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Actual Scientific Research Directions On Smart Villages In the Web of Science Database Publications

Year 2024, Volume: 7 Issue: 2, 143 - 149, 31.12.2024
https://doi.org/10.55581/ejeas.1468475

Abstract

In Azerbaijan, large-scale works are currently underway to restore the once-destroyed Karabakh region through the implementation of the popular trend of the current century, the “smart” village concept, which implies the most efficient applience of the available resources of a region through the use of innovative construction technologies and materials, “green” energy, and digitalization of all spheres of human life. The first smart village in Azerbaijan is Agali village. The purpose of this study is to review scientific publications, abstracted in the Web of Science database in the category “Green sustainable scientific technologies” on the subject of smart village and identify areas of current scientific research using the VOSviewer program, which allows to group keywords by frequency of their occurrence in articles and determine the most refereed articles. The program grouped scientific publications into 6 clusters: applying the circular economy to smart villages; the use of renewable energy technologies for energy supply; the impact of innovation on the quality of population life; the environmental impact of smart villages in the Chinese context; the application of efficient management methods; and strategies for ensuring sustainable development. The identified trends in scientific research on the development of smart villages are relevant to Azerbaijan. Some measures to achieve sustainable development of the village indicated in the articles studied have already been implemented, and some are planned to be applied. This study's results will help specify further necessary research on the development of smart villages in Azerbaijan.

References

  • Zhang, X., Zhang, Z. (2020). How do smart villages become a way to achieve sustainable development in rural areas? Smart village planning and practices in China. Sustainability, 12 (24).
  • Wu, Y., Azmi, A., Ibrahim, R., Ghafar, A. A., & Salih, S. A. (2024). Creating a sustainable urban ecosystem: the Azheke village model. Smart and Sustainable Built Environment.
  • Jimenez, T., Cuadrado, R., Rojí C. (2024). Foundations of land-based turbine winds: current situation and trends. Construction Reports, 76 (573), 6443.
  • Akbarova, S., Mammadov, N., Rustamov, V. (2022). Evaluation of thermal energy production by solar panels for Karabakh "green" energy zone. Reliability: theory and applications, 4(70), 200-206.
  • Asriadi, A., Jamaluddin, A., Abdullahi, A. (2021). Village governance in realizing smart village in Tongke-Tongke Village, Sinjai Regency. International Conference on Environmental Ecology of Food Security (ICEFS).
  • Aziiza, A., Susanto, T. (2020). The smart village model for rural area, case study: Banyuwangi regency. 3rd International Conference on Engineering Technology for Sustainable Development, 722.
  • [Bukar, U., Sayeed, M., Mahmood, R. (2023). A method for analyzing text using VOSviewer. MethodsX, 11, 102339.
  • Ding, X., Yang, Z. (2022). Knowledge mapping of platform research: a visual analysis using VOSviewer and CiteSpace. Electronic commerce research, 22(3), 787-809.
  • Li, C., Sun, T., Kelly, K., Zhang, Y. (2012). A compressive sensing and unmixing scheme for hyperspectral data processing. IEEE Transactions on Image Processing, 21(3), 1200-1210.
  • Van, E. (2010). A comparison of two techniques for bibliometric mapping: multidimensional scaling and VOS. Journal of the American Society for Information Science and Technology, 61(12), 2405-2416.
  • Kirby, A. (2023). Exploratory bibliometrics: using VOSviewer as a preliminary research tool. Publications, 11(1).
  • Van, E., Waltman L. (2010). Software survey: VOSviewer , a computer program for bibliometric mapping. Scientometrics, 84(2), 523-538.
  • Harakal'ová, L. (2018). Smart villages - new concept of rural development of the EU. 4th International Conference on European Integration 2018 (ICEI 2018), 1-3, 413-421.
  • Gonzalez, E., Kandpal, V., Majumdar, S. (2023). A bibliometric analysis of circular economies through sustainable smart cities. Sustainability, 15(22).
  • Pozas, B., Gamero, I., De Castro, P. (2020). A methodology to improve energy efficiency and comfort conditions with low-cost ICTs in rural public buildings. Sustainable cities and society, 60.
  • Esmaeilpoorarabi, N., Yigitcanlar, T. (2023). User-centric innovation district planning: lessons from Brisbane 's leading innovation districts . Buildings, 13(4).
  • Crawford R. (2018). Towards the environmentally sustainable smart village. COSVARD, 97-106.
  • Baidya, A., Saha, A. (2024). Exploring the research trends in climate change and sustainable development: A bibliometric study. Cleaner engineering and technology, 18.
  • Kemec, A., Altinay, A. (2023). Sustainable energy research trend: a bibliometric analysis using vosviewer, rstudio bibliometrix, and citespace software tools. Sustainability, 15 (4)
  • Li, W., Han, M. (2023). Mapping renewable energy transition worldwide: gravity trajectory, contribution decomposition and income levels. Renewable energy, 206, 1265-1274.
  • Liu, W., Shen Y., Razzaq A. (2023). How renewable energy investment, environmental regulations, and financial development derive renewable energy transition: Evidence from G7 countries. Renewable energy, 206, 1188-1197.
  • Koncalovic, D., Nikolic, J., Aivkovic, D. (2023). Energy cooperatives and just transition in Southeastern Europe. Energy, sustainability and society,13 (1).
  • Dong, K., Zhao, J., & Taghizadeh-Hesary, F. (2023). Toward China’s green growth through boosting energy transition: the role of energy efficiency. Energy Efficiency, 16(5), 43.
  • Abbasi, K., Shahbaz, M., Zhang, J., Irfan, M., Alvarado, R. (2022). Analyze the environmental factors of China: The role of fossil fuel energy and renewable energy. Renewable Energy, 187.
  • Dogan, E., Chishti, M., Alavijeh, N., Tzeremes, P. (2022). The roles of technology and Kyoto Protocol in energy transition towards COP26 targets: evidence from the novel GMM-PVAR approach for G-7 countries. Technological Forecasting and Social Change, 181.
  • Dutta, A., Bouri, E., Rothovius, T., Uddin, G. (2023). Climate risk and green investments: new evidence. Energy, 265.
  • Ren, X., Li, J., He, F., Lucey, B. (2023). Impact of climate policy uncertainty on traditional energy and green markets: evidence from time-varying granger tests. Renewable and sustainable energy reviews, 173.
  • Mehmet, A., Samuel, A. (2019). Investigation of environmental Kuznets curve for ecological footprint: the role of energy and financial development. Science of the total environment, 650 (2), 2483-2489.
  • Xiao, L., Pan, L., Maoyuan, F., Sarah, M., Lei, C., Bo, M., Jie, C., Kang, X., Weibo, L. (2024). Energy transition paradox: solar and wind growth can hinder decarbonization. Renewable and sustainable energy reviews, 192, 114220.
  • Einecker, R., Kirby, A. (2020). Climate change: a bibliometric study of adaptation, mitigation and resilience. Sustainability, 12(17).
  • Guo, Y., Huang, Z., Nkeli, M. (2019). Bibliometric analysis on smart cities research. Sustainability, 11(13).
  • Munoz-Villamizar, A., Santos, J. (2021). Integration of lean and green management: a bibliometric analysis. International journal of innovation and sustainable development, 15 (3), 336-351.
  • Mammadov, N., Akbarova, S. (2022). Analysis of the possibilities of applying modern information technologies in energy efficient urban development. Reliability: theory and applications, 4 (70), 361-366.
  • Gomis, K., Kahandawa, R., Jayasinghe, R. (2023). Scientometric analysis of the global scientific literature on circularity indicators in the construction and built environment sector. Sustainability, 15(1).
  • Ali, M., Prakash, K., Pota, R. (2021). Intelligent energy management: evolving developments, current challenges, and research directions for sustainable future. Journal of cleaner production, 314.

Web of Science Veritabanı Yayınlarındaki Akıllı Köylere İlişkin Güncel Bilimsel Araştırma Yönergeleri

Year 2024, Volume: 7 Issue: 2, 143 - 149, 31.12.2024
https://doi.org/10.55581/ejeas.1468475

Abstract

Azerbaycan'da, bir zamanlar harap olan Karabağ bölgesinin, içinde bulunduğumuz yüzyılın popüler trendi olan ve mevcut kaynakların en verimli şekilde kullanılmasını ifade eden "akıllı" köy konseptinin hayata geçirilmesi yoluyla yeniden ayağa kaldırılmasına yönelik geniş çaplı çalışmalar sürdürülmektedir. Yenilikçi inşaat teknolojileri ve malzemelerinin kullanıldığı, "yeşil" enerjinin kullanıldığı ve insan yaşamının tüm alanlarının dijitalleştirildiği bir bölge. Azerbaycan'ın ilk akıllı köyü Agali köyüdür. Bu çalışmanın amacı Web of Science veritabanında yer alan “Yeşil Sürdürülebilir Bilimsel Teknolojiler” kategorisinde “akıllı” köy konu alanına ilişkin bilimsel yayınları incelemek ve güncel bilimsel araştırma alanlarını VOSviewer programı kullanarak tespit etmektir. anahtar kelimeleri makalelerde bulunma sıklıklarına göre gruplandırmak ve en soyut makaleleri belirlemek. Program bilimsel yayınları 6 kümede gruplandırdı: döngüsel ekonominin akıllı köylere uygulanması; enerji tedariği için yenilenebilir enerji teknolojilerinin kullanılması; yeniliğin nüfusun yaşam kalitesi üzerindeki etkisi; Çin bağlamında akıllı köylerin çevresel etkisi; verimli yönetim yöntemlerinin uygulanması; akıllı köylerin sürdürülebilir kalkınmasını sağlamaya yönelik stratejiler ve stratejiler. Akıllı köylerin geliştirilmesine yönelik bilimsel araştırmalarda belirlenen eğilimler Azerbaycan'daki akıllı köylerle ilgilidir. İncelenen maddelerde belirtilen köyün sürdürülebilir kalkınmasını sağlamaya yönelik bazı önlemler halihazırda uygulamaya konmuş olup, bazılarının da uygulanması planlanmaktadır. Bu çalışmanın sonuçları, Azerbaycan'da “akıllı” köylerin geliştirilmesine yönelik gerekli araştırmaların belirlenmesine yardımcı olacaktır.

References

  • Zhang, X., Zhang, Z. (2020). How do smart villages become a way to achieve sustainable development in rural areas? Smart village planning and practices in China. Sustainability, 12 (24).
  • Wu, Y., Azmi, A., Ibrahim, R., Ghafar, A. A., & Salih, S. A. (2024). Creating a sustainable urban ecosystem: the Azheke village model. Smart and Sustainable Built Environment.
  • Jimenez, T., Cuadrado, R., Rojí C. (2024). Foundations of land-based turbine winds: current situation and trends. Construction Reports, 76 (573), 6443.
  • Akbarova, S., Mammadov, N., Rustamov, V. (2022). Evaluation of thermal energy production by solar panels for Karabakh "green" energy zone. Reliability: theory and applications, 4(70), 200-206.
  • Asriadi, A., Jamaluddin, A., Abdullahi, A. (2021). Village governance in realizing smart village in Tongke-Tongke Village, Sinjai Regency. International Conference on Environmental Ecology of Food Security (ICEFS).
  • Aziiza, A., Susanto, T. (2020). The smart village model for rural area, case study: Banyuwangi regency. 3rd International Conference on Engineering Technology for Sustainable Development, 722.
  • [Bukar, U., Sayeed, M., Mahmood, R. (2023). A method for analyzing text using VOSviewer. MethodsX, 11, 102339.
  • Ding, X., Yang, Z. (2022). Knowledge mapping of platform research: a visual analysis using VOSviewer and CiteSpace. Electronic commerce research, 22(3), 787-809.
  • Li, C., Sun, T., Kelly, K., Zhang, Y. (2012). A compressive sensing and unmixing scheme for hyperspectral data processing. IEEE Transactions on Image Processing, 21(3), 1200-1210.
  • Van, E. (2010). A comparison of two techniques for bibliometric mapping: multidimensional scaling and VOS. Journal of the American Society for Information Science and Technology, 61(12), 2405-2416.
  • Kirby, A. (2023). Exploratory bibliometrics: using VOSviewer as a preliminary research tool. Publications, 11(1).
  • Van, E., Waltman L. (2010). Software survey: VOSviewer , a computer program for bibliometric mapping. Scientometrics, 84(2), 523-538.
  • Harakal'ová, L. (2018). Smart villages - new concept of rural development of the EU. 4th International Conference on European Integration 2018 (ICEI 2018), 1-3, 413-421.
  • Gonzalez, E., Kandpal, V., Majumdar, S. (2023). A bibliometric analysis of circular economies through sustainable smart cities. Sustainability, 15(22).
  • Pozas, B., Gamero, I., De Castro, P. (2020). A methodology to improve energy efficiency and comfort conditions with low-cost ICTs in rural public buildings. Sustainable cities and society, 60.
  • Esmaeilpoorarabi, N., Yigitcanlar, T. (2023). User-centric innovation district planning: lessons from Brisbane 's leading innovation districts . Buildings, 13(4).
  • Crawford R. (2018). Towards the environmentally sustainable smart village. COSVARD, 97-106.
  • Baidya, A., Saha, A. (2024). Exploring the research trends in climate change and sustainable development: A bibliometric study. Cleaner engineering and technology, 18.
  • Kemec, A., Altinay, A. (2023). Sustainable energy research trend: a bibliometric analysis using vosviewer, rstudio bibliometrix, and citespace software tools. Sustainability, 15 (4)
  • Li, W., Han, M. (2023). Mapping renewable energy transition worldwide: gravity trajectory, contribution decomposition and income levels. Renewable energy, 206, 1265-1274.
  • Liu, W., Shen Y., Razzaq A. (2023). How renewable energy investment, environmental regulations, and financial development derive renewable energy transition: Evidence from G7 countries. Renewable energy, 206, 1188-1197.
  • Koncalovic, D., Nikolic, J., Aivkovic, D. (2023). Energy cooperatives and just transition in Southeastern Europe. Energy, sustainability and society,13 (1).
  • Dong, K., Zhao, J., & Taghizadeh-Hesary, F. (2023). Toward China’s green growth through boosting energy transition: the role of energy efficiency. Energy Efficiency, 16(5), 43.
  • Abbasi, K., Shahbaz, M., Zhang, J., Irfan, M., Alvarado, R. (2022). Analyze the environmental factors of China: The role of fossil fuel energy and renewable energy. Renewable Energy, 187.
  • Dogan, E., Chishti, M., Alavijeh, N., Tzeremes, P. (2022). The roles of technology and Kyoto Protocol in energy transition towards COP26 targets: evidence from the novel GMM-PVAR approach for G-7 countries. Technological Forecasting and Social Change, 181.
  • Dutta, A., Bouri, E., Rothovius, T., Uddin, G. (2023). Climate risk and green investments: new evidence. Energy, 265.
  • Ren, X., Li, J., He, F., Lucey, B. (2023). Impact of climate policy uncertainty on traditional energy and green markets: evidence from time-varying granger tests. Renewable and sustainable energy reviews, 173.
  • Mehmet, A., Samuel, A. (2019). Investigation of environmental Kuznets curve for ecological footprint: the role of energy and financial development. Science of the total environment, 650 (2), 2483-2489.
  • Xiao, L., Pan, L., Maoyuan, F., Sarah, M., Lei, C., Bo, M., Jie, C., Kang, X., Weibo, L. (2024). Energy transition paradox: solar and wind growth can hinder decarbonization. Renewable and sustainable energy reviews, 192, 114220.
  • Einecker, R., Kirby, A. (2020). Climate change: a bibliometric study of adaptation, mitigation and resilience. Sustainability, 12(17).
  • Guo, Y., Huang, Z., Nkeli, M. (2019). Bibliometric analysis on smart cities research. Sustainability, 11(13).
  • Munoz-Villamizar, A., Santos, J. (2021). Integration of lean and green management: a bibliometric analysis. International journal of innovation and sustainable development, 15 (3), 336-351.
  • Mammadov, N., Akbarova, S. (2022). Analysis of the possibilities of applying modern information technologies in energy efficient urban development. Reliability: theory and applications, 4 (70), 361-366.
  • Gomis, K., Kahandawa, R., Jayasinghe, R. (2023). Scientometric analysis of the global scientific literature on circularity indicators in the construction and built environment sector. Sustainability, 15(1).
  • Ali, M., Prakash, K., Pota, R. (2021). Intelligent energy management: evolving developments, current challenges, and research directions for sustainable future. Journal of cleaner production, 314.
There are 35 citations in total.

Details

Primary Language English
Subjects Civil Construction Engineering
Journal Section Research Articles
Authors

Samira Akbarova 0000-0002-0916-7734

Publication Date December 31, 2024
Submission Date April 16, 2024
Acceptance Date December 24, 2024
Published in Issue Year 2024 Volume: 7 Issue: 2