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A comprehensive review of microwave application on the oil shale: Prospects for shale oil production

机译:对油页岩微波应用的全面综述:页岩油生产前景

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摘要

This study reviews the mechanism of microwave irradiation and the affecting parameters, including heating rate, particle size, catalysts, and supercritical fluids on the microwave induced pyrolysis of oil shales. The factors influencing shale oil upgrading using microwave and conventional heating were analyzed. Although shale ash induces secondary cracking in conventional heating, followed by cracking of heavy compounds and increased light oil and pyrolysis gas, the corresponding mechanism in microwave heating has not yet been studied. The shale ash composition and particle size play a vital role in conventional heating efficiency. Increasing oil shale particles size in conventional heating after reaching the maximum converted shale oil reduces produced oil due to increased heat transfer and volatile diffusion in oil shale grains and induction of secondary cracking, which leads to the intensification of shale oil upgrading. Catalysts with high microwave absorption capacity, such as iron powder, remove higher percentages of sulfur, nitrogen, and oxygen from shale oil in microwave pyrolysis as compared to conventional heating. The presence of zeolite in microwave pyrolysis causes better and more effective shale oil upgrading by reducing C-10-C-16, C-16, naphtha fraction, and increasing kerosene fraction compared to conventional pyrolysis. The presence of water increases polycyclic aromatics, increases the concentration of alkene fraction and decreases asphaltene and coke formed by solvation or caging of shale oil molecules. The presence of nitrogen and hydrogen in conventional pyrolysis reduces desulfurization and upgraded shale oil yield, respectively. A sharp increase in the heating rate in conventional and microwave pyrolysis reduces shale oil yield. In conventional heating, increasing heating rate decreases the hydrogen (H)/carbon (C) ratio, and the nitrogen and sulfur fractions increase due to the nature of chemical bonding with hydrocarbons and its entangled with metal oxides. In microwave pyrolysis at high heating rates, the H/C ratio increases and the amounts of nitrogen and sulfur in shale oil decrease sharply. The high microwave radiation power facilitates the removal of nitrogen and sulfur that is much higher than conventional pyrolysis. The conversion of pyrite to pyrrhotite in oil shales that have a high microwave absorption capacity increases microwave pyrolysis efficiency. The calcite and feldspar also improve this process because they participate in the pyrolysis process, and their amounts are reduced in the spent shale.Thus, the oil produced from oil shales under the microwave pyrolysis process has lighter and higher quality compounds. However, the broad applications of this technology in the use of oil shales are still unclear and more studies should be done to clarify the advantages and disadvantages of using microwave heating in oil shales. Further study and research are required to develop microwave technology in oil shale, and based on its potentials, it can be introduced as a new and efficient method in oil shale production.
机译:本研究审查了微波辐射的机制和影响参数,包括在微波诱导的油源诱导的热解式上的加热速率,粒度,催化剂和超临界流体。分析了利用微波和常规加热影响页岩油升级的因素。虽然页岩灰在常规加热中引起二次开裂,但是在重质化合物和升高的轻油和热解气体中破裂,尚未研究微波加热中的相应机理。页岩灰分组成和粒度在常规的加热效率中起着至关重要的作用。在达到最大转化的页岩油后,常规加热中的油页岩颗粒尺寸增加,由于增加的热传递和油页座谷物中的传热和挥发扩散以及二次裂缝的诱导,减少了生产的油,这导致页岩油升级的强化。与常规加热相比,具有高微波吸收能力的催化剂,例如铁粉,例如铁粉,除去微波热解中的页岩油中的硫,氮气和氧气较高。与常规热解相比,微波热解中沸石在微波热解中导致更好,更有效的页岩油升级和增加煤油馏分。水的存在增加了多环芳烃,增加了烯烃级分的浓度,并通过溶剂化或持续的页岩油分子形成沥青质和焦炭。常规热解中氮和氢的存在分别降低了脱硫和升级的页岩油产率。常规和微波热解中加热速率的急剧增加降低了页岩油产率。在常规加热中,增加加热速率降低了氢气(H)/碳(C)的比率,并且氮和硫馏分由于与烃的化学键合的性质及其与金属氧化物缠结而增加。在高加热速率下微波热解中,H / C比增加,氮气和硫的量急剧下降。高微波辐射功率有助于除去远高于常规热解的氮和硫。将黄铁矿转化为具有高微波吸收能力的油脂术中的PyrrHotite增加了微波热解效率。方解石和长石还改善了这一过程,因为它们参与了热解过程,它们的量在花的Shale.Thus中减少,在微波热解过程下由油源生产的油具有更轻且高质量的化合物。然而,这种技术在利用石油时期的广泛应用仍然不清楚,应采取更多的研究来阐明在石油中使用微波加热的优缺点。进一步的研究和研究是在油页面中开发微波技术,并基于其潜力,可以作为油页岩生产中的一种新的有效方法。

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