Pollutant emission reduction of energy efficiency enhancement and energy cascade utilization in an energy-intensive industrial park in China

被引:13
|
作者
Ji, Jialin [1 ]
Wang, Shanshan [1 ]
Ma, Yilan [1 ]
Lu, Chunyang [1 ]
Liang, Tian [1 ]
Zhang, Ruiqin [1 ]
机构
[1] Zhengzhou Univ, Coll Chem, Sch Ecol & Environm, 100 Sci Ave, Zhengzhou 450001, Henan, Peoples R China
关键词
Energy saving; Emission reduction of air pollutants; CALPUFF model; Energy cascade utilization; Energy conservation supply curve; Air quality; WASTE HEAT; RECOVERY; IMPROVEMENT; DESIGN; IRON;
D O I
10.1007/s11356-020-09158-5
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Industrial parks play an extremely important role in the rapid development of China's economy. However, as the backbone of China's economic development, industrial parks also consume huge energy resources and cause serious pollution to the environment, making China face greater pressure on environmental issues. This article takes the Yongcheng Economic and Technological Development Area, a typical energy-intensive industrial park in Henan Province, as the research object to analyze its energy saving and emission reduction potential. Three scenarios (baseline scenario, energy cascade utilization scenario, and energy efficiency technology enhancement scenario) are set to quantify the energy-saving potential and air pollutant emission reduction of the park under different scenarios. The results show that in the energy cascade utilization scenario, by realizing the recycling of waste heat resources from heat source enterprises, it can bring energy saving of 6385 TJ, and reduce 0.35 kt SO2, 0.79 kt NOx, 0.067 kt PM10, and 0.035 kt PM2.5. And CO(2)emission reductions have reached 604 kt. In the energy efficiency technology enhancement scenario, by eliminating relatively backward technologies and adding advanced energy-saving technologies, 7306 TJ energy saving could be achieved. SO2, NOx, PM10, PM2.5, and CO(2)emission reductions are 0.37, 0.82, 0.038, 0.071, and 719 kt, respectively. The results of the CALPUFF model indicate that the pollutant concentrations of SO2, NOx, PM10, and PM(2.5)in the spring and autumn are relatively high, while those in the summer and winter seasons are relatively low. In four seasons, the highest 1-h average concentration and dispersion range of four pollutants have been reduced both in the energy cascade utilization scenario and in the efficiency technology enhancement scenario.
引用
收藏
页码:35017 / 35030
页数:14
相关论文
共 50 条
  • [41] Efficiency in an intensive energy industrial consumer
    Galvão J.
    Nabais A.
    Galvão M.
    Candeias J.
    Pereira T.
    Ramos J.
    1600, European Association for the Development of Renewable Energy, Environment and Power Quality (EA4EPQ) (18): : 599 - 602
  • [42] Energy efficiency in energy-intensive industries-an evaluation of the Swedish voluntary agreement PFE
    Stenqvist, Christian
    Nilsson, Lars J.
    ENERGY EFFICIENCY, 2012, 5 (02) : 225 - 241
  • [43] Can China's industrial sector achieve energy conservation and emission reduction goals dominated by energy efficiency enhancement? A multi-objective optimization approach
    He, Yong
    Liao, Nuo
    Lin, Kunrong
    ENERGY POLICY, 2021, 149
  • [44] ENERGY-CONSUMPTION NORMS INCREASE EFFICIENCY OF ENERGY CARRIER USE IN NEW ENERGY-INTENSIVE PLANS AND PROCESSES
    SCHWENKER, G
    ENERGIETECHNIK, 1978, 28 (05): : 169 - 171
  • [45] Decoupling of industrial energy consumption and CO2-emissions in energy-intensive industries in Scandinavia
    Enevoldsen, Martin K.
    Ryelund, Anders V.
    Andersen, Mikael Skou
    ENERGY ECONOMICS, 2007, 29 (04) : 665 - 692
  • [46] Bilevel optimal dispatch model for a peak regulation ancillary service in an industrial park of energy-intensive loads
    Lin, Shunfu
    He, Tianhang
    Shen, Yunwei
    Qian, Liang
    Li, Dongdong
    Li, Fangxing
    ELECTRIC POWER SYSTEMS RESEARCH, 2024, 230
  • [47] Measuring the efficiency of energy-intensive industries across European countries
    Makridou, Georgia
    Andriosopoulos, Kostas
    Doumpos, Michael
    Zopounidis, Constantin
    ENERGY POLICY, 2016, 88 : 573 - 583
  • [48] Regional integrated energy system energy management in an industrial park considering energy stepped utilization
    Zhu, Xu
    Yang, Jun
    Pan, Xueli
    Li, Gaojunjie
    Rao, Yingqing
    ENERGY, 2020, 201
  • [49] Implications of an energy efficiency obligation scheme for the Swedish energy-intensive industries: an evaluation of costs and benefits
    Maria Xylia
    Semida Silveira
    Johannes Morfeldt
    Energy Efficiency, 2017, 10 : 151 - 169
  • [50] Size reduction of solids: An energy-intensive and highly inefficient process
    Kalman, H
    Grant, E
    ENERGY AND ENVIRONMENT: TECHNOLOGICAL CHALLENGES FOR THE FUTURE, 2001, : 207 - 220