Hybridization of artificial neural network and response surface methodology for the optimized heat transfer rate on three-dimensional micropolar nanofluid using Hamilton–Crosser conductivity model through a circular cylinder

Research article (Journal of Thermal Analysis and Calorimetry, 2023) · cited 43× · AI/ML
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Hybridization of artificial neural network and response surface methodology for the optimized heat transfer rate on three-dimensional micropolar nanofluid using Hamilton–Crosser conductivity model through a circular cylinder

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Hybridization of artificial neural network and response surface methodology for the optimized heat transfer rate on three-dimensional micropolar nanofluid using Hamilton–Crosser conductivity model through a circular cylinder is a scholarly article[1].

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  • Hybridization of artificial neural network and response surface methodology for the optimized heat transfer rate on three-dimensional micropolar nanofluid using Hamilton–Crosser conductivity model through a circular cylinder's instance of is recorded as scholarly article[2].

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APA 4ort.xyz Knowledge Graph. (2026). Hybridization of artificial neural network and response surface methodology for the optimized heat transfer rate on three-dimensional micropolar nanofluid using Hamilton–Crosser conductivity model through a circular cylinder. Retrieved May 24, 2026, from https://4ort.xyz/entity/hybridization-of-artificial-neural-network-and-response-surface-methodology-for-the-optimized-heat-transfer-rate-on-thre
MLA “Hybridization of artificial neural network and response surface methodology for the optimized heat transfer rate on three-dimensional micropolar nanofluid using Hamilton–Crosser conductivity model through a circular cylinder.” 4ort.xyz Knowledge Graph, 4ort.xyz, 24 May. 2026, https://4ort.xyz/entity/hybridization-of-artificial-neural-network-and-response-surface-methodology-for-the-optimized-heat-transfer-rate-on-thre.
BibTeX @misc{4ortxyz_hybridization-of-artificial-neural-network-and-response-surface-methodology-for-the-optimized-heat-transfer-rate-on-thre_2026, author = {{4ort.xyz Knowledge Graph}}, title = {{Hybridization of artificial neural network and response surface methodology for the optimized heat transfer rate on three-dimensional micropolar nanofluid using Hamilton–Crosser conductivity model through a circular cylinder}}, year = {2026}, url = {https://4ort.xyz/entity/hybridization-of-artificial-neural-network-and-response-surface-methodology-for-the-optimized-heat-transfer-rate-on-thre}, note = {Accessed: 2026-05-24}}
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