Contemporary avenues of the Hydrogen industry: Opportunities and challenges in the eco-friendly approach

被引:66
作者
Qureshi, Fazil [1 ]
Yusuf, Mohammad [2 ,3 ]
Ibrahim, Hussameldin [4 ]
Kamyab, Hesam [5 ,6 ,7 ]
Chelliapan, Shreeshivadasan [8 ]
Pham, Cham Q. [9 ]
Vo, Dai-Viet N. [10 ]
机构
[1] Glocal Univ, Dept Petr Engn, Saharanpur 247121, India
[2] Univ Teknol PETRONAS, Dept Petr Engn, Seri Iskandar 32610, Perak, Malaysia
[3] Univ Teknol PETRONAS, Inst Hydrocarbon Recovery, Seri Iskandar 32610, Perak, Malaysia
[4] Univ Regina, Clean Energy Technol Res Inst, Fac Engn & Appl Sci, Proc Syst Engn, 3737 Wascana Pkwy, Regina, SK S4S 0A2, Canada
[5] UTE Univ, Fac Architecture & Urbanism, Calle Rumipamba S N & Bourgeois, Quito, Ecuador
[6] Saveetha Dent Coll & Hosp, Saveetha Inst Med & Tech Sci, Dept Biomat, Chennai 600077, India
[7] Univ Teknol Malaysia, Fac Chem & Energy Engn, Proc Syst Engn Ctr PROSPECT, Fac Engn, Skudai, Johor, Malaysia
[8] Univ Teknol Malaysia, Razak Fac Technol & Informat, Engn Dept, Jalan Sultan Yahya Petra, Kuala Lumpur 54100, Malaysia
[9] Nguyen Tat Thanh Univ, Inst Appl Technol & Sustainable Dev, Ho Chi Minh City 755414, Vietnam
[10] Nguyen Tat Thanh Univ, Ctr Excellence Green Energy & Environm Nanomat CEG, 300A Nguyen Tat Thanh, Dist 4, Ho Chi Minh City 755414, Vietnam
关键词
Hydrogen; Environment; Sustainable nanoparticles; Nanomaterials; Hydrogen color code; LIFE-CYCLE ASSESSMENT; BUBBLE-COLUMN REACTOR; WASTE-HEAT RECUPERATION; WATER-GAS SHIFT; METHANE PYROLYSIS; TERT-BUTYLHYDROPEROXIDE; ELECTROLYSIS CELLS; CATALYTIC-ACTIVITY; ECONOMIC-ANALYSIS; ENERGY-RESOURCES;
D O I
10.1016/j.envres.2023.115963
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Hydrogen (H2) is a possible energy transporter and feedstock for energy decarbonization, transportation, and chemical sectors while reducing global warming's consequences. The predominant commercial method for producing H2 today is steam methane reforming (SMR). However, there is still room for development in process intensification, energy optimization, and environmental concerns related to CO2 emissions. Reactors using metallic membranes (MRs) can handle both problems. Compared to traditional reactors, MRs operates at substantially lower pressures and temperatures. As a result, capital and operational costs may be significantly cheaper than traditional reactors. Furthermore, metallic membranes (MMs), particularly Pd and its alloys, naturally permit only H2 permeability, enabling the production of a stream with a purity of up to 99.999%. This review describes several methods for H2 production based on the energy sources utilized. SRM with CO2 capture and storage (CCUS), pyrolysis of methane, and water electrolysis are all investigated as process technologies. A debate based on a color code was also created to classify the purity of H2 generation. Although producing H2 using fossil fuels is presently the least expensive method, green H2 generation has the potential to become an affordable alternative in the future. From 2030 onward, green H2 is anticipated to be less costly than blue hydrogen. Green H2 is more expensive than fossil-based H2 since it uses more energy. Blue H2 has several tempting qualities, but the CCUS technology is pricey, and blue H2 contains carbon. At this time, almost 80-95% of CO2 can be stored and captured by the CCUS technology. Nanomaterials are becoming more significant in solving problems with H2 generation and storage. Sustainable nanoparticles, such as photocatalysts and bioderived particles, have been emphasized for H2 synthesis. New directions in H2 synthesis and nanomaterials for H2 storage have also been discussed. Further, an overview of the H2 value chain is provided at the end, emphasizing the financial implications and outlook for 2050, i.e., carbon-free H2 and zero-emission H2.
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页数:22
相关论文
共 254 条
[1]   Technological challenges for industrial development of hydrogen production based on methane cracking [J].
Abanades, A. ;
Rubbia, C. ;
Salmieri, D. .
ENERGY, 2012, 46 (01) :359-363
[2]  
Abanades A., 2016, INT J-TORONTO
[3]   Evaluation of hydrogen concentration effect on the natural gas properties and flow performance [J].
Abd, Ammar Ali ;
Naji, Samah Zaki ;
Thian, Tye Ching ;
Othman, Mohd Roslee .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (01) :974-983
[4]   Review and evaluation of hydrogen production options for better environment [J].
Acar, Canan ;
Dincer, Ibrahim .
JOURNAL OF CLEANER PRODUCTION, 2019, 218 :835-849
[5]   A Review on Polymer/Cement Composite with Carbon Nanofiller and Inorganic Filler [J].
Afzal, Anam ;
Kausar, Ayesha ;
Siddiq, Muhammad .
POLYMER-PLASTICS TECHNOLOGY AND ENGINEERING, 2016, 55 (12) :1299-1323
[6]   Thermal Performance of Compression Ignition Engine Using High Content Biodiesels: A Comparative Study with Diesel Fuel [J].
Afzal, Asif ;
Soudagar, Manzoore Elahi M. ;
Belhocine, Ali ;
Kareemullah, Mohammed ;
Hossain, Nazia ;
Alshahrani, Saad ;
Saleel, Ahamed C. ;
Subbiah, Ram ;
Qureshi, Fazil ;
Mujtaba, M. A. .
SUSTAINABILITY, 2021, 13 (14)
[7]  
Agency I.E., 2020, RENEWABLES 2020 ANAL
[8]   A Critical Review of Renewable Hydrogen Production Methods: Factors Affecting Their Scale-Up and Its Role in Future Energy Generation [J].
Agyekum, Ephraim Bonah ;
Nutakor, Christabel ;
Agwa, Ahmed M. ;
Kamel, Salah .
MEMBRANES, 2022, 12 (02)
[9]   Hydrogen fuel and transport system: A sustainable and environmental future [J].
Ahmed, Adeel ;
Al-Amin, Abul Quasern ;
Ambrose, Angelina F. ;
Saidur, R. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2016, 41 (03) :1369-1380
[10]   Recent trends in sustainable biodiesel production using heterogeneous nanocatalysts: Function of supports, promoters, synthesis techniques, reaction mechanism, and kinetics and thermodynamic studies [J].
Ahmed, Mukhtar ;
Ahmad, Khwaja Alamgir ;
Vo, Dai-Viet N. ;
Yusuf, Mohammad ;
Haq, Ahteshamul ;
Abdullah, Anas ;
Aslam, Mohammad ;
Patle, Dipesh S. ;
Ahmad, Zainal ;
Ahmad, Ejaz ;
Athar, Moina .
ENERGY CONVERSION AND MANAGEMENT, 2023, 280