Rational design process for gas turbine exhaust to supercritical CO2 waste heat recovery heat exchanger using topology optimization

被引:0
|
作者
Adil N. [1 ]
Dryepondt S.N. [2 ]
Kulkarni A. [3 ]
Geoghegan P.J. [4 ]
Zhang X. [1 ]
Alkandari A. [1 ]
Rattner A.S. [1 ]
机构
[1] The Pennsylvania State University, State College, 16802, PA
[2] Oak Ridge National Laboratory, Oak Ridge, 37830, TN
[3] Siemens Corporation, Charlotte, 28273, NC
[4] Oregon State University, Corvallis, 97331, OR
基金
美国国家科学基金会;
关键词
Additive manufacturing; Heat exchanger; Supercritical carbon dioxide; Topology optimization;
D O I
10.1016/j.applthermaleng.2023.121670
中图分类号
学科分类号
摘要
Advances in additive manufacturing (AM) technologies and topology optimization methodologies are enabling sophisticated novel designs for heat exchanger performance. These tools have been demonstrated for development of high-performance heat sinks considering local or component-level performance factors (e.g., heat transfer per volume). To leverage such capabilities in larger-scale energy systems, structured design methodologies are needed that consider system-level factors, such as production cost, cycle-level efficiency, and operational constraints. This study seeks to develop and assess a rational approach for designing thermo-economically optimal heat exchangers for such applications. The methodology is illustrated through development of the Primary Heat Exchanger (PHX) for a supercritical carbon dioxide (sCO2) power cycle recovering exhaust heat from a 6 MW-scale natural gas turbine. The proposed approach begins with a detailed thermodynamic cycle model, which is then extended to account for techno-economics. Next, an optimal PHX heat transfer capacity target is identified, and a high-level geometry is selected based on operating characteristics. This geometry is then divided into repeating 2D prismatic unit cells, for which topology optimization is applied to identify high-performance heat transfer geometries. A key aspect of this process is that the unit cell geometries are optimized using the total PHX mass as the objective function, which represents a surrogate for production cost. This leads to distinct designs compared with approaches that optimize local heat transfer and flow resistance factors. A second topology-optimized design is developed using a representative local thermal-fluid performance objective function and is found to require 1.6× the mass of the design generated with the system-level techno-economic objective for the same unit cell size. Conventional-type PHX designs with simple longitudinally finned tubes are developed for comparison, and are found to require total masses 1.5× or greater than the design obtained with the proposed process. Integrating this approach with detailed additive manufacturing costing models and experimentally validated fabrication constraints can yield a streamlined workflow for HX design for future energy systems. © 2023 Elsevier Ltd
引用
收藏
相关论文
共 50 条
  • [31] EFFECTS OF SUPERCRITICAL CO2 FLUID PROPERTIES ON HEAT EXCHANGER DESIGN
    Lugo, Afonso
    Turunen-Saaresti, Teemu
    Tiainen, Jonna
    PROCEEDINGS OF ASME TURBO EXPO 2023: TURBOMACHINERY TECHNICAL CONFERENCE AND EXPOSITION, GT2023, VOL 12, 2023,
  • [32] Performance analysis of the combined supercritical CO2 recompression and regenerative cycle used in waste heat recovery of marine gas turbine
    Hou, Shengya
    Wu, Yuandan
    Zhou, Yaodong
    Yu, Lijun
    ENERGY CONVERSION AND MANAGEMENT, 2017, 151 : 73 - 85
  • [33] Development and experimental study of a supercritical CO2 axial turbine applied for engine waste heat recovery
    Huang, Guangdai
    Shu, Gequn
    Tian, Hua
    Shi, Lingfeng
    Zhuge, Weilin
    Zhang, Jing
    Atik, Mohammad Atikur Rahman
    APPLIED ENERGY, 2020, 257
  • [34] Thermodynamic Analysis on the Combined Supercritical CO2/Organic Flash Cycle for Waste Heat Recovery from Shipborne Gas Turbine
    Wang X.
    Wang S.
    Wu C.
    Liu Y.
    Sun X.
    Chen D.
    Hsi-An Chiao Tung Ta Hsueh/Journal of Xi'an Jiaotong University, 2019, 53 (11): : 71 - 78
  • [35] Performance analysis and optimization of supercritical CO2 Brayton cycle waste heat recovery system
    Yu T.-F.
    Song L.
    Zhejiang Daxue Xuebao (Gongxue Ban)/Journal of Zhejiang University (Engineering Science), 2023, 57 (02): : 404 - 414
  • [36] Supercritical CO2 Cycle System Optimization of Marine Diesel Engine Waste Heat Recovery
    Hou, Shengya
    Zhang, Wenping
    Zeng, Ziwei
    Ji, Jiachen
    PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON ADVANCES IN ENERGY, ENVIRONMENT AND CHEMICAL ENGINEERING, 2015, 23 : 178 - 183
  • [37] Heat exchanger simulation and recovery device design of waste heat boiler of gas turbine generator set on ocean platform
    Duan, Aixia
    Zhihuang, Yong
    Duan, Yanling
    Wang, Qiuhong
    JOURNAL OF INTELLIGENT & FUZZY SYSTEMS, 2020, 38 (02) : 1257 - 1263
  • [38] Plate heat exchanger design for the utilisation of waste heat from exhaust gases of drying process
    Arsenyeva, Olga
    Klemes, Jiri Jaromir
    Kapustenko, Petro
    Fedorenko, Olena
    Kusakov, Sergiy
    Kobylnik, Dmytro
    ENERGY, 2021, 233
  • [39] WASTE HEAT RECOVERY FROM THE EXHAUST OF A DIESEL GENERATOR USING SHELL AND TUBE HEAT EXCHANGER
    Hossain, Shekh N.
    Bari, Saiful
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2013, VOL 6A, 2014,
  • [40] Thermoeconomic analysis of improved exhaust waste heat recovery system for natural gas engine based on Vortex Tube heat booster and supercritical CO2 Brayton cycle
    Maestre-Cambronel, Daniel
    Barros, Joel Guzman
    Gonzalez-Quiroga, Arturo
    Bula, Antonio
    Duarte-Forero, Jorge
    SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2021, 47