics industry, was investigated through process modelling and simulation. The proposed sustainable route consists of four steps: i) conversion of biomass to bio-ethanol, ii) conversion of bio-ethanol to bio-ethylene, iii) transformation of bio-ethylene into bio-ethylbenzene, and iv) conversion of bio-ethylbenzene to bio-styrene. The technical investigation demonstrates that 2.4 tons of lignocellulosic biomass are required to produce one ton of bio-based styrene with a purity of 99.96 %, thus meeting the polymer-grade purity requirement. The biomass-to-bio-ethanol conversion step is the largest thermal energy consumer, accounting for 9.40 MWh/t bio-styrene of the total of 11.03 MWh/t bio-styrene . To improve the overall efficiency and performance of the whole system, an azeotropic distillation using n-pentane as an entrainer was examined. The use of azeotropic distillation yielded superior results since 5.8 times less thermal power is required (i.e., from 9.40 MWh/t bio-styrene to 1.61 MWh/t bio-styrene ). The ethylbenzene dehydrogenation process ranks second in terms of thermal power consumption, yet by recovering and utilizing the steam generated during this step, energy savings of 0.5 MWh/t bio-styrene were achieved. The proposed method for bio-styrene production enhances thermal energy efficiency while reducing external energy demand, leveraging lignocellulosic biomass as a feedstock. • Exploring renewable alternatives for styrene production to reduce fossil fuel reliance. • Novel biomass-based approach for producing bio-styrene with 99.96 % purity. • Specific consumption of 2.4 tons of biomass per one ton of polymer-grade bio-styrene. • Azeotropic distillation cuts thermal energy use in bio-ethanol production by 5.8 times. • Energy savings of 0.5 MW h / t bio-styrene through steam recovery during dehydrogenation.
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