TY - GEN
T1 - MECHANICAL PERFORMANCE EVALUATION OF THE PRINTED CIRCUIT HEAT EXCHANGER CORE EXPERIMENTS UNDER TENSION AND PRESSURE LOADING
AU - Mahajan, Heramb P.
AU - Maciel, Lucas
AU - Ngaile, Gracous
AU - Hassan, Tasnim
N1 - Funding Information:
This research is being performed using funding received from the DOE Office of Nuclear Energy's Nuclear Energy University Program under an Integrated Research Program entitled”ASME Code Application of the Compact Heat Exchanger for High Temperature Nuclear Service” (NEUP-16-10714) with the award number DE-NE0008576, and”Advancements toward ASME Nuclear code case for compact heat exchangers” (IRP-17-14227) with the award number DE-NE0008714. Authors would like to acknowledge help of Mr. Aaron Wildberger from Vacuum Process Engineering for fabricating the diffusion bonded 800H test specimens.
Funding Information:
This research is being performed using funding received from the DOE Office of Nuclear Energy’s Nuclear Energy University Program under an Integrated Research Program entitled ”ASME Code Application of the Compact Heat Exchanger for High Temperature Nuclear Service” (NEUP-16-10714) with the award number DE-NE0008576, and ”Advancements toward ASME Nuclear code case for compact heat exchangers” (IRP-17-14227) with the award number DE-NE0008714. Authors would like to acknowledge help of Mr. Aaron Wildberger from Vacuum Process Engineering for fabricating the diffusion bonded 800H test specimens.
Publisher Copyright:
Copyright © 2022 by ASME.
PY - 2022/11/4
Y1 - 2022/11/4
N2 - The printed circuit heat exchanger (PCHE) has small channels with high surface area, making them an efficient solution for next-generation nuclear plants (NGNPs). These PCHEs are fabricated through a diffusion bonding process. This fabrication step changes the microstructure of wrought metal plates. The current ASME design code does not support the PCHE design for NGNPs due to a lack of test data. Hence, there has been initiative towards elevated temperature mechanical property characterization of the diffusion bonded material. One of the most common channel shapes is a semicircular channel with sharp corners. These corners act as a stress riser at the diffusion bonding interface. Evaluating elevated temperature mechanical performance of diffusion bonded material in the presence of stress risers is an essential step towards the ASME code development of PCHE design. This study selected two specimen geometries: the first is a PCHE bar specimen for tensile loading with three rows and three columns of channels, and the second is a lab-scaled PCHE with six rows and eight columns of channels. A set of elevated temperature monotonic and cyclic tests were conducted on the PCHE bar specimen to evaluate the mechanical performance under axial tensile loadings to study the failure mechanism. The lab-scaled PCHE specimens were tested under overpressure loads at room temperature, and pressure creep and pressure creep-fatigue loadings to mimic the realistic loading conditions observed in typical NGNPs. The X-ray scans of channeled specimens show interesting observations. The test results and observations are presented in the paper.
AB - The printed circuit heat exchanger (PCHE) has small channels with high surface area, making them an efficient solution for next-generation nuclear plants (NGNPs). These PCHEs are fabricated through a diffusion bonding process. This fabrication step changes the microstructure of wrought metal plates. The current ASME design code does not support the PCHE design for NGNPs due to a lack of test data. Hence, there has been initiative towards elevated temperature mechanical property characterization of the diffusion bonded material. One of the most common channel shapes is a semicircular channel with sharp corners. These corners act as a stress riser at the diffusion bonding interface. Evaluating elevated temperature mechanical performance of diffusion bonded material in the presence of stress risers is an essential step towards the ASME code development of PCHE design. This study selected two specimen geometries: the first is a PCHE bar specimen for tensile loading with three rows and three columns of channels, and the second is a lab-scaled PCHE with six rows and eight columns of channels. A set of elevated temperature monotonic and cyclic tests were conducted on the PCHE bar specimen to evaluate the mechanical performance under axial tensile loadings to study the failure mechanism. The lab-scaled PCHE specimens were tested under overpressure loads at room temperature, and pressure creep and pressure creep-fatigue loadings to mimic the realistic loading conditions observed in typical NGNPs. The X-ray scans of channeled specimens show interesting observations. The test results and observations are presented in the paper.
KW - CHX
KW - Creep
KW - Diffusion bonding
KW - NGNP
UR - https://www.scopus.com/pages/publications/85142388177
UR - https://www.mendeley.com/catalogue/9f9f3f04-1776-3192-b814-9bcaf1214cb2/
U2 - 10.1115/PVP2022-81247
DO - 10.1115/PVP2022-81247
M3 - Conference contribution
AN - SCOPUS:85142388177
SN - 9780791886151
T3 - American Society of Mechanical Engineers, Pressure Vessels and Piping Division (Publication) PVP
BT - Computer Technology and Bolted Joints; Design and Analysis
PB - American Society of Mechanical Engineers (ASME)
T2 - ASME 2022 Pressure Vessels and Piping Conference, PVP 2022
Y2 - 17 July 2022 through 22 July 2022
ER -