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基于文献计量分析的水热液化生物油生产的研究进展及热点。

Research progress and hot spots of hydrothermal liquefaction for bio-oil production based on bibliometric analysis.

机构信息

Beijing Key Laboratory of Resource-oriented Treatment of Industrial Pollutants, University of Science and Technology Beijing, Beijing, 100083, China.

Department of Environmental Engineering, Hebei University of Science and Technology, Shijiazhuang, 050018, China.

出版信息

Environ Sci Pollut Res Int. 2021 Feb;28(7):7621-7635. doi: 10.1007/s11356-020-11942-2. Epub 2021 Jan 4.

Abstract

Hydrothermal liquefaction (HTL) of biomass used HTL reaction under high temperature and pressure to produce bio-oil. This technology is considered as one of the most promising converting technology of biomass to biofuels. This paper summarized current research developments of HTL for bio-oil and analyzed its reaction mechanism and influencing factors based on bibliometric analysis. The results showed that reaction conditions and catalyst have been still global researching focuses about HTL. Compared with homogeneous catalysts, the study of HTL by using heterogeneous catalyst developed more quickly. With promotion of resource recovering, food waste, sludge, and other organic waste can also be used as raw materials for HTL for bio-oil now. The structure of this paper was shown in graphic abstract. Firstly, bibliometric analysis was conducted on hydrothermal liquefaction for bio-oil production. According to the emergency frequency of key words, catalyst, microalgae, reaction conditions, and biomass waste as raw material for hydrothermal liquefaction were determined as four parts of the paper. Finally, we speculated the development trend of hydrothermal liquefaction for bio-oil production.

摘要

生物质的水热液化(HTL)在高温高压下进行 HTL 反应,以生产生物油。这项技术被认为是将生物质转化为生物燃料最有前途的技术之一。本文通过文献计量分析,总结了生物油 HTL 的最新研究进展,分析了其反应机理和影响因素。结果表明,反应条件和催化剂仍然是 HTL 的全球研究重点。与均相催化剂相比,使用非均相催化剂进行 HTL 的研究发展得更快。随着资源回收的推进,现在也可以将食物垃圾、污泥和其他有机废物用作 HTL 生产生物油的原料。本文的结构如图摘要所示。首先,对生物油生产的水热液化进行了文献计量分析。根据关键词的紧急频率,确定催化剂、微藻、反应条件和生物质废物作为水热液化的原料为本文的四个部分。最后,我们推测了生物油生产水热液化的发展趋势。

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