Prospect of Direct Dimethyl Ether Production from CO2: Reactor Design Development

被引:0
|
作者
Nizam, Nurul Aina Syahirah Khairul [1 ]
Razak, Nurina Adriana Abdul [1 ]
Othman, Nur Hidayati [1 ]
Shayuti, Muhammad Shafiq Mat [1 ]
Marpani, Fauziah [1 ]
Alias, Nur Hashimah [1 ]
Shahruddin, Munawar Zaman [1 ]
Kian, Soh Wei [2 ]
Kadirkhan, Farahdila [2 ]
机构
[1] Univ Teknol MARA, Coll Engn, Sch Chem Engn, Dept Oil & Gas Engn, Shah Alam 40450, Selangor, Malaysia
[2] PETRONAS Res Sdn Bhd, R&D Dept, Project Delivery & Technol PD&T,Kawasan Inst Bangi, Carbon Capture Utilizat & Storage CCUS,Grp Res & T, Block E,Lot 3288 & 3289,Off Jalan Ayer Itam, Kajang 43000, Malaysia
关键词
Dimethyl ether; syngas; reactor design; fixed bed reactor; fluidized bed reactor; membrane reactor; process intensification; DME SYNTHESIS PROCESS; SYNGAS; METHANOL; CATALYST; HYDROGENATION; DEHYDRATION; CONVERSION;
D O I
10.11113/mjfas.v19n2.2841
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The increasing emissions of carbon dioxide (CO2) , volatile hydrocarbons via burning of fossil fuels result in a significant amount of global warming and air pollution. With the concern over the impact of fossil fuel to the environment, the interest in alternative fuel production from the CO2 generated through utilization of new technologies has risen rapidly. Several clean alternative fuels, including dimethyl ether (DME) have been investigated for a more sustainable and greener environment. DME has a high cetane number but produces much lower NOx emission upon combustion. DME is typically synthesized using syngas based on conventional indirect DME route, where the process begins with conversion of syngas into methanol and subsequently dehydrated to DME in separate units. Recently, a direct single-step route to produce DME through dehydrogenation of CO2 and dehydration of methanol by utilising a novel bifunctional catalyst has been investigated. In direct DME, the dehydrogenation and dehydration occur simultaneously in a single reactor, which eliminate the need for a methanol production plant. However, the use of conventional fixed-bed reactor (FBR) for the direct DME synthesis causes many challenges including catalyst deactivation, where water appears in the reaction area, limiting the conversion of CO2 reactants into DME and consequently, the DME yield. It is also essential to manage the exothermic heat generated from the catalyst for better DME yield. In order to overcome these hurdles, several types of reactors have been proposed such as fluidized bed reactor, slurry reactor, microreactor and catalytic membrane reactor. In this paper, different types of reactors are first discussed and its applications related to the direct DME production from CO2 are highlighted. Finally, the challenges and difficulties of reactor development are addressed and future direction is outlined.
引用
收藏
页码:280 / 298
页数:19
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