混合沼气系统发展的现代方法综述

IF 1.204 Q3 Energy
N. R. Avezova, O. Z. Toirov, A. Y. Usmanov
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引用次数: 0

摘要

沼气技术在可再生能源中发挥着重要作用;然而,传统的沼气厂往往不能充分利用原料的潜力,只注重能源生产。为了提高这种系统的效率,混合沼气系统的发展,它结合了各种技术过程,设备和能源,似乎是一个有前途的方法。本文介绍了基于专利分析的混合沼气系统的现代工程解决方案。对专利文献进行了检索和分析,涵盖了厌氧消化与附加生物质处理方法的整合,沼气净化技术以及与其他可再生能源(太阳能,风能,氢气等)的组合。主要研究结果表明,沼气技术的杂交显著提高了沼气工厂的性能和灵活性。具体来说,两阶段消化可使沼气产量提高15-30%,CO2甲烷化(动力制甲烷)可使CH4含量提高98%,而联合净化方法(膜和吸附)可将甲烷损失减少到1%以下。此外,沼气发电厂与太阳能或风能系统的整合可以降低20-40%的电力生产成本,同时还可以确保更稳定和可预测的发电。获得的数据证实,混合沼气系统能够综合利用有机废物,同时产生能量和有价值的副产品(生物肥料,工业所需的二氧化碳等)。专利分析,包括来自不同国家的发展,突出了全球对混合沼气技术的强烈兴趣。许多专利已经从原型阶段过渡到实际实施阶段,这证实了混合沼气系统在未来能源领域的巨大潜力。所确定的方法和解决方案可以实际应用于现有沼气设施的现代化和开发新的、更高效的生物能源综合体,为进一步的工业发展和通过合理的废物管理实现清洁能源铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Review of Modern Approaches in the Development of Hybrid Biogas Systems

Review of Modern Approaches in the Development of Hybrid Biogas Systems

Biogas technologies play a main role in renewable energy; however, traditional biogas plants often fail to fully exploit the potential of raw materials, focusing solely on energy production. To enhance the efficiency of such systems, the development of hybrid biogas systems, which combine various technological processes, equipment, and energy sources, appears to be a promising approach. This study presents a review of modern engineering solutions in hybrid biogas systems based on patent analysis. A search and analysis of patent literature was conducted, covering the integration of anaerobic digestion with additional biomass treatment methods, biogas purification techniques, and combinations with other renewable energy sources (solar, wind, hydrogen, etc.). The key findings indicate that hybridization of biogas technologies significantly improves the performance and flexibility of biogas plants. Specifically, two-stage digestion increases biogas yield by 15–30%, CO2 methanation (power-to-methane) raises CH4 content up to 98%, and combined purification methods (membrane and adsorption) reduce methane losses to less than 1%. Furthermore, the integration of biogas plants with solar or wind energy systems reduces electricity production costs by 20–40%, while also ensuring more stable and predictable generation. The obtained data confirm that hybrid biogas systems enable the comprehensive utilization of organic waste while simultaneously generating energy and valuable by-products (biofertilizers, CO2 for industrial needs, etc.). The patent analysis, encompassing developments from various countries, highlights a strong global interest in hybrid biogas technologies. Many of the patents are already transitioning from prototype stages to practical implementation, confirming the high potential of hybrid biogas systems for the future of energy. The identified approaches and solutions can be practically applied to modernize existing biogas facilities and develop new, more efficient bioenergy complexes, paving the way for further industry advancement and the realization of clean energy through rational waste management.

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来源期刊
Applied Solar Energy
Applied Solar Energy Energy-Renewable Energy, Sustainability and the Environment
CiteScore
2.50
自引率
0.00%
发文量
0
期刊介绍: Applied Solar Energy  is an international peer reviewed journal covers various topics of research and development studies on solar energy conversion and use: photovoltaics, thermophotovoltaics, water heaters, passive solar heating systems, drying of agricultural production, water desalination, solar radiation condensers, operation of Big Solar Oven, combined use of solar energy and traditional energy sources, new semiconductors for solar cells and thermophotovoltaic system photocells, engines for autonomous solar stations.
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