Estimation of waste heat and its recovery potential from energy-intensive industries

被引:23
|
作者
Saha, Bipul Krishna [1 ]
Chakraborty, Basab [1 ]
Dutta, Rohan [2 ]
机构
[1] Indian Inst Technol Kharagpur, Rajendra Mishra Sch Engn Entrepreneurship, Paschim Medinipur 721302, W Bengal, India
[2] Indian Inst Technol Kharagpur, Cryogen Engn Ctr, Paschim Medinipur 721302, W Bengal, India
关键词
Waste heat recovery; Industrial waste heat; Heat recovery technologies; Energy efficiency; Organic Rankine cycle; ORGANIC RANKINE-CYCLE; POWER-GENERATION; OFC; EFFICIENCY; RESOURCE; SECTOR;
D O I
10.1007/s10098-020-01919-7
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The recovery and reuse of waste heat offers a significant opportunity for any country to reduce its overall primary energy usage. Reuse of waste heat improves the ambient air quality by reducing both industrial pollution and greenhouse gas emissions from industries. This paper presents an estimation of thermal waste heat potential in five energy-intensive industrial sectors (i.e., iron and steel, chemical and petrochemical, paper and pulp, cement, and glass), based on data available in the extant literature and government reports. The findings show that both the chemical and petrochemical industries have the highest theoretical waste heat to power generation capacity for the selected industries. In addition, six individual plant data were collected for case study to determine their waste heat potentials. These estimates were further used to identify the power generation potential using the organic Rankine cycle based on economic advantages, whereby the iron and steel industries were found to have the maximum power generation potential of 66.5 TWh using its waste heat. [GRAPHICS] .
引用
收藏
页码:1795 / 1814
页数:20
相关论文
共 50 条
  • [1] Estimation of waste heat and its recovery potential from energy-intensive industries
    Bipul Krishna Saha
    Basab Chakraborty
    Rohan Dutta
    Clean Technologies and Environmental Policy, 2020, 22 : 1795 - 1814
  • [2] Renewable Power and Heat for the Decarbonisation of Energy-Intensive Industries
    Carmona-Martinez, Alessandro A.
    Fresneda-Cruz, Alejandro
    Rueda, Asier
    Birgi, Olgu
    Khawaja, Cosette
    Janssen, Rainer
    Davidis, Bas
    Reumerman, Patrick
    Vis, Martijn
    Karampinis, Emmanouil
    Grammelis, Panagiotis
    Jarauta-Cordoba, Clara
    PROCESSES, 2023, 11 (01)
  • [3] Exploring Flexibility Potential of Energy-Intensive Industries in Energy Markets
    Luciani, Laureana
    Cruz, Juliana
    Ballestin, Victor
    Mselle, Boniface Dominick
    ENERGIES, 2024, 17 (12)
  • [4] District heating potential in the case of low-grade waste heat recovery from energy intensive industries
    Cioccolanti, Luca
    Renzi, Massimiliano
    Comodi, Gabriele
    Rossi, Mose
    APPLIED THERMAL ENGINEERING, 2021, 191
  • [5] Waste Heat Recovery Unit for Energy Intensive Industries Thermoelectricity Harvesting
    Oliver, J.
    Malet, R.
    Aragones, R.
    Voces, R.
    Ferrer, C.
    2020 IEEE 29TH INTERNATIONAL SYMPOSIUM ON INDUSTRIAL ELECTRONICS (ISIE), 2020, : 1079 - 1084
  • [6] Techno-economic potential of waste heat recovery from German energy-intensive industry with Organic Rankine Cycle technology
    Pili, R.
    Martinez, L. Garcia
    Wieland, C.
    Spliethoff, H.
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 134
  • [7] ORC waste heat recovery in European energy intensive industries: Energy and GHG savings
    Campana, F.
    Bianchi, M.
    Branchini, L.
    De Pascale, A.
    Peretto, A.
    Baresi, M.
    Fermi, A.
    Rossetti, N.
    Vescovo, R.
    ENERGY CONVERSION AND MANAGEMENT, 2013, 76 : 244 - 252
  • [8] Acceptance Strategies in the energy-intensive Industries
    不详
    WOCHENBLATT FUR PAPIERFABRIKATION, 2023, 151 (04): : 64 - 64
  • [9] Key Factor energy-intensive Industries
    Kerber, Markus
    STAHL UND EISEN, 2012, 132 (10): : 71 - 71
  • [10] CDM potential in the power-generation and energy-intensive industries of China
    Yamaguchi, M
    CLIMATE POLICY, 2005, 5 (02) : 167 - 184