Waste heat upgrading with high-temperature heat pumps for assisting steam generation in ships: Performance, cost and emissions benefits

被引:10
|
作者
Kosmadakis, George [1 ]
Meramveliotakis, George [1 ]
Bakalis, Panteleimon [2 ]
Neofytou, Panagiotis [1 ]
机构
[1] Natl Ctr Sci Res Demokritos, Inst Nucl & Radiol Sci & Technol Energy & Safety, Thermal Hydraul & Multiphase Flow Lab, Aghia Paraskevi, Greece
[2] R&D Dept, Psyctotherm, Piraeus, Greece
关键词
High-temperature heat pump; Waste heat recovery; Ships; Steam generation; Discounted payback period; Emissions; ORGANIC RANKINE-CYCLE; DROP-IN REPLACEMENT; SCROLL COMPRESSORS; PRESSURE-DROP; ORC; RECOVERY; OPTIMIZATION; MODEL; CONFIGURATIONS; R1233ZD(E);
D O I
10.1016/j.applthermaleng.2023.121890
中图分类号
O414.1 [热力学];
学科分类号
摘要
An alternative waste heat recovery technology is examined based on a high-temperature heat pump (HTHP) for heat upgrading in ships. This solution exploits the low-temperature heat of the cooling water of marine engines at 85 degrees C with two integration options, for either preheating the water before entering the auxiliary (steam) boiler or directly generating 6-bar steam for a vessel's needs. An electric-driven heat pump cycle is used with an economizer for increasing the Coefficient of Performance (COP) and the heating capacity, while reducing the discharge temperature of the compressor. An ultra-low GWP refrigerant (R1233zd(E)) with a high enough critical temperature is considered. The sizing parameters of the HTHP are examined with the use of a validated numerical model attempting to find the best match between high performance and short discounted payback period (PBP). The latter is estimated with appropriate cost correlations that relate the component sizing with the equipment cost, in order to calculate the total capital cost. The operating costs on the other hand depend on the net fuel savings, i.e. fuel savings minus the fuel required to generate the electricity for the heat pump, the fixed operating cost such as for maintenance and service and the fuel price. The net emissions savings of the HTHP are also examined in a variety of ship types and sizes, based on their typical specific factors. The results show that the proposed solution leads to significant net fuel savings especially in oil tankers and cruise ships, reducing the boiler's fuel consumption by up to 2.5%. But due to the low COP of the steam generation HTHP case of around 2, a very long PBP is achieved of over 20-30 years, whereas the preheat case always leads to a very short PBP of 2-6 years in all ship types, even though its capacity is low. Moreover, the net total emissions savings are significant especially for the preheat case, although additional fuel is consumed for producing electricity to drive the HTHP, while NOx and CO emissions are increased with the steam generation HTHP.
引用
收藏
页数:21
相关论文
共 50 条
  • [1] Reversible high-temperature heat pump/ORC for waste heat recovery in various ships: A techno-economic assessment
    Kosmadakis, George
    Neofytou, Panagiotis
    ENERGY, 2022, 256
  • [2] Techno-economic analysis of high-temperature heat pumps with low-global warming potential refrigerants for upgrading waste heat up to 150 °C
    Kosmadakis, George
    Arpagaus, Cordin
    Neofytou, Panagiotis
    Bertsch, Stefan
    ENERGY CONVERSION AND MANAGEMENT, 2020, 226
  • [3] District heating utilizing waste heat of a data center: High-temperature heat pumps
    Wang, Pengtao
    Kowalski, Steve
    Gao, Zhiming
    Sun, Jian
    Yang, Cheng-Min
    Grant, David
    Boudreaux, Philip
    Huff, Shean
    Nawaz, Kashif
    ENERGY AND BUILDINGS, 2024, 315
  • [4] Estimating the potential of industrial (high-temperature) heat pumps for exploiting waste heat in EU industries
    Kosmadakis, George
    APPLIED THERMAL ENGINEERING, 2019, 156 : 287 - 298
  • [5] Techno-economic optimization of high-temperature heat pumps for waste heat recovery
    Vannoni, Alberto
    Sorce, Alessandro
    Traverso, Alberto
    Massardo, Aristide Fausto
    ENERGY CONVERSION AND MANAGEMENT, 2023, 290
  • [6] Waste heat recovery of the hydrogen-water mixture from high-temperature water electrolysis by cascade heat pump for steam generation
    Fang, Zhicong
    Chen, Zhiguang
    Yang, Zekun
    Zhang, Shuhao
    ENERGY SCIENCE & ENGINEERING, 2023, 11 (09) : 3070 - 3081
  • [7] A review and perspective on industry high-temperature heat pumps
    Jiang, Jiatong
    Hu, Bin
    Wang, R. Z.
    Deng, Na
    Cao, Feng
    Wang, Chi-Chuan
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 161
  • [8] Performance evaluation of high-temperature heat pump systems for hot water and steam generation in food processing
    Ren, Shuai
    Ahrens, Marcel U.
    Hafner, Armin
    Widell, Kristina N.
    15TH IIR-GUSTAV LORENTZEN CONFERENCE ON NATURAL REFRIGERANTS, 2022, : 1091 - 1102
  • [9] Working Fluid Selection for High-Temperature Heat Pumps: A Comprehensive Evaluation
    Zini, Andrea
    Socci, Luca
    Vaccaro, Guglielmo
    Rocchetti, Andrea
    Talluri, Lorenzo
    ENERGIES, 2024, 17 (07)
  • [10] High-Temperature Heat Pumps for Industrial Use
    Bever, Paul-Michael
    Bless, Frederic
    Arpagaus, Cordin
    Bertsch, Stefan S.
    CHEMIE INGENIEUR TECHNIK, 2024, 96 (08) : 1071 - 1084