Coupling and Coordinated Development of Environmental Regulation and the Upgrading of Industrial Structure: Evidence from China’s 10 Major Urban Agglomerations
Abstract
:1. Introduction
2. Literature Review
3. Methodology
3.1. Explanation of Methodology Steps
3.2. Measurement of Environmental Regulation and the Industrial Structure Upgrading
3.3. Indicator Explanation
3.4. The Measurement of Formal, Informal Environmental Regulation and the Upgrading of Industrial Structure Comprehensive Index
3.5. The Measurement of Coupling and Coordination Degree (CCD)
3.6. Classification Criterion of Coupling and Coordination Degree
3.7. Modeling
3.7.1. The Construction of Baseline Regression Model
3.7.2. The Construction of the Panel Threshold Regression Model
4. The Calculation Results and Analysis of Coupling and Coordination Degree
4.1. Summarized Analysis of Coupling and Coordination Degree
4.2. Analysis of Coupling and Coordination Degree in Different Urban Agglomerations
5. Empirical Study
5.1. Analysis of Baseline Regression Results
5.2. Analysis of Panel Threshold Regression Model Results
6. Conclusions and Policy Implications
6.1. Improve the Environmental Regulatory Policy System
6.2. Formulate Differentiated Industry Development Policies
6.3. Emphasize the Synergy, Coordination, and Effectiveness of Various Policies
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A
Location | Urban Agglomeration | List of Cities |
---|---|---|
Eastern China | Beijing–Tianjin–Hebei | Beijing, Tianjin, Shijiazhuang, Tangshan, Qinhuangdao, Baoding, Zhangjiakou, Chengde, Cangzhou, Langfang, Xingtai, Handan, Hengshui |
Yangtze River Delta | Shanghai, Nanjing, Wuxi, Changzhou, Suzhou, Nantong, Yangzhou, Zhenjiang, Taizhou, Hangzhou, Ningbo, Jiaxing, Huzhou, Shaoxing, Zhoushan, Taizhou, Yancheng, Jinhua | |
Pearl River Delta | Guangzhou, Shenzhen, Zhuhai, Foshan, Jiangmen, Zhaoqing, Huizhou, Dongguan, Zhongshan | |
West Taiwan Strait | Fuzhou, Xiamen, Zhangzhou, Quanzhou, Putian, Ningde, Longyan, Sanming, Nanping, Wenzhou, Lishui, Quzhou, Shantou | |
Shandong Peninsula | Jinan, Qingdao, Yantai, Weifang, Zibo, Dongying, Weihai, Rizhao | |
Central and Southern Liaoning | Shenyang, Dalian, Anshan, Fushun, Benxi, Dandong, Liaoyang, Yingkou, Panjin, Tieling, Jinzhou, Fuxin, Huludao | |
Central China | Middle Reaches of Yangtze River | Wuhan, Huangshi, Ezhou, Huanggang, Xiaogan, Xian’ning, Jingmen, Jingzhou, Jiujiang, Yueyang, Xiangyang, Yichang, Changsha, Changde, Yiyang, Zhuzhou, Xiangtan, Deyang, Loudi, Nanchang, Jingdezhen, Yingtan, Shangrao, Xinyu, Fuzhou, Yichun, Pingxiang |
Western China | Central Plains | Zhenzhou, Luoyang, Kaifeng, Xinxiang, Jiaozuo, Xuchang, Pingdingshan, Luohe |
Chengdu–Chongqing | Chongqing, Chengdu, Zigong, Luzhou, Deyang, Mianyang, Suining, Neijiang, Leshan, Nanchong, Meishan, Yibin, Ya’an | |
Guanzhong Plain | Xi’an, Xianyang, Baoji, Weinan, Tongchuan |
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Step | Explanation | Method |
---|---|---|
Establishment of the Evaluation System | First, 6 variables and 2 variables were chosen to establish comprehensive indices for formal and informal environmental regulations, respectively. Next, the calculation of complex indices, including the rationalization of industrial structure and the optimization of industrial structure, was introduced. Finally, the process of the entropy method was described. | For the comprehensive indices system, please refer to Section 3.2 For an explanation of the indicators, please refer to Section 3.3 For the entropy method, please refer to Section 3.4 |
Calculation of Coupling and Coordination Degree | First, the coupling degree is calculated, followed by the calculation of the coupling coordination degree. Then, the classification criteria for the coupling coordination degree are established. | Coupling and coordination model (please refer to Section 3.5 and Section 3.6) |
Modelling | First, the baseline regression model is constructed. Then, the panel threshold regression model is constructed. | Fixed-effect model and panel threshold model (please refer to Section 3.7) |
Project Layer | Index Layer | Unit | Impact |
---|---|---|---|
Formal environmental regulation (FER) | Industrial wastewater discharge (x1) | metric tons | negative |
Industrial sulfur dioxide emissions (x2) | metric tons | negative | |
Industrial particulate matter emissions (x3) | metric tons | negative | |
Harmless disposal rate of household waste (x4) | % | positive | |
Comprehensive utilization rate of general industrial solid waste (x5) | % | positive | |
Centralized treatment rate of sewage treatment plant (x6) | % | positive | |
Informal environmental regulation (IER) | Educational attainment (x7) | / | positive |
Population density (x8) | positive | ||
Upgrading of industrial structure (IS) | Rationalization of industrial structure (RIS) | / | positive |
Optimization of industrial structure (OIS) | / | positive |
Range | Stage | Range | Stage |
---|---|---|---|
[0.000–0.100] | Extreme disorder | (0.500–0.600] | Reluctance coordination |
(0.100–0.200] | Serious disorder | (0.600–0.700] | Primary coordination |
(0.200–0.300] | Moderate disorder | (0.700–0.800] | Middle coordination |
(0.300–0.400] | Light disorder | (0.800–0.900] | Well coordination |
(0.400–0.500] | Near disorder | (0.900–1.000] | High coordination |
Year | FER | IER | CCD | Stage |
---|---|---|---|---|
2003 | 0.735 | 0.113 | 0.508 | Reluctance coordination |
2004 | 0.773 | 0.126 | 0.528 | Reluctance coordination |
2005 | 0.793 | 0.141 | 0.545 | Reluctance coordination |
2006 | 0.804 | 0.148 | 0.554 | Reluctance coordination |
2007 | 0.818 | 0.158 | 0.566 | Reluctance coordination |
2008 | 0.836 | 0.164 | 0.575 | Reluctance coordination |
2009 | 0.849 | 0.172 | 0.584 | Reluctance coordination |
2010 | 0.873 | 0.174 | 0.590 | Reluctance coordination |
2011 | 0.873 | 0.178 | 0.594 | Reluctance coordination |
2012 | 0.888 | 0.181 | 0.598 | Reluctance coordination |
2013 | 0.900 | 0.187 | 0.604 | Primary coordination |
2014 | 0.908 | 0.189 | 0.608 | Primary coordination |
2015 | 0.912 | 0.193 | 0.612 | Primary coordination |
2016 | 0.914 | 0.194 | 0.613 | Primary coordination |
2017 | 0.917 | 0.196 | 0.616 | Primary coordination |
2018 | 0.916 | 0.197 | 0.617 | Primary coordination |
2019 | 0.923 | 0.200 | 0.621 | Primary coordination |
Year | Urban Agglomerations | FER | IER | CCD | Stage |
---|---|---|---|---|---|
2003 | Yangtze River Delta | 0.848 | 0.155 | 0.583 | Reluctance coordination |
Pearl River Delta | 0.763 | 0.159 | 0.558 | Reluctance coordination | |
Beijing–Tianjin–Hebei | 0.633 | 0.115 | 0.501 | Reluctance coordination | |
Shandong Peninsula | 0.889 | 0.141 | 0.580 | Reluctance coordination | |
West Taiwan Strait | 0.774 | 0.093 | 0.480 | Near disorder | |
Middle Reaches of Yangtze River | 0.729 | 0.093 | 0.479 | Near disorder | |
Central Plains | 0.793 | 0.133 | 0.560 | Reluctance coordination | |
Guanzhong Plain | 0.689 | 0.117 | 0.476 | Near disorder | |
Central and Southern Liaoning | 0.635 | 0.076 | 0.446 | Near disorder | |
Chengdu–Chongqing | 0.617 | 0.086 | 0.466 | Near disorder | |
2019 | Yangtze River Delta | 0.964 | 0.237 | 0.668 | Primary coordination |
Pearl River Delta | 0.924 | 0.383 | 0.737 | Middle coordination | |
Beijing–Tianjin–Hebei | 0.893 | 0.194 | 0.628 | Primary coordination | |
Shandong Peninsula | 0.918 | 0.254 | 0.674 | Primary coordination | |
West Taiwan Strait | 0.959 | 0.146 | 0.575 | Reluctance coordination | |
Middle Reaches of Yangtze River | 0.929 | 0.173 | 0.591 | Reluctance coordination | |
Central Plains | 0.930 | 0.244 | 0.662 | Primary coordination | |
Guanzhong Plain | 0.915 | 0.187 | 0.578 | Reluctance coordination | |
Central and Southern Liaoning | 0.838 | 0.138 | 0.563 | Reluctance coordination | |
Chengdu–Chongqing | 0.929 | 0.149 | 0.591 | Reluctance coordination |
Overall | Group I | Group II | Group III | |
---|---|---|---|---|
ccd | 0.083 *** | 0.197 *** | 0.122 *** | 0.069 *** |
(7.14) | (4.04) | (4.75) | (3.83) | |
fixasset | 0.008 *** | 0.038 *** | 0.006 *** | 0.006 ** |
(5.75) | (9.35) | (2.63) | (2.37) | |
fdi | 0.026 | −0.030 * | 0.527 *** | −0.133 *** |
(1.43) | (−1.69) | (5.40) | (−3.53) | |
inform | −0.656 *** | −0.217 | −0.621 * | −2.694 *** |
(−4.95) | (−1.59) | (−1.76) | (−8.73) | |
agdp | −0.004 *** | −0.004 *** | 0.001 | −0.004 *** |
(−13.01) | (−11.88) | (1.24) | (−5.72) | |
lnpatent | 0.017 *** | 0.012 *** | 0.014 *** | 0.018 *** |
(31.32) | (14.07) | (13.53) | (18.61) | |
_cons | 0.449 *** | 0.079 *** | 0.630 *** | 0.658 *** |
(79.90) | (8.70) | (48.60) | (85.43) | |
Obs | 2159 | 731 | 663 | 765 |
R-squared | 0.997 | 0.902 | 0.915 | 0.936 |
Threshold Variables | Threshold Effects | Threshold Values | F-Statistics | p-Values | 10% Critical Values | 5% Critical Values | 1% Critical Values |
---|---|---|---|---|---|---|---|
FER | Single | 0.768 | 14.680 | 0.343 | 25.040 | 33.032 | 50.244 |
IER | Single | 0.398 | 50.150 | 0.030 | 38.926 | 44.234 | 63.983 |
FER as Threshold Variable | IER as Threshold Variable | |
---|---|---|
fixasset | 0.009 *** | 0.009 *** |
(6.47) | (6.40) | |
fdi | 0.021 | 0.030 * |
(1.14) | (1.67) | |
inform | −0.648 *** | −0.459 *** |
(−4.83) | (−3.35) | |
agdp | −0.003 *** | −0.003 *** |
(−11.17) | (−11.51) | |
lnpatent | 0.016 *** | 0.016 *** |
(29.75) | (29.43) | |
Ccd (FER ≤ 0.768) | 0.065 *** | |
(4.56) | ||
ccd (FER > 0.768) | 0.074 *** | |
(5.71) | ||
ccd (IER ≤ 0.398) | 0.114 *** | |
(9.52) | ||
ccd (IER > 0.398) | 0.087 *** | |
(7.44) | ||
_cons | 0.464 *** | 0.443 *** |
(69.62) | (76.90) | |
Obs | 2159 | 2159 |
R-squared | 0.599 | 0.605 |
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Zheng, X.; Liu, R.; Wang, H. Coupling and Coordinated Development of Environmental Regulation and the Upgrading of Industrial Structure: Evidence from China’s 10 Major Urban Agglomerations. Economies 2024, 12, 231. https://doi.org/10.3390/economies12090231
Zheng X, Liu R, Wang H. Coupling and Coordinated Development of Environmental Regulation and the Upgrading of Industrial Structure: Evidence from China’s 10 Major Urban Agglomerations. Economies. 2024; 12(9):231. https://doi.org/10.3390/economies12090231
Chicago/Turabian StyleZheng, Xiaozhou, Renming Liu, and Huiping Wang. 2024. "Coupling and Coordinated Development of Environmental Regulation and the Upgrading of Industrial Structure: Evidence from China’s 10 Major Urban Agglomerations" Economies 12, no. 9: 231. https://doi.org/10.3390/economies12090231
APA StyleZheng, X., Liu, R., & Wang, H. (2024). Coupling and Coordinated Development of Environmental Regulation and the Upgrading of Industrial Structure: Evidence from China’s 10 Major Urban Agglomerations. Economies, 12(9), 231. https://doi.org/10.3390/economies12090231