Energy Utilization and Conversion in Modern Biomass Conversion Technologies

Nancy Jan Sliper
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Abstract

This paper provides a review on the current state of biomass conversion technologies that are in use and those that could play a significant role in the future, such as those that might be linked to carbon dioxide (CO2) collection and sequestered technology. Since the transportation industry is poised to become the most important new market for large-scale efficient biomass usage, here is where most of the focus will be placed. Bio-energy contribution, now estimated at 40EJ to 55 EJ per year, is expected to expand significantly in the future. Nevertheless, the precise objective of bio-energy will be dependent on the competitiveness aspect with bio-fuels and on agriculture policy globally. For the rest of this century as least, observations suggest a range of 200–300 EJ, rendering biomass a more significant alternatives of energy supply compared to mineral oil. The need to update bio-energy practices so they are compatible with sustainable development strategies is a major concern. It is expected that within the next two to three decades, the cost of electricity generated using sophisticated conversion concepts (such as gasification and contemporary co-firing and gasification) and contemporary biomass sourced fuels (e.g., hydrogen, methanol, and ethyl alcohol from the lignocellulosic biomass) will be competitive with conventional energy sources (partly based on price development with petroleum). An even more efficient and cost-effective biofuel production system may be developed from sugarcane-centric ethanol within the tropical climates.
现代生物质转换技术中的能量利用和转换
本文综述了目前正在使用的生物质转化技术以及未来可能发挥重要作用的技术,例如可能与二氧化碳(CO2)收集和封存技术相关的技术。由于运输业有望成为大规模高效使用生物质的最重要的新市场,因此这里将是重点关注的领域。生物能源的贡献目前估计为每年 40EJ 至 55EJ,预计未来将大幅增加。然而,生物能源的确切目标将取决于生物燃料的竞争力和全球农业政策。据观察,至少在本世纪余下的时间里,生物质能源的供应量将在 200-300 EJ 之间,与矿物油相比,生物质能源将成为更重要的能源供应替代品。需要更新生物能源的使用方法,使其符合可持续发展战略,这是一个重大问题。预计在未来二三十年内,利用先进的转换概念(如气化和现代共燃和气化)和现代生物质源燃料(如氢气、甲醇和来自木质纤维素生物质的乙醇)发电的成本将与传统能源(部分基于与石油的价格发展)具有竞争力。在热带气候条件下,可以利用以甘蔗为中心的乙醇开发出效率更高、成本效益更高的生物燃料生产系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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