EXPERIMENTAL DETERMINATION OF THERMOPHYSICAL PROPERTIES IN SUPERCRITICAL HEAT EXCHANGERS

dc.contributor.advisorDuba, Kura S
dc.contributor.authorTrapani, Michael J
dc.contributor.departmentEngineering
dc.date.accessioned2024-01-16T17:23:39Z
dc.date.available2024-01-16T17:23:39Z
dc.date.created2023-12
dc.date.issued2023-12-07
dc.date.submittedDecember 2023
dc.date.updated2024-01-11T19:03:10Z
dc.degree.departmentEngineering
dc.degree.disciplineMS-Mechanical Engineering
dc.degree.grantorEast Carolina University
dc.degree.levelMasters
dc.degree.nameM.S.
dc.description.abstractAn ECU team designed, built, and is testing a pilot-scale supercritical water desalination (SWD) system that processed brine discharge from conventional desalination systems. The system completely separates the solid salts from brine wastes. However, SWD is energy intensive. This work presents the design and testing of two heat exchangers (HEXs) used to recover and reuse the waste heat produced during the SWD process to minimize the overall energy requirement. The HEXs have been instrumented with temperature, pressure and flow control components. The collected data is then used to estimate dimensionless numbers (such as Prandtl, Reynolds and Nusselt) using thermophysical properties from the NIST REFPROP database. The dimensionless numbers are useful for HEXs design and are scarce in the literature for supercritical fluids. Brine was also used as a cooling fluid to simulate three different concentrations (3.5%, 7.5% and 14%) of salt which simulate sea water and double the brine waste discharge concentration from conventional desalination processes. The dimensionless numbers are then used to calculate the convective heat transfer coefficients, thermal resistance, and the overall heat transfer coefficient (OHTC). The results show that the Nusselt number for a supercritical HEX in laminar flow conditions is 20 to 30 times greater than that of a conventional counterpart which translates to an order of magnitude higher rate of heat transfer. The heat recovery system saves significant energy with a payback period of around 5 years.
dc.format.mimetypeapplication/pdf
dc.identifier.urihttp://hdl.handle.net/10342/13259
dc.language.isoen
dc.publisherEast Carolina University
dc.subjectSupercritical Water
dc.subjectHeat Exchanger
dc.subjectDesalination
dc.subjectExperimental
dc.titleEXPERIMENTAL DETERMINATION OF THERMOPHYSICAL PROPERTIES IN SUPERCRITICAL HEAT EXCHANGERS
dc.typeMaster's Thesis
dc.type.materialtext

Files

Original bundle
Now showing 1 - 2 of 2
No Thumbnail Available
Name:
TRAPANI-MASTERSTHESIS-2023.pdf
Size:
10.67 MB
Format:
Adobe Portable Document Format
No Thumbnail Available
Name:
Michael Trapani Thesis 2023 12 6.docx
Size:
51.09 MB
Format:
Microsoft Word XML

Collections