The role of process intensification in addressing the dual energy challenge

被引:14
|
作者
Pereira, Carla S. [1 ]
Patel, Bryan A. [1 ]
机构
[1] ExxonMobil Res & Engn Co, 1545 Route 22 East, Annandale, NJ 08801 USA
关键词
Process intensification; Energy efficiency; Gas treating; Steam methane reforming; FLOW; EFFICIENCY; BED;
D O I
10.1016/j.cep.2019.107545
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
Worldwide, human population and living standards are rising in tandem; by 2040, the world's population is projected to reach about 9.2 billion people compared to about 7.4 billion in 2016. Over that period, global GDP is expected to approximately double, helping billions of people join the middle class. Coincident with this growing economic activity and prosperity, global energy demand will likely rise about 25 percent even as energy efficiency gains continue to help curb energy use in many ways. The world faces a dual challenge: provide reliable and affordable energy to sustain population growth and improve living standards while protecting the environment. Process intensification (PI) is not new but has become an area of greater focus as it can lead to more sustainable, effective and efficient processes and can be part of a solution set to help mitigate the risks of climate change. This paper provides a brief introduction to PI and PI's role in addressing the dual energy challenge. We then discuss two examples of the application of PI at ExxonMobil to develop technologies with increased energy efficiency and lower carbon footprint compared to conventional processes. Finally, we highlight the technical challenges of PI implementation and potential future developments.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Challenges and opportunities for process intensification in Europe from a process systems engineering perspective
    Li, Qing
    Somoza-Tornos, Ana
    Grievink, Johan
    Kiss, Anton A.
    FRONTIERS IN ENERGY RESEARCH, 2024, 12
  • [32] Synergy of Microfluidics and Ultrasound Process Intensification Challenges and Opportunities
    Rivas, David Fernandez
    Kuhn, Simon
    TOPICS IN CURRENT CHEMISTRY, 2016, 374 (05)
  • [33] Process Intensification Aspects for Steam Methane Reforming: An Overview
    Bhat, Shrikant A.
    Sadhukhan, Jhuma
    AICHE JOURNAL, 2009, 55 (02) : 408 - 422
  • [34] A Review of Techniques for the Process Intensification of Fluidized Bed Reactors
    Zhang Wei
    CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2009, 17 (04) : 688 - 702
  • [35] Microfluidic Synthesis of Multifunctional Micro-/Nanomaterials from Process Intensification: Structural Engineering to High Electrochemical Energy Storage
    Wu, Xingjiang
    Chen, An
    Yu, Xude
    Tian, Zhicheng
    Li, Hao
    Jiang, Yanjun
    Xu, Jianhong
    ACS NANO, 2024, 18 (32) : 20957 - 20979
  • [36] ROLE OF THE NATIONAL ENERGY SYSTEM MODELLING IN THE PROCESS OF THE POLICY DEVELOPMENT
    Pusnik, Matevz
    Sucic, Boris
    Urbancic, Andreja
    Merse, Stane
    THERMAL SCIENCE, 2012, 16 (03): : 703 - 715
  • [37] An industrial view of process intensification
    Becht, Simon
    Franke, Robert
    Geisselmann, Andreas
    Hahn, Henrik
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2009, 48 (01) : 329 - 332
  • [38] Methodology of conceptual process synthesis for process intensification
    Rong, Ben-Guang
    Kolehmainen, Eero
    Turunen, Ilkka
    18TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, 2008, 25 : 283 - 288
  • [39] Opportunities and challenges for process control in process intensification
    Nikacevic, Nikola M.
    Huesman, Adrie E. M.
    Van den Hof, Paul M. J.
    Stankiewicz, Andrzej I.
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2012, 52 : 1 - 15
  • [40] Micro process technology as a means of process intensification
    Becht, Simon
    Franke, Robert
    Geisselmann, Andreas
    Hahn, Henrik
    CHEMICAL ENGINEERING & TECHNOLOGY, 2007, 30 (03) : 295 - 299