Ecological industrialization and rural revitalization for global sustainable development

Yansui Liu , Xuhong Li , Sixin Su , Yuanzhi Guo

Geography and Sustainability ›› 2025, Vol. 6 ›› Issue (4) : 100307

PDF
Geography and Sustainability ›› 2025, Vol. 6 ›› Issue (4) :100307 DOI: 10.1016/j.geosus.2025.100307
Perspective
review-article

Ecological industrialization and rural revitalization for global sustainable development

Author information +
History +
PDF

Abstract

Global sustainable development cannot be achieved by neglecting rural areas. These regions represent vast territorial spaces beyond urban built-up areas, possessing comparative advantages through their distinctive ecological resources. The transformation of ecological resources into economic value, commonly referred to as ecological industrialization, enhances rural economic vitality and developmental potential. Comprehensive rural revitalization strengthens regional functionality and development resilience, thereby promoting sustainable rural development. Based on human–earth system science, we theorize ecological industrialization as the PGR model, manifesting the transformation path from “poor mountain” to “green mountain” and then to “rich mountain”. It is noteworthy that in regions endowed with beautiful ecological landscapes, the PGR model prioritizes the transformation of “green mountain” to “rich mountain”. The essence of rural revitalization manifests through areal transformations driven by tripartite forces: the rural internal force, urban peripheral force, and urban–rural interaction force. There is a mutually reinforcing relationship between ecological industrialization and rural revitalization, and the implementation of the two can realize the coordinated development of rural functions. In this process, rural areas have realized the transformation from degraded land system to human–earth coupling system. Furthermore, through the examination of Fuping, Liuba, and Sanming as exemplary case studies, we have distilled three distinct modes of ecological industrialization: the circular industry mode, the ecological tourism mode, and the carbon sink trading mode. It is recommended that rural areas prioritize the coordinated implementation of ecological industrialization and rural revitalization in accordance with regional characteristics, so as to better foster rural sustainable development.

Keywords

Ecological industrialization / Rural revitalization / The PGR model / Human–earth system science / China

Cite this article

Download citation ▾
Yansui Liu, Xuhong Li, Sixin Su, Yuanzhi Guo. Ecological industrialization and rural revitalization for global sustainable development. Geography and Sustainability, 2025, 6(4): 100307 DOI:10.1016/j.geosus.2025.100307

登录浏览全文

4963

注册一个新账户 忘记密码

CRediT authorship contribution statement

Yansui Liu: Writing – original draft, Supervision, Resources, Project administration, Funding acquisition, Conceptualization. Xuhong Li: Writing – review & editing, Writing – original draft, Visualization, Validation, Methodology, Investigation, Formal analysis, Conceptualization. Sixin Su: Validation, Resources, Conceptualization. Yuanzhi Guo: Visualization, Validation, Resources.

Declaration of competing interests

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

Acknowledgements

This work was supported by the National Natural Science Foundation of China (Grant No. 42293271) and the Alliance of International Science Organizations (Grant No. ANSO-PA-2023–16).

References

[1]

Bai, Y, Liu, Y, Li, Y, Wang, Y, Yuan, X., 2022. Land consolidation and eco-environmental sustainability in Loess Plateau: a study of Baota district, Shaanxi province, China. J. Geogr. Sci., 32(9), 1724-1744.

[2]

Cardinale, B. J., Duffy, J. E., Gonzalez, A, Hooper, D. U., Perrings, C, Venail, P, Narwani, A, Mace, G. M., Tilman, D, Wardle, D. A., Kinzig, A. P., Daily, G. C., Loreau, M, Grace, J. B., Larigauderie, A, Srivastava, D. S., Naeem, S., 2012. Biodiversity loss and its impact on humanity. Nature 486, 59-67.

[3]

Chen, G, Li, X, Liu, X, Chen, Y, Liang, X, Leng, J, Xu, X, Liao, W, Qiu, Y, Wu, Q, Huang, K., 2020. Global projections of future urban land expansion under shared socioeconomic pathways. Nat. Commun., 11(1), 537.

[4]

Chibba, M., 2011. The millennium development goals: key current issues and challenges. Dev. Policy Rev., 29, 75-90.

[5]

FAO 2021. Global Assessment of Soil Pollution. FAO, Rome

[6]

Glidden, C. K., Nova, N, Kain, M. P., Lagerstrom, K. M., Skinner, E. B., Mandle, L, Sokolow, S. H., Plowright, R. K., Dirzo, R, De Leo, G. A., Mordecai, E. A., 2021. Human-mediated impacts on biodiversity and the consequences for zoonotic disease spillover. Curr. Biol., 31(19), R1342-R1361.

[7]

Hasegawa, T, Sakurai, G, Fujimori, S, Takahashi, K, Hijioka, Y, Masui, T., 2021. Extreme climate events increase risk of global food insecurity and adaptation needs. Nat. Food 2(8), 587-595.

[8]

International Energy Agency 2022. World Energy Outlook 2022. OECD Publishing, Paris

[9]

IPCC 2014. Climate Change 2014: Synthesis Report. IPCC, Geneva

[10]

IPCC 2023. Climate Change 2023: Synthesis Report. IPCC, Geneva

[11]

Lewis, S, Maslin, M., 2015. Defining the anthropocene. Nature 519(7542), 171-180.

[12]

Liu, Y., 2021. Urban-Rural Transformation Geography. Springer Nature, Singapore

[13]

Qiu, S, Peng, J, Zheng, H, Xu, Z, Meersmans, J., 2022. How can massive ecological restoration programs interplay with social-ecological systems? A review of research in the South China karst region. Sci. Total Environ., 807, 150723.

[14]

Rezaei, E. E., Webber, H, Asseng, S, Boote, K, Durand, J. L., Ewert, F, Martre, P, MacCarthy, D. S., 2023. Climate change impacts on crop yields. Nat. Rev. Earth. Environ., 4(12), 831-846.

[15]

Sachs, J. D., Schmidt-Traub, G, Mazzucato, M, Messner, D, Nakicenovic, N, Rockström, J., 2019. Six transformations to achieve the Sustainable Development Goals. Nat. Sustain., 2(9), 805-814.

[16]

Steffen, W, Crutzen, P. J., McNeill, J. R., 2007. The Anthropocene: are humans now overwhelming the great forces of nature. Ambio 36(8), 614-621.

[17]

Wang, Y, Liu, Y., 2020. New material for transforming degraded sandy land into productive farmland. Land Use Policy 92, 104477.

[18]

Watts, N, Amann, M, Arnell, N, Ayeb-Karlsson, S, Beagley, J, Belesova, K, Boykoff, M, Byass, P, Cai, W, Campbell-Lendrum, D, Capstick, S, Chambers, J, Coleman, S, Dalin, C, Daly, M, Dasandi, N, Dasgupta, S, Davies, M, Di Napoli, C, Dominguez-Salas, P, Drummond, P, Dubrow, R, Ebi, K, Eckelman, M, Ekins, P, Escobar, L, Georgeson, L, Golder, S, Grace, D, Graham, H, Haggar, P, Hamilton, I, Hartinger, S, Hess, J, S-Hsu, C, Hughes, N, Jankin Mikhaylov, S, Jimenez, M, Kelman, I, Kennard, H, Kiesewetter, G, Kinney, P, Kjellstrom, T, Kniveton, D, Lampard, P, Lemke, B, Liu, Y, Liu, Z, Lott, M, Lowe, R, Martinez-Urtaza, J, Maslin, M, McAllister, L, McGushin, A, McMichael, C, Milner, J, Moradi-Lakeh, M, Morrissey, K, Munzert, S, Murray, K, Neville, T, Nilsson, M, Sewe, M, Oreszczyn, T, Otto, M, Owfi, F, Pearman, O, Pencheon, D, Quinn, R, Rabbaniha, M, Robinson, E, Rocklöv, J, Romanello, M, Semenza, J, Sherman, J, Shi, L, Springmann, M, Tabatabaei, M, Taylor, J, Triñanes, J, Shumake-Guillemot, J, Vu, B, Wilkinson, P, Winning, M, Gong, P, Montgomery, H, Costello, A., 2021. The 2020 report of The Lancet Countdown on health and climate change: responding to converging crises. Lancet 397(10269), 129-170.

[19]

WCED 1987. Report of the World Commission on Environment and Development: Our Common Future. WCED, New York

[20]

World Meteorological Organization 2022. State of the Global Climate 2021. World Meteorological Organization, Geneva

[21]

Wu, C. J., 1991. The core of study of geography: man-land relationship areal system. Econ. Geogr., 11, 1-6.

[22]

WWF 2020. Living Planet Report 2020: Bending the Curve of Biodiversity. WWF, Gland

[23]

Zhai, J, Wang, L, Liu, Y, Wang, C, Mao, X., 2023. Assessing the effects of China’s Three-North Shelter Forest Program over 40 years. Sci. Total Environ., 857, 159354.

[24]

Zhang, J, Dai, M, Wang, L, Su, W., 2016. Household livelihood change under the rocky desertification control project in karst areas, Southwest China. Land Use Policy 56, 8-15.

[25]

Zhang, T, He, Y, DePauw, R, Jin, Z, Garvin, D, Yue, X, Anderson, W, Li, T, Dong, X, Zhang, T, Yang, X., 2022. Climate change may outpace current wheat breeding yield improvements in North America. Nat. Commun., 13(1), 5591.

[26]

Zheng, X, Zhu, J, Xing, Z., 2016. Assessment of the effects of shelterbelts on crop yields at the regional scale in Northeast China. Agric. Syst., 143, 49-60.

[27]

Zhou, Y, Guo, L, Liu, Y., 2019. Land consolidation boosting poverty alleviation in China: theory and practice. Land Use Policy 82, 339-348.

[28]

Zhu, P, Burney, J, Chang, J, Jin, Z, Mueller, N. D., Xin, Q, Xu, J, Yu, L, Makowski, D, Ciais, P., 2022. Warming reduces global agricultural production by decreasing cropping frequency and yields. Nat. Clim. Chang., 12(11), 1016-1023.

PDF

204

Accesses

0

Citation

Detail

Sections
Recommended

/