Route-to-market strategy for low-carbon hydrogen from natural gas in the Permian Basin

被引:3
|
作者
Lin, Ning [1 ]
Chen, Yayun [2 ]
Madariaga, Maria P. [3 ]
机构
[1] Univ Texas Austin, Bur Econ Geol, Austin, TX 78712 USA
[2] Texas A&M Univ, Dept Agr Econ, College Stn, TX USA
[3] Univ Texas Austin, Energy & Earth Resources Program, Austin, TX USA
关键词
Value chain; Techno-economic analysis; Transportation; Geological storage; Large-scale hydrogen production; Delivery pathway; SWOT analysis; STORAGE; CAPTURE; DELIVERY;
D O I
10.1016/j.fuel.2023.129420
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
This paper investigates the untapped potential of the Permian Basin, a multifaceted energy axis in Texas and adjoining states, in the emerging era of decarbonization. Aligned with current policy directives on regional hydrogen hubs, this study explores the viability of developing a hydrogen energy hub in the Permian Basin, thereby producing low-carbon intensity hydrogen from natural gas in the Basin and transporting it to the Greater Houston area. Diverging from existing literature, this study provides an integrated techno-economic evaluation of the entire hydrogen value chain in the Permian Basin, encompassing production, storage, and transportation. Furthermore, it comparatively analyzes the scenario of interest against an optimized base scenario, thereby underlining comparative advantages and disadvantages. The paper concludes that the delivered cost of Permian-based low-carbon intensity hydrogen to the Greater Houston area is $1.85/kg, benchmarked to the scenario, with hydrogen produced close to the Greater Houston area and delivered at $1.42/kg. Our findings reveal that Permian-based low-carbon intensity hydrogen production can achieve cost savings in feedstock ($0.25/kg) and potentially accrue a higher production tax credit due to a shorter gas supply chain to production ($0.33/kg). Nevertheless, a significant cost barrier is the expense of long-haul pipeline transport ($0.90/kg) from the Permian Basin to Houston as opposed to local production. Despite the obstacles, the study identifies a potential breakeven solution where increasing the production scale to at least 412,000 metric ton per year (about 3 steamreforming plants) in the Permian Basin can effectively lower costs in the transport sector. Hence a scaled-up production can mitigate the cost difference and establish the Permian Basin as a competitive player in the hydrogen market. In conclusion, a SWOT analysis presents Strengths, Weaknesses, Opportunities, and Threats associated with Permian-based hydrogen production.
引用
下载
收藏
页数:16
相关论文
共 50 条
  • [1] Enhanced hydrogen embrittlement of low-carbon steel to natural gas/hydrogen mixtures
    Shang, Juan
    Chen, Weifeng
    Zheng, Jinyang
    Hua, Zhengli
    Zhang, Lin
    Zhou, Chengshuang
    Gu, Chaohua
    SCRIPTA MATERIALIA, 2020, 189 : 67 - 71
  • [2] Blending low-carbon hydrogen with natural gas: Impact on energy and life cycle emissions in natural gas pipelines
    Cappello, Vincenzo
    Sun, Pingping
    Elgowainy, Amgad
    GAS SCIENCE AND ENGINEERING, 2024, 128
  • [3] Unlocking Potential for Low-Carbon Hydrogen Production from U.S. Natural Gas Resources
    Wu, Zitao
    Zhai, Haibo
    Holubnyak, Eugene
    Gerace, Selena
    Murphy, Amy
    Biggs, Curtis
    Environmental Science and Technology, 2024, 58 (42): : 18484 - 18495
  • [4] Catalytic production of low-carbon footprint sustainable natural gas
    Si, Xiaoqin
    Lu, Rui
    Zhao, Zhitong
    Yang, Xiaofeng
    Wang, Feng
    Jiang, Huifang
    Luo, Xiaolin
    Wang, Aiqin
    Feng, Zhaochi
    Xu, Jie
    Lu, Fang
    NATURE COMMUNICATIONS, 2022, 13 (01)
  • [5] Catalytic production of low-carbon footprint sustainable natural gas
    Xiaoqin Si
    Rui Lu
    Zhitong Zhao
    Xiaofeng Yang
    Feng Wang
    Huifang Jiang
    Xiaolin Luo
    Aiqin Wang
    Zhaochi Feng
    Jie Xu
    Fang Lu
    Nature Communications, 13
  • [6] Rethinking the position of natural gas in a low-carbon energy transition
    Bugaje, Al-Amin B.
    Dioha, Michael O.
    Abraham-Dukuma, Magnus C.
    Wakil, Muhammad
    ENERGY RESEARCH & SOCIAL SCIENCE, 2022, 90
  • [7] Methane Emissions from Natural Gas Gathering Pipelines in the Permian Basin
    Yu, Jevan
    Hmiel, Benjamin
    Lyon, David R.
    Warren, Jack
    Cusworth, Daniel H.
    Duren, Riley M.
    Chen, Yuanlei
    Murphy, Erin C.
    Brandt, Adam R.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY LETTERS, 2022, 9 (11): : 969 - 974
  • [8] Methane Emissions from Natural Gas Gathering Pipelines in the Permian Basin
    Yu, Jevan
    Hmiel, Benjamin
    Lyon, David R.
    Warren, Jack
    Cusworth, Daniel H.
    Duren, Riley M.
    Chen, Yuanlei
    Murphy, Erin C.
    Brandt, Adam R.
    Environmental Science and Technology Letters, 2022, 9 (11): : 969 - 974
  • [9] Study on Low-carbon Catalytic Combustion Furnace of Natural Gas
    Huang, Siyu
    Yan, Longfei
    Zhang, Shihong
    MATERIALS, MECHANICAL ENGINEERING AND MANUFACTURE, PTS 1-3, 2013, 268-270 : 1006 - 1010
  • [10] Support mechanisms for low-carbon hydrogen: The risks of segmenting a commodity market
    Mastropietro, Paolo
    Rodilla, Pablo
    Energy Policy, 2025, 202