Contribution of Infrastructure to the Township’s Sustainable Development in Southwest China
Abstract
:1. Introduction
2. Literature Review
2.1. Understanding of Township’s Sustainable Development
2.2. Research on Indicators for Accessing Sustainability
2.2.1. Assessing Indicators of Infrastructure Sustainability
2.2.2. Assessing Indicators of Regional Sustainability
2.3. Research on Infrastructure’s Effect on Sustainable Development
2.3.1. Infrastructure’s Effect on Economic Development
2.3.2. Infrastructure’s Effect on Social Development
2.3.3. Infrastructure’s Effect on Environmental Protection
3. Selection of Indicators for Assessing Sustainable Contribution of Infrastructure
3.1. Indicators for Assessing the Township’s Sustainable Development
3.2. Identification of Township’s Major Infrastructures in Southwest China
3.2.1. Literature Analysis
3.2.2. On-Site Investigation
3.3. Indicators for Assessing the SCOI of Major Infrastructure
4. Methodologies
4.1. Model for Assessing the SCOI
4.2. Measurement of Contribution Value
4.3. Calculation of Weights
4.3.1. Standardization of Indicator
4.3.2. Determination of the Weights
5. Case Study
5.1. Background of the Case
5.2. Materials
5.3. Calculation and Results
6. Discussion
6.1. Analysis of Order and Priority of Infrastructure Investment Based on SCOI
6.2. Improvement of the Infrastructures in Townships
6.3. Future Development of Infrastructure in Townships
7. Conclusions
Author Contributions
Funding
Informed Consent Statement
Conflicts of Interest
References
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Topic | Related Literature | Main Work | Contributions | |
---|---|---|---|---|
Understanding of township’s sustainable development | [8] | Evaluated the sustainable development of small municipalities from social wellness, public management, new economies, and regional planning. | Township’s sustainable development is also the balance of three dimensions: economy, society, and environment. | |
[12] | Emphasized the importance of environment, public services, and education are important for sustainable development. | |||
[20] | Evaluated regional sustainable development based on social, economic, environmental, and resources. | |||
[18,19,21,22,23] | Discussed sustainable development from society, economy, and environment. | |||
Assesses indicators of regional sustainability | Assess indicators of infrastructure sustainability | [4,9] | Taken market supply and demand analysis and project budget as core indicators. | Provide a certain reference for indicators selection in social and environmental dimensions. |
[8] | Introduced indicators including municipal GDP per capita, waste deposited, and social housing. | |||
[10] | Introduced indicators including employment of labor, liquid waste, and initial cost. | |||
[11] | Introduced indicators including secondary industry increased, urban population density, and per capita ecological land increased. | |||
[24,25] | Introduced indicators including air quality and energy consumption are important evaluation indicators for infrastructure sustainability. | |||
Urban areas and above | [5] | Provide global indicator framework for the SDGs. | Provide a certain reference for indicators selection. | |
[13] | Introduced indicators assessing smart city and smart project based on five aspects: people, planet, prosperity, governance, and propagation. | |||
[14] | Introduced indicators assessing the city sustainability. | |||
[26] | Proposed 17 sustainable development Goals and it’s assessing indicator for the global sustainable development. | |||
Townships and small city | [22] | Introduced indicators including traffic jam, pollution, and crime as the key for town’s sustainability. | Provide important reference for indicators selection. | |
[27] | Introduced indicators assessing the township’s sustainable development through 33 survey items. | |||
[28] | Proposed an improved indicator system to assess the progress of the SDGs in the county level. | |||
Impacting of infrastructure on sustainable development | Economic effect | [15,31,32,33] | Proved that infrastructure makes an important contribution to economic development. | Discussed infrastructure’s effect on economic development. Provide important reference for economic indicators selection. |
[2,3,4,8,30] | Introduced some influence factors including personal income, regional GDP, economic benefit, etc. | |||
Social effect | [3,21,22,30,34,36] | Proved that infrastructure makes an important contribution to social development. | Discussed infrastructure’s effect on social development. Provide important reference for social indicators selection. | |
[2,8,22,35,37] | Introduced some influence factors including employment rate, population structure, social insurance coverage, etc. | |||
Environmental effect | [7,16,22,35,39] | Proved that infrastructure makes an important contribution to environment protection. | Discussed infrastructure’s effect on environmental protection. Provide important reference for environmental indicators selection. | |
[5,8,24,40,41] | Introduced some influence factors including sewage treatment, garbage disposal and water, air quality, etc. |
Dimensions | Sorts | Indicators | References |
---|---|---|---|
Economy | Economic level | GDP per capita | [8,20,43] |
Economic structure | Gross output value of primary industry | [7,44,45] | |
Gross output value of secondary industry | [44,45] | ||
Gross output value of third industry | [44,45] | ||
Fixed asset investment per capita | [46] | ||
Economic potential | Fiscal revenue | [47,48] | |
Residents living | Per capita savings | [43,49] | |
Per capita disposable income of urban residents | [27,49] | ||
Per capita disposable income of rural residents | [50] | ||
Engel coefficient | [51] | ||
Society | Population size | Growth rate of population | [20,38,49] |
Population quality | Proportion of population above college level | [22,27] | |
Population structure | Urbanization rate | [38] | |
Social insurance | Social insurance coverage | [35,37] | |
Employment | Urban unemployment rate | [9] | |
The share of non-farm workers | [23] | ||
Science and technology | The proportion of scientific and technological expenses in fiscal expenditure | [35,52] | |
Education | The proportion of educational investment in GDP | [7,22,35,49] | |
Sanitation | The proportion of health workers per 1000 people | [21,37,43] | |
Transportation | Traffic mileage | [35,52,53] | |
Environment | Resource | Agricultural acreage | [35,50] |
Water resources quantity | [22,23,43,47] | ||
Forest coverage rate | [22,47,54] | ||
Environmental quality | Air quality days up to standard rate | [23,48,53] | |
Penetration rate of safe drinking water | [38,52] | ||
Green space coverage in built-up areas | [55] | ||
Environmental control | Domestic garbage disposal rate | [37,47,55] | |
Domestic sewage treatment rate | [34,56,57] | ||
Industrial sewage treatment rate | [34,47,57] | ||
Compliance rate of industrial smoke emission | [27] | ||
Treatment rate of industrial solid waste | [52,54] | ||
The proportion of environmental protection investment in GDP | [37,54] | ||
Energy | Total end-use energy consumption per capita | [14] | |
Percentage of total end-use energy derived from renewable sources | [14,39] | ||
Percentage of population with authorized electrical service (residential) | [14] | ||
Number of gas distribution service connections per 100,000 population (residential) | [14] |
Code | Infrastructure | Frequency | Reference | Code | Infrastructure | Frequency | Reference |
---|---|---|---|---|---|---|---|
1 | Water Supply | 5 | [58,59,60,61,62] | 6 | Telecommunications | 3 | [58,59,62] |
2 | Waste disposal | 5 | [58,59,60,61,62] | 7 | Power | 2 | [60,62] |
3 | Sewage treatment | 5 | [58,59,60,61,62] | 8 | Distributed energy resource | 2 | [58,59] |
4 | Road transport | 4 | [58,59,60,62] | 9 | Logistics | 1 | [62] |
5 | Gas | 3 | [58,59,60] |
Code | Township | Province/ Municipality | Code | Township | Province/ Municipality | Code | Township | Province/ Municipality |
---|---|---|---|---|---|---|---|---|
1 | Tiaodeng | Chongqing | 9 | Gaoxing | Sichuan | 17 | Dalucao | Guizhou |
2 | Qiantang | Chongqing | 10 | Gaoxing | Sichuan | 18 | Huangyang | Guizhou |
3 | Yanwo | Chongqing | 11 | Fangshan | Sichuane | 19 | Xinglong | Guizhou |
4 | Heishan | Chongqing | 12 | Fenshuiling | Sichuan | 20 | Yonging | Guizhou |
5 | Degan | Chongqing | 13 | Gaoleshan | Hubei | 21 | Xiazi | Guizhou |
6 | Tanghe | Chongqing | 14 | Tangya | Hubei | 22 | Chaole | Guizhou |
7 | Zhongliang | Chongqing | 15 | Qingping | Hubei | 23 | Lushi | Yunnan |
8 | Jiansheng | Chongqing | 16 | Dingzhai | Hubei | 24 | Fengshan | Yunnan |
Dimensions | Indicators | References |
---|---|---|
Economy | GDP per capita | [4,8,22] |
Gross output value of primary industry | [1,35] | |
Gross output value of secondary industry | [1,35] | |
Gross output value of third industry | [1,35] | |
Fixed asset investment per capita | [2,30] | |
Fiscal revenue | [8,35] | |
Per capita savings | [2,3,33] | |
Per capita disposable income of urban residents | [3,8,22] | |
Engel coefficient | [2,3] | |
Society | Urbanization rate | [11,30] |
Social insurance coverage | [8,35] | |
Urban unemployment rate | [2,22,35] | |
Mileage per capita | [2,22] | |
Environment | Arable land per capita | [2,63] |
Forest coverage rate | [2,8,35] | |
Air quality days up to standard rate | [3,30,64] | |
Green space coverage in built-up areas | [3,22] | |
Penetration rate of safe drinking water | [3,22] | |
Domestic garbage disposal rate | [2,3,4,8] | |
Domestic sewage treatment rate | [3,4,40] | |
Industrial sewage treatment rate | [3,4,63] | |
Compliance rate of industrial smoke emission | [2,7,24] | |
Treatment rate of industrial solid waste | [5,8,24] | |
Total end-use energy consumption per capita | [14] | |
Percentage of total end-use energy derived from renewable sources | [14,39] | |
Number of gas distribution service connections per 100,000 population (residential) | [14] |
Dimensions | Contribution Value (vij) | |||||
---|---|---|---|---|---|---|
Road (v1j) | Sewage (v2j) | Waste (v3j) | Water (v4j) | Gas (v5j) | ||
Economy | v11 | v21 | v31 | v41 | v51 | |
v12 | v22 | v32 | v42 | v52 | ||
v13 | v23 | v33 | v43 | v53 | ||
v14 | v24 | v34 | v44 | v54 | ||
v15 | v25 | v35 | v45 | v55 | ||
v16 | v26 | v36 | v46 | v56 | ||
v17 | v27 | v37 | v47 | v57 | ||
v18 | v28 | v38 | v48 | v58 | ||
v19 | v29 | v39 | v49 | v59 | ||
Society | v110 | v210 | v310 | v410 | v510 | |
v111 | v211 | v311 | v411 | v511 | ||
v112 | v212 | v312 | v412 | v512 | ||
v113 | v213 | v313 | v413 | v513 | ||
Environment | v114 | v214 | v314 | v414 | v514 | |
v115 | v215 | v315 | v415 | v515 | ||
v116 | v216 | v316 | v416 | v516 | ||
v117 | v217 | v317 | v417 | v517 | ||
v118 | v218 | v318 | v418 | v518 | ||
v119 | v219 | v319 | v419 | v519 | ||
v120 | v220 | v320 | v420 | v520 | ||
v121 | v221 | v321 | v421 | v521 | ||
v122 | v222 | v322 | v422 | v522 | ||
v123 | v223 | v323 | v423 | v523 | ||
v124 | v224 | v324 | v424 | v524 | ||
v125 | v225 | v325 | v425 | v525 | ||
v126 | v226 | v326 | v426 | v526 |
Dimensions | Indicators | Contribution Value (vij) | |||||
---|---|---|---|---|---|---|---|
Road (v1j) | Sewage (v2j) | Waste (v3j) | Water (v4j) | Gas (v5j) | |||
Economy | GDP per capita Ec1 | v11 | v21 | v31 | v41 | v51 | |
Gross output value of primary industry Ec2 | v12 | v22 | v32 | v42 | v52 | ||
Gross output value of secondary industry Ec3 | v13 | v23 | v33 | v43 | v53 | ||
Gross output value of third industry Ec4 | v14 | v24 | v34 | v44 | v54 | ||
Fiscal revenue Ec5 | v15 | v25 | v35 | v45 | v55 | ||
Per capita disposable income of urban residents Ec6 | v16 | v26 | v36 | v46 | v56 | ||
Society | Urbanization rate So1 | v17 | v27 | v37 | v47 | v57 | |
Social insurance coverage So2 | v18 | v28 | v38 | v48 | v58 | ||
Urban unemployment rate So3 | v19 | v29 | v39 | v49 | v59 | ||
Mileage per 10,000 people So4 | v110 | v210 | v310 | v410 | v510 | ||
Environment | Air quality days up to standard rate En1 | v111 | v211 | v311 | v411 | v511 | |
Penetration rate of safe drinking water En2 | v112 | v212 | v312 | v412 | v512 | ||
Domestic garbage disposal rate En3 | v113 | v213 | v313 | v413 | v513 | ||
Domestic sewage treatment rate En4 | v114 | v214 | v314 | v414 | v514 |
Indicators | Unit | Annual Statistics | ||||
---|---|---|---|---|---|---|
2019 | 2018 | 2017 | 2016 | 2015 | ||
Ec1 | ¥10,000 | 20.39 | 19.87 | 20.41 | 16.60 | 15.24 |
Ec2 | ¥10,000 | 640 | 680 | 684 | 441 | 519 |
Ec3 | ¥10,000 | 569,300 | 555,100 | 559,700 | 479,099 | 444,771 |
Ec4 | ¥10,000 | 31,500 | 37,300 | 42,600 | 10,080 | 9402 |
Ec5 | ¥10,000 | 3692.07 | 3832 | 3908.45 | 3228 | 2853 |
Ec6 | ¥10,000 | 41096 | 37,911 | 35,038 | 3.2057 | 2.9546 |
So1 | % | 75.5 | 59.6 | 51.3 | 90.82 | 89.97 |
So2 | % | 95 | 95 | 95 | 33.05 | 14.28 |
So3 | % | 1.55 | 2.13 | 2.2 | 1.29 | 2.67 |
So4 | km | 21 | 21 | 21 | 18.31 | 17.59 |
En1 | Day | 309 | 307 | 302 | 301 | 292 |
En2 | % | 100 | 100 | 100 | 99.9 | 99.8 |
En3 | % | 100 | 95 | 92 | 90.9 | 90 |
En4 | % | 100 | 100 | 100 | 97 | 97 |
Indicators | Contribution Value (vij) (%) | |||||
---|---|---|---|---|---|---|
Road (v1j) | Sewage (v2j) | Waste (v3j) | Water (v4j) | Gas (v5j) | ||
Ec1 | 0.06 | 100.00 | 66.67 | 66.67 | 82.22 | 75.56 |
Ec2 | 0.05 | 77.78 | 0.00 | 0.00 | 60.00 | 0.00 |
Ec3 | 0.05 | 97.78 | 75.56 | 64.44 | 91.11 | 82.22 |
Ec4 | 0.09 | 95.56 | 75.56 | 80.00 | 84.44 | 82.22 |
Ec5 | 0.05 | 84.44 | 68.89 | 60.00 | 77.78 | 66.67 |
Ec6 | 0.09 | 95.56 | 71.11 | 0.00 | 77.78 | 66.67 |
So1 | 0.06 | 80.00 | 71.11 | 73.33 | 71.11 | 71.11 |
So2 | 0.16 | 66.67 | 60.00 | 62.22 | 64.44 | 60.00 |
So3 | 0.06 | 77.78 | 57.78 | 57.78 | 60.00 | 57.78 |
So4 | 0.06 | 100.00 | 0.00 | 0.00 | 0.00 | 0.00 |
En1 | 0.05 | 0.00 | 0.00 | 82.22 | 0.00 | 82.22 |
En2 | 0.05 | 0.00 | 57.78 | 0.00 | 97.78 | 0.00 |
En3 | 0.09 | 0.00 | 0.00 | 100.00 | 0.00 | 0.00 |
En4 | 0.09 | 0.00 | 95.56 | 0.00 | 0.00 | 0.00 |
Weighted Value | 1.00 | 61.93 | 52.60 | 47.91 | 53.31 | 46.05 |
Rank | The Order According to Investigation | The Order According to SCOI | The Changes |
---|---|---|---|
1 | Road transport | Road transport | -- |
2 | Sewage treatment | Water supply | 2↑ |
3 | Waste disposal | Sewage treatment | 1↓ |
4 | Water supply | Waste disposal | 1↓ |
5 | Gas | Gas | -- |
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She, Y.; Hu, C.; Ma, D.; Zhu, Y.; Tam, V.W.Y.; Chen, X. Contribution of Infrastructure to the Township’s Sustainable Development in Southwest China. Buildings 2022, 12, 164. https://doi.org/10.3390/buildings12020164
She Y, Hu C, Ma D, Zhu Y, Tam VWY, Chen X. Contribution of Infrastructure to the Township’s Sustainable Development in Southwest China. Buildings. 2022; 12(2):164. https://doi.org/10.3390/buildings12020164
Chicago/Turabian StyleShe, Yujuan, Changling Hu, Dejun Ma, Yahui Zhu, Vivian W. Y. Tam, and Xiangjie Chen. 2022. "Contribution of Infrastructure to the Township’s Sustainable Development in Southwest China" Buildings 12, no. 2: 164. https://doi.org/10.3390/buildings12020164
APA StyleShe, Y., Hu, C., Ma, D., Zhu, Y., Tam, V. W. Y., & Chen, X. (2022). Contribution of Infrastructure to the Township’s Sustainable Development in Southwest China. Buildings, 12(2), 164. https://doi.org/10.3390/buildings12020164