TY - JOUR
T1 - Thermo-structural performance and flow analysis of X-latticed honeycombs with plate or corrugated walls
AU - Chen, Junjun
AU - Yan, Leilei
AU - Yan, Hongbin
AU - Xie, Gongnan
N1 - Publisher Copyright:
© 2023, Akadémiai Kiadó, Budapest, Hungary.
PY - 2023/5
Y1 - 2023/5
N2 - In this paper, an improved periodic cellular material (PCM), called X-lattice cored corrugated honeycomb (XCCH), which combines X-lattice with corrugated honeycomb is proposed. Compressive strength and convective heat transfer characteristics of this PCM are explored by comparisons with the X-lattice cored plate honeycomb (XCPH). A series of experiments and numerical simulations were carried out. In terms of heat transfer, at the same Reynolds number, the overall Nusselt number of the XCCH is 6–11% higher experimentally and 9–14% higher numerically than that of the XCPH. Besides, although the introduction of corrugated fins increases the friction factor of the XCCH by 40%, the heat transfer performance of the XCCH is still 4.2–4.9% better experimentally and 5.6–7.1% better numerically than that of the XCPH. The corrugated fin makes the vortex pairs in the channel closer to each other and improves the turbulent kinetic energy at the vortices’ boundary, which is the dominant mechanism of the enhanced heat transfer. In terms of mechanical strength, the compressive strength of the XCCH is 20% higher than that of the XCPH. The corrugated fins increase the effective moment of inertia; further, the increased specific surface area improves the material’s ability to absorb energy. These two factors are responsible for the improved mechanical strength of the XCCH.
AB - In this paper, an improved periodic cellular material (PCM), called X-lattice cored corrugated honeycomb (XCCH), which combines X-lattice with corrugated honeycomb is proposed. Compressive strength and convective heat transfer characteristics of this PCM are explored by comparisons with the X-lattice cored plate honeycomb (XCPH). A series of experiments and numerical simulations were carried out. In terms of heat transfer, at the same Reynolds number, the overall Nusselt number of the XCCH is 6–11% higher experimentally and 9–14% higher numerically than that of the XCPH. Besides, although the introduction of corrugated fins increases the friction factor of the XCCH by 40%, the heat transfer performance of the XCCH is still 4.2–4.9% better experimentally and 5.6–7.1% better numerically than that of the XCPH. The corrugated fin makes the vortex pairs in the channel closer to each other and improves the turbulent kinetic energy at the vortices’ boundary, which is the dominant mechanism of the enhanced heat transfer. In terms of mechanical strength, the compressive strength of the XCCH is 20% higher than that of the XCPH. The corrugated fins increase the effective moment of inertia; further, the increased specific surface area improves the material’s ability to absorb energy. These two factors are responsible for the improved mechanical strength of the XCCH.
KW - Convective heat transfer
KW - Honeycombs
KW - Mechanical performance
KW - Periodic cellular material
KW - Turbulent flow
KW - X-lattice
UR - http://www.scopus.com/inward/record.url?scp=85147737151&partnerID=8YFLogxK
U2 - 10.1007/s10973-023-11986-9
DO - 10.1007/s10973-023-11986-9
M3 - 文章
AN - SCOPUS:85147737151
SN - 1388-6150
VL - 148
SP - 3613
EP - 3629
JO - Journal of Thermal Analysis and Calorimetry
JF - Journal of Thermal Analysis and Calorimetry
IS - 9
ER -