Bibliographic Coupling Links: Alternative Approaches to Carrying Out Systematic Reviews about Renewable and Sustainable Energy
Abstract
:1. Introduction
2. Literature Review
3. Materials and Methods
4. Data Analysis
5. Identifying the Most Relevant Documents for Systematic Review
6. Systematic Review
Document | Objectives/Methodologies | Main Insights |
---|---|---|
[90] | Review about microalgae to produce biodiesel and butanol | Algae as a source of biofuels have several advantages, such as they grow faster; are more efficient at carbon sequestration; and are high in oil and carbohydrates. |
[98] | Predict the highest wave energy period in Australia with extreme learning machines and deep learning models | In terms of forecasting, extreme learning machines produce better results than deep learning models. |
[101] | Review the context about renewable and sustainable energy technologies in the Kingdom of Saudi Arabia, considering Saudi Vision 2030 | Fossil fuel is presently used to produce about 80% of the energy needs in the Kingdom of Saudi Arabia. This country prepared a plan to increase renewable and sustainable energy technologies for power generation to achieve 50% by 2050. |
[103] | Design and simulation of an electrical submersible pump system in geothermal conditions of Turkey | The electrical submersible pump design has an impact on the production rate. |
[99] | Review about computational optimization methods in the fields of the renewable and sustainable energy | The main optimization approaches found in the literature were: mixed-integer and interval linear-programming; Lagrangian relaxation; quadratic programming; Nelder–Mead Simplex search; heuristic optimization approaches; and Pareto-optimization methods. |
[104] | Review the late transition metal nanocomplexes as a source in renewable energy | The types of catalytic reactions and types of energy storage were highlighted. |
[105] | Review about solar fuels and solar energy generation | Solar fuels may be an interesting alternative to produce sustainable energy and mitigate the dioxide carbon impacts. |
[95] | Review about hydronic asphalt pavement approaches | Pavement solar collector approaches may reduce carbon dioxide emissions by 8–100%. |
[106] | Review about polygeneration | Polygeneration is a sustainable approach that may be improved with the design of prototypes with intelligent control and monitoring structures. |
[102] | Review about the sustainable energy context in Indonesia | The utilization of renewable energy in power generation in Indonesia is only around 3%. |
[107] | Review about renewable and sustainable energy in Malaysia | Malaysia has conditions to increase power generation through biomass and biogas utilization, solar power generation, and Hydropower. |
[100] | Overview about hydrogen production | Supercritical water gasification of biomass is the more economical and thermochemical system to produce hydrogen. |
[91] | Review about hydrogen production from oil palm solid waste in Malaysia | Forty percent of the energy needs of Malaysia may be supplied by a thermochemical process of palm solid residues. |
[108] | Review about utilization of biofuels in India | More research about these fields and adjusted strategies to increase the availability of biofuel feedstock were suggested, as were a revision of the related fiscal system and promotion of public-private partnerships. |
[92] | Delonix Regia as a source of biomass | Delonix Regia has an H/C ratio of 1.56 which is higher than pinewood sawdust (1.43) and of coal (1–1.4). |
[93] | Review about Indian cereal crop residues to produce biogas | Chemical pretreatment in cereal crop residues use for bioenergy generation by unmasking lignin. |
[109] | Review about hollow heterostructures derived from metal-organic-framework for electrocatalysis | The use of hollow heterostructures as electrode materials for oxygen- and hydrogen-involved energy conversion strategies and rechargeable batteries were emphasized. |
[110] | Review about biofuel production | The principal barriers of biofuel markets are related to total capital cost, feedstock cost, process yield, and fossil oil price. |
[111] | Synthesis of WO3–x/MoO3–x heterojunction | CO performance is 40.2 μmol·g−1·h−1, which is 9.5 times greater than that of the pristine MoO3−x nanosheet. |
[112] | Review about biofuel generation from triglycerides | Biomass availability and composition, conversion technologies, and characteristics of biofuel were highlighted. |
[113] | Review about crop residues and weedy biomass for bio-ethanol generation | Pretreatment technologies, enzyme cocktails for saccharification, and fermentation strategies were discussed. |
[114] | Discussion about microalgal biomass for biofuel generation | Thermochemical conversion of microalgal biomass has relevant advantages, namely due to its simplicity, shorter conversion time, and higher productivity. |
[96] | Review about insect and ruminant host symbionts for recycling of lignocellulosic carbon | The xylophagous insects and herbivores animals are interesting sources for lignocellulosic biomass bioconversion. |
[94] | Review about bioenergy generation from Cannabis sativa in Pakistan | This biomass feedstock will allow savings of U.S. $200–400 million and will supply 4000 MW of energy. |
[115] | Review about tendencies in Afghanistan for more renewable and sustainable energies sources | The power sector is one of the main constraints for development in Afghanistan where renewable and sustainable sources of energy may bring relevant opportunities. |
[116] | Review about solar power technologies | The cost for concentrated solar power with storage is about 9.0 ¢/kWh and is expected to drop at ~5.0 ¢/kWh by 2030. Nonetheless, this technology needs further development and cost reductions. |
[117] | Review about renewable energy investments | The methods used for energy planning are often from multicriteria decision analysis. LCA and CBA are more used for energy policy and management and environmental impact analysis. |
[118] | Summary about interfacial chemical particularity of the Platinum-based catalysts for controlling alkaline hydrogen evolution reaction | The alkaline electrolyzed water hydrogen output approach is relevant to generate sustainable and alternative energy. |
[97] | Review about lignocellulosic biomass pyrolysis | One of the main challenges are in the pretreatment approaches. |
7. Discussion and Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Hameiri Z. | 20 | Hosseini, Seyed Ehsan | 9 |
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Li Y. | 9 | Wahid, Mazlan Abdul | 7 |
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Foley A. | 8 | Markovska, Natasa | 5 |
Li J. | 7 | Puksec, Tomislav | 5 |
Liu Y. | 7 | Abdulkhani, Ali | 2 |
Duić N. | 6 | Ajayan, J. | 2 |
Pukšec T. | 6 | Alam, MD. MAHBUB | 2 |
Wahid M.A. | 6 | Ali, Mumtaz | 2 |
Zhang L. | 6 | Cao, Yijia | 2 |
Zhang Y. | 6 | Chen, Wei | 2 |
Zhou Y. | 6 | Daud, Wan Mohd Ashri Wan | 2 |
Li S. | 5 | David, ghislain | 2 |
Li X. | 5 | Dehghani-sanij, Alireza | 2 |
Markovska N. | 5 | Demadis, Konstantinos d. | 2 |
Wang H. | 5 | Dusseault, Maurice B. | 2 |
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Wang Y. | 5 | Ganesh, Ibram | 2 |
Scopus | WoS | ||
---|---|---|---|
Countries | Documents | Countries | Documents |
China | 140 | Peoples R China | 109 |
United States | 108 | USA | 69 |
India | 66 | India | 41 |
Malaysia | 62 | Malaysia | 40 |
United Kingdom | 53 | England | 26 |
Australia | 42 | Turkey | 23 |
Italy | 31 | Italy | 22 |
Turkey | 27 | South Korea | 21 |
South Korea | 25 | Spain | 20 |
Spain | 25 | Saudi Arabia | 17 |
Saudi Arabia | 24 | Brazil | 16 |
Germany | 22 | Germany | 16 |
Iran | 22 | Australia | 15 |
Canada | 20 | Iran | 15 |
Brazil | 17 | Canada | 13 |
Indonesia | 15 | The Netherlands | 12 |
The Netherlands | 15 | France | 11 |
France | 14 | Pakistan | 10 |
South Africa | 14 | Scotland | 10 |
Taiwan | 14 | South Africa | 10 |
Scopus | WoS | ||
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Organizations | Documents | Organizations | Documents |
school of photovoltaic and renewable energy engineering, unsw australia, Sydney, NSW 2052, Australia | 15 | Chinese Acad Sci | 14 |
school of mechanical & aerospace engineering, queen’s university belfast, ashby building, stranmillis road, Belfast, BT9 5AH, United Kingdom | 4 | Univ Teknol Malaysia | 14 |
department of energy, power engineering and environment, university of zagreb, faculty of mechanical engineering and naval architecture, ivana lučića 5, Zagreb, 10002, Croatia | 3 | Univ Malaya | 10 |
high-speed reacting flow laboratory, faculty of mechanical engineering, universiti teknologi Malaysia, 81310 Utm Skudai, johor, Malaysia | 3 | Tsinghua Univ | 9 |
institute for turbulence-noise-vibration interaction and control, shenzhen graduate school, harbin institute of technology, Shenzhen, 518055, China | 3 | Queens Univ Belfast | 7 |
school of economics and management, north china electric power university, Beijing, 102206, China | 3 | Univ Zagreb | 7 |
school of environmental science and engineering, shanghai jiao tong university, Shanghai, 200240, China | 3 | Aalto Univ | 6 |
university of the west of scotland, school of engineering, high street, Paisley, PA1 2BE, United Kingdom | 3 | Univ Waterloo | 6 |
aksaray university, industrial engineering department, Aksaray, Turkey | 2 | City Univ Hong Kong | 5 |
center for engineering research, research institute, king fahd university of petroleum and minerals, Dhahran, 31261, Saudi Arabia | 2 | Harbin Inst Technol | 5 |
college of electrical and information engineering, hunan university, Changsha, 410082, China | 2 | Hong Kong Polytech Univ | 5 |
department of catalysis and chemical reaction engineering, national institute of chemistry, hajdrihova 19, Ljubljana, 1000, Slovenia | 2 | Hunan Univ | 5 |
department of chemical engineering, universitas syiah kuala, Banda Aceh, 23111, Indonesia | 2 | King Saud Univ | 5 |
department of earth and environmental sciences, university of waterloo, Waterloo, ON N2L 3G1, Canada | 2 | Univ Nottingham | 5 |
department of industrial engineering and engineering management, national tsing hua university, Hsinchu, Taiwan | 2 | Univ Sao Paulo | 5 |
department of mechanical engineering, universitas syiah kuala, Banda Aceh, 23111, Indonesia | 2 | Univ West Scotland | 5 |
department of sustainable and renewable energy engineering, university of sharjah, United Arab Emirates | 2 | Georgia Inst Technol | 4 |
department of wood and paper sciences and technology, faculty of natural resources, university of tehran, Karaj, 1417466191, Iran | 2 | Huazhong Univ Sci & Technol | 4 |
e & m school, beihang university, Beijing, 100191, China | 2 | King Fahd Univ Petr & Minerals | 4 |
faculty of management, universiti teknologi malaysia (utm), Skudai Johor, 81310, Malaysia | 2 | Univ Padua | 4 |
Scopus | WoS | ||
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Sources | Documents | Sources | Documents |
renewable and sustainable energy reviews | 160 | renewable & sustainable energy reviews | 106 |
journal of renewable and sustainable energy | 45 | energies | 11 |
progress in photovoltaics: research and applications | 20 | renewable energy | 11 |
renewable energy | 14 | energy | 10 |
energies | 11 | international journal of hydrogen energy | 9 |
energy | 9 | energy conversion and management | 8 |
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international journal of hydrogen energy | 8 | acs sustainable chemistry & engineering | 6 |
journal of cleaner production | 8 | applied energy | 6 |
applied energy | 7 | fuel | 6 |
fuel | 6 | journal of renewable and sustainable energy | 6 |
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sustainability (switzerland) | 6 | rsc advances | 5 |
acs sustainable chemistry and engineering | 5 | electrochimica acta | 4 |
energy storage materials | 5 | energy storage materials | 4 |
green energy and technology | 5 | international journal of energy research | 4 |
international journal of energy research | 5 | solar energy materials and solar cells | 4 |
rsc advances | 5 | acs applied materials & interfaces | 3 |
electrochimica acta | 4 | applied microbiology and biotechnology | 3 |
energy policy | 4 | bioenergy research | 3 |
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Martinho, V.J.P.D. Bibliographic Coupling Links: Alternative Approaches to Carrying Out Systematic Reviews about Renewable and Sustainable Energy. Environments 2022, 9, 28. https://doi.org/10.3390/environments9020028
Martinho VJPD. Bibliographic Coupling Links: Alternative Approaches to Carrying Out Systematic Reviews about Renewable and Sustainable Energy. Environments. 2022; 9(2):28. https://doi.org/10.3390/environments9020028
Chicago/Turabian StyleMartinho, Vítor João Pereira Domingues. 2022. "Bibliographic Coupling Links: Alternative Approaches to Carrying Out Systematic Reviews about Renewable and Sustainable Energy" Environments 9, no. 2: 28. https://doi.org/10.3390/environments9020028
APA StyleMartinho, V. J. P. D. (2022). Bibliographic Coupling Links: Alternative Approaches to Carrying Out Systematic Reviews about Renewable and Sustainable Energy. Environments, 9(2), 28. https://doi.org/10.3390/environments9020028