Coupling and Coordinated Development of Carbon Emission Efficiency in Industrial Enterprises and the Digital Economy: Empirical Evidence from Anhui, China
Abstract
:1. Introduction
- Industrial enterprises’ carbon emission system and digital economy system can be seen as two complex systems that involve multidimensional indicators, multisource factors, and multiple units of measure. Hence, there is an urgent need for precise measurement and assessment of both industrial enterprises’ carbon emission efficiency and the digital economy, as this is crucial for fostering their coordinated development.
- Many factors influence the coordinated development of the two systems. Scientifically conducting data processing and model development is paramount for formulating targeted strategies that can enhance industrial enterprises’ carbon emission efficiency and facilitate the growth of the digital economy.
- Given the variations in regional resource endowments, as well as the differing levels of industrial enterprises’ and digital economy’s development, it is imperative to devise tailored policies and countermeasures for carbon emission reduction and the digital economy growth, taking into account local specificities.
2. Materials and Methods
2.1. Research Framework
2.2. Index System
2.3. Data Collection and Processing
2.4. Calculating Carbon-Emission Intensity
2.5. Calculating Index Weights of the Digital Economy System
3. Data Modeling
3.1. Calculation Model for Carbon-Emission Efficiency
3.2. Development-Level Measuring Model
3.3. Model of Coupling Degree and Coupling-Coordination Degree
3.4. Data Application
4. Results
4.1. Study Case Introduction
4.2. Analyzing Carbon-Emission Efficiency
4.3. Assessment and Analysis of the Digital-Economy Development-Level Measurement Outcomes
4.4. Analysis of Coupling Coordination between Carbon Emission Efficiency and the Digital Economy
5. Discussion
6. Suggestions
6.1. Suggestions on Coupling and Coordinated Low-Carbon Development of Industrial Enterprises and the Digital Economy for Anhui, China
6.1.1. Enhance Industrial Enterprises’ Carbon Emission Efficiency and Boost the Comprehensive Development of the Digital Economy
6.1.2. Intensify Efforts to Accelerate the Digital Economy’s Growth, with a Particular Focus on Industrial Digitization
6.1.3. Promote Coupling and Coordinated Development of Industrial Enterprises’ Carbon Emission Efficiency and the Digital Economy
6.2. Suggestions on Coupling and Coordinated Low-Carbon Development of Industrial Enterprises and the Digital Economy for Countries or Regions
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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System | Primary Index | Variables and Interpretation | Code | Positive/ Negative |
---|---|---|---|---|
Industrial enterprises’ carbon emission efficiency (U1) | Input (U11) | Average asset investment of industrial enterprises above designated size (CNY 100 million) (Total assets divided by enterprise’s count) | + | |
Average count of industrial enterprises’ employees (10,000 persons/unit) | + | |||
Total energy consumption of industrial enterprises above designated size (10,000 tons of standard coal) (Yearly consumption) | − | |||
Expected output (U12) | Profits of industrial enterprises above designated size (CNY 100 million) (Yearly profit) | + | ||
Non-expected output (U13) | Carbon emission intensity of industrial enterprises above designated size (10,000 tons/CNY 100 million) (Carbon emissions divided by output value) | − | ||
Digital economy system (U2) | Digital infrastructure (U21) | Internet penetration (%) (Proportion of Internet users to the total resident population) | + | |
Total telecommunications business (CNY 100 million) (Total amount of various telecommunication services provided by telecommunication enterprises to the society, expressed in monetary form) | + | |||
Cell phone penetration rate (units/100 persons) (The proportion of the population using mobile phones) | + | |||
Domain names per capita (PCs) (Current total number of the statistical year) | + | |||
Count of per capita web pages (Current total number of the statistical year) | + | |||
Digital industry (U22) | Percentage of software revenue in GDP (%) (Software revenue divided by GDP) | + | ||
The proportion of GDP derived from information transmission, software, and information technology services revenue (%) (Revenue divided by GDP) | + | |||
The proportion of GDP derived from computer communications and other electronic equipment manufacturing revenues (%) (Revenue divided by GDP) | + | |||
Investment in fixed assets for information services (CNY 100 million) (Annual amount of new investment) | + | |||
Employment in the information transmission, software, and information technology services sector (10,000 persons) (Total employment in statistical year) | + | |||
Profit in the computer, communication, and other electronic equipment manufacturing industry (CNY 100 million) (Yearly profit) | + | |||
Digital technology innovation (U23) | Employees working in the scientific research and technical services sector (10,000 persons) (Total employment in statistical year) | + | ||
Expenditure on research and experimental development (CNY 100 million) (Yearly expenditure) | + | |||
Number of qualifications of bachelor’s degree or above (person) (Total number in statistical year) | + | |||
The count of patent applications (items/10,000 persons) (Annual number of new applications) | + | |||
The percentage of GDP contributed by the output value of scientific research and technical services (yearly value divided by GDP) | + | |||
Industrial digitization (U24) | The number of computers for every 100 people (units) (Number of computers divided by the number of people) | + | ||
The number of websites operated by every 100 companies (Number of pages divided by the number of people) | + | |||
Sales generated through electronic commerce (CNY 100 million) (Revenue from e-commerce transactions in statistical year) | + | |||
Number of e-commerce enterprises | + | |||
E-commerce purchases (CNY 100 million) (The value of purchases made through electronic commerce in the statistical year) | + |
Fossil Fuel | SCC | CEF |
---|---|---|
coal | 0.7143 | 0.7559 |
coke | 0.9714 | 0.855 |
crude oil | 1.4286 | 0.5538 |
gasoline | 1.4714 | 0.5921 |
diesel | 1.4571 | 0.6185 |
natural gas | 1.33 | 0.4483 |
CL | Coupling Phase | Coupling Specification | D | Coordination Level |
---|---|---|---|---|
(0.0, 0.3] | Low coupling | Coupling gradually | (0.0, 0.1] | Severely discordant |
(0.1, 0.2] | Severe discordant | |||
(0.2, 0.3] | Moderate discordant | |||
(0.3, 0.6] | Antagonism | Certain degree of development | (0.3, 0.4] | Mild discordant |
(0.4, 0.5] | Borderline discordant | |||
(0.5, 0.6] | Barely coordinated | |||
(0.6, 0.8] | Running-in | Good coupling development | (0.6, 0.7] | Primary coordination |
(0.7, 0.8] | Intermediate coordination | |||
(0.8, 1.0] | High coupling | Mutually reinforcing development | (0.8, 0.9] | Well-coordinated |
(0.9, 1.0] | Highly coordinated |
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Hu, F.; Liu, H.; Guo, Y.; Ding, H.; Wang, K. Coupling and Coordinated Development of Carbon Emission Efficiency in Industrial Enterprises and the Digital Economy: Empirical Evidence from Anhui, China. Sustainability 2024, 16, 6248. https://doi.org/10.3390/su16146248
Hu F, Liu H, Guo Y, Ding H, Wang K. Coupling and Coordinated Development of Carbon Emission Efficiency in Industrial Enterprises and the Digital Economy: Empirical Evidence from Anhui, China. Sustainability. 2024; 16(14):6248. https://doi.org/10.3390/su16146248
Chicago/Turabian StyleHu, Fagang, Hongjun Liu, Yuxia Guo, Heping Ding, and Kun Wang. 2024. "Coupling and Coordinated Development of Carbon Emission Efficiency in Industrial Enterprises and the Digital Economy: Empirical Evidence from Anhui, China" Sustainability 16, no. 14: 6248. https://doi.org/10.3390/su16146248
APA StyleHu, F., Liu, H., Guo, Y., Ding, H., & Wang, K. (2024). Coupling and Coordinated Development of Carbon Emission Efficiency in Industrial Enterprises and the Digital Economy: Empirical Evidence from Anhui, China. Sustainability, 16(14), 6248. https://doi.org/10.3390/su16146248