Academic literature on the topic 'Chint Electric Co'

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Journal articles on the topic "Chint Electric Co"

1

Yuldoshev, Isroil, Sanjar Shoguchkarov, Tulqin Jamolov, and Shakhnoza Rustamova. "Features of operation of the grid connected photovoltaic power station with a capacity of 10 kW." E3S Web of Conferences 216 (2020): 01172. http://dx.doi.org/10.1051/e3sconf/202021601172.

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Photovoltaic power station (PPS) operating function (without redundancy) with a nominal capacity of 10 kW connected to the low voltage electrical network established by "Zhejiang Chint Electrics Co Ltd" (PRC) under Tashkent conditions is defined. Operation parameters and characteristics of the PPS and parameters at the output of the network inverter are given. The deviations of voltage of each phase from the standard nominal voltage at the point of electric network transmission are studied. The analysis of the results of the evaluation of the power generation of the PPS for the conditions of clear weather and clear cloudiness was carried out. According to the monitoring data for the winter period is 2211,5 kW·h. The problems of PPS connected to the low-voltage network, connected to the loss of electric power with the account of influence of external factors and reliability of stable voltage and frequency in a permissible range are revealed.
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2

Jin, Fengliang. "On the environmental civil public interest litigation system for the protection of the climate in China: Comments on two cases from a pragmatism perspective." Journal of World Energy Law & Business 14, no. 1 (2021): 17–24. http://dx.doi.org/10.1093/jwelb/jwab006.

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Abstract This article examines and analyses the environmental civil public interest litigation system in the protection of climate change in China through two cases, the All-China Environment Protection Federation v Zhenhua Co, Ltd for air pollution and Friends of Nature v State Grid Gansu Electric Power Corporation for full-purchase of all on-grid power produced by renewable energy.
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3

Kaiser, Stefan H. "Local Sourcing in China: The Case of Braun Electric (Shanghai) Co. Ltd." Asia Pacific Business Review 3, no. 3 (1997): 64–86. http://dx.doi.org/10.1080/13602389700000004.

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4

Chiba, D., and T. Ono. "ChemInform Abstract: Control of Magnetism in Co by an Electric Field." ChemInform 44, no. 43 (2013): no. http://dx.doi.org/10.1002/chin.201343259.

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5

Jiang, Ping, Adila Alimujiang, Hongjia Dong, and Xiaoyu Yan. "Detecting and Understanding Synergies and Co-Benefits of Low Carbon Development in the Electric Power Industry in China." Sustainability 12, no. 1 (2019): 297. http://dx.doi.org/10.3390/su12010297.

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China’s electric power industry contributes a significant amount of carbon emissions as well as air pollutants such as SO2, NOx, and fine particles. In order to detect co-benefits of carbon reduction and air pollution control, this study analyzed the emission reduction, emission reduction factors, and synergistic effect factors of technical and structural emission reduction measures in the electric power industry in the Jiangsu, Zhejiang, and Yunnan provinces and Shanghai City. The main findings are: (1) the structural emission reduction measures in all four regions had positive co-control effects. Therefore, promoting renewables can achieve remarkable co-benefits; (2) the result demonstrated that the direct removal ability of pollutants by technical emission reduction measures was better than the structural emission reduction measures in all four case studies. However, there were no or few carbon reduction co-benefits associated with their utilization; (3) in all cases, CO2 had the highest emission factor value, which means that there is still room for synergistic carbon reduction; (4) air pollutants and CO2 emission intensity from the Yunnan power plants were much higher than that of the other three regions. In order to achieve the overall co-benefits, co-control measures should be promoted and strengthened in western areas such as Yunnan.
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6

Sui, Jigang, and Ying Liu. "Co-Evolution of Technology and Institutions in Emerging Industries: Case from Electric Vehicles in China." Journal of Industrial Integration and Management 05, no. 01 (2020): 13–31. http://dx.doi.org/10.1142/s2424862219500143.

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Technology and institutions are important driving forces for industrial development, but the relationship between them has not yet reached a consensus due to different economic theories. On the basis of the evolutionary theory, this paper aims to study the roles co-evolution of technology and institutions played in the development of emerging industry. Taking electric vehicles in China as a case study and the five-year plans for the nodes of industrial development, this paper analyzes the co-evolutionary process of technology and institutions at different stages of industrial development, and concludes that it was institutions that promoted technology innovation during the industrial incubation and infancy periods, while during the growth period, it was technology that drove institutions’ innovation. In order to promote the development of electric vehicle industry, it is necessary to further strengthen institutional innovation for technological and industrial development.
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7

Wang, Jin, Min Li, and Wei Heng Yan. "The Engineering Application of CO2 Capture by Chemical Absorption in China." Advanced Materials Research 512-515 (May 2012): 2457–62. http://dx.doi.org/10.4028/www.scientific.net/amr.512-515.2457.

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With the increasing concentration of CO2 in the atmosphere, climate change has been prominent and brought a series of disasters to human being. In China, the important aspect to control CO2 concentration is to decrease its emission of coal-fuel power plant. The engineering application of chemical absorption technology and economic analysis of the Beijing Gao Bei-dian and the second unit of Shanghai Shi Dong-kou power plants built by China Hua Neng Electric Group is introduced. The achievements of CO2 engineering capture and the effort direction we will towards in the future is also summarized.
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8

Lucinski, Tadeusz, and Piotr Chomiuk. "ChemInform Abstract: Magnetic and Electric Properties of (Fe, Co)/(Si, Ge) Multilayers." ChemInform 43, no. 49 (2012): no. http://dx.doi.org/10.1002/chin.201249227.

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9

Sapee, Syazwana, Daing Mohamad Nafiz, Ahmad Fitri Yusop, et al. "A review on electric two wheelers." MATEC Web of Conferences 225 (2018): 03014. http://dx.doi.org/10.1051/matecconf/201822503014.

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South East Asian cities such as Kuala Lumpur, Jakarta and Bangkok rely heavily on motorcycles. A huge number of urban residents depend on motorcycles for all types of activities such as working, ridehailing and delivery services, going to school or leisure. According to Malaysia Automotive Association (MMA) statistics, there are about 13 million registered motorcycles in Malaysia as of August 2017. The pollutants that a four-stroke-engine 50 cc motorcycle emits per kilometre are usually much higher than a 2-litre passenger car; 2.7 times higher for CO and 6.7 times higher for HC and NOX. Controlling excessive air pollution and emissions levels generated by the use of a motorcycle is one of the keys to improving air quality. Electric two-wheelers have been well adopted in Asia Pacific countries like China and Taiwan. This paper provides extensive review and analysis on development history, environmental and mobility impacts, challenge and limitation of electric two-wheelers from around the world and the potential of its emergence in Malaysia.
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10

Huang, Chao, Xiu Qin Ma, Feng Yun Jin, and Liu Wen Su. "Co-Benefit Research on IGCC Technology Used in the Power Plant." Advanced Materials Research 726-731 (August 2013): 983–87. http://dx.doi.org/10.4028/www.scientific.net/amr.726-731.983.

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China has mainly power generation capacity of coal-fired power plants. Coal-fired power plants account for about 80% of total power generation capacity in total annually. It will inevitably lead to a large amount of pollutant emissions, therefore, IGCC technology is particularly important to promote. This paper intends to analysize the environmental benefit and economic benefit of the IGCC technology used in the power plant based on the developed methodology. The purpose is to understand the advantages of IGCC technology for energy conservation and emissions reduction in the electric power industry to provide better technical references.
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