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Novel evaporator architecture with entrance-length crossflow-paths for supercritical Organic Rankine Cycles

Publication ,  Journal Article
Sabau, AS; Nejad, AH; Klett, JW; Bejan, A; Ekici, K
Published in: International Journal of Heat and Mass Transfer
April 1, 2018

In this paper, a novel geometry is proposed for evaporators that are used in Supercritical Organic Rankine Cycles. The proposed geometry consists of successive plenums at several length-scale levels, creating a multi-scale heat exchanger (HX). The channels at the lowest length-scale levels were considered to have their length determined by the thermal entrance-length. Numerical simulations based on turbulent flow correlations for supercritical R134a and water were used to evaluate the performance of heat exchangers. Using the data on pumping power and area of heat exchange, the total present cost was evaluated using a cost model for shell-and-tube heat exchangers. With respect to the shell-and-tube baseline case, the cost per heat load and total costs of new HXs is lowered by approximately 20–26% and 15–30%, respectively. This reduction in present costs of the new HXs were found to be attributed to higher operational costs for the shell-and-tube HXs, as evidenced by the higher pumping power, as well their capital investment costs. The cost savings in the new HX designs compared to those of the shell-and-tube HXs, at similar heat load performance, indicate that the new HX architectures proposed in this paper are valid alternatives to traditional HX designs.

Duke Scholars

Published In

International Journal of Heat and Mass Transfer

DOI

ISSN

0017-9310

Publication Date

April 1, 2018

Volume

119

Start / End Page

208 / 222

Related Subject Headings

  • Mechanical Engineering & Transports
  • 51 Physical sciences
  • 49 Mathematical sciences
  • 40 Engineering
  • 09 Engineering
  • 02 Physical Sciences
  • 01 Mathematical Sciences
 

Citation

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ICMJE
MLA
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Sabau, A. S., Nejad, A. H., Klett, J. W., Bejan, A., & Ekici, K. (2018). Novel evaporator architecture with entrance-length crossflow-paths for supercritical Organic Rankine Cycles. International Journal of Heat and Mass Transfer, 119, 208–222. https://doi.org/10.1016/j.ijheatmasstransfer.2017.11.042
Sabau, A. S., A. H. Nejad, J. W. Klett, A. Bejan, and K. Ekici. “Novel evaporator architecture with entrance-length crossflow-paths for supercritical Organic Rankine Cycles.” International Journal of Heat and Mass Transfer 119 (April 1, 2018): 208–22. https://doi.org/10.1016/j.ijheatmasstransfer.2017.11.042.
Sabau AS, Nejad AH, Klett JW, Bejan A, Ekici K. Novel evaporator architecture with entrance-length crossflow-paths for supercritical Organic Rankine Cycles. International Journal of Heat and Mass Transfer. 2018 Apr 1;119:208–22.
Sabau, A. S., et al. “Novel evaporator architecture with entrance-length crossflow-paths for supercritical Organic Rankine Cycles.” International Journal of Heat and Mass Transfer, vol. 119, Apr. 2018, pp. 208–22. Scopus, doi:10.1016/j.ijheatmasstransfer.2017.11.042.
Sabau AS, Nejad AH, Klett JW, Bejan A, Ekici K. Novel evaporator architecture with entrance-length crossflow-paths for supercritical Organic Rankine Cycles. International Journal of Heat and Mass Transfer. 2018 Apr 1;119:208–222.
Journal cover image

Published In

International Journal of Heat and Mass Transfer

DOI

ISSN

0017-9310

Publication Date

April 1, 2018

Volume

119

Start / End Page

208 / 222

Related Subject Headings

  • Mechanical Engineering & Transports
  • 51 Physical sciences
  • 49 Mathematical sciences
  • 40 Engineering
  • 09 Engineering
  • 02 Physical Sciences
  • 01 Mathematical Sciences