The Natural Emergence of Asymmetric Tree-Shaped Pathways for Cooling of a Non-Uniformly Heated Domain

dc.contributor.author Çetkin, Erdal
dc.contributor.author Oliani, Alessandro
dc.coverage.doi 10.1063/1.4926620
dc.date.accessioned 2017-07-06T13:04:20Z
dc.date.available 2017-07-06T13:04:20Z
dc.date.issued 2015
dc.description.abstract Here, we show that the peak temperature on a non-uniformly heated domain can be decreased by embedding a high-conductivity insert in it. The trunk of the high-conductivity insert is in contact with a heat sink. The heat is generated non-uniformly throughout the domain or concentrated in a square spot of length scale 0.1 L0, where L0 is the length scale of the non-uniformly heated domain. Peak and average temperatures are affected by the volume fraction of the high-conductivity material and by the shape of the high-conductivity pathways. This paper uncovers how varying the shape of the symmetric and asymmetric high-conductivity trees affects the overall thermal conductance of the heat generating domain. The tree-shaped high-conductivity inserts tend to grow toward where the heat generation is concentrated in order to minimize the peak temperature, i.e., in order to minimize the resistances to the heat flow. This behaviour of high-conductivity trees is alike with the root growth of the plants and trees. They also tend to grow towards sunlight, and their roots tend to grow towards water and nutrients. This paper uncovers the similarity between biological trees and high-conductivity trees, which is that trees should grow asymmetrically when the boundary conditions are non-uniform. We show here even though all the trees have the same objectives (minimum flow resistance), their shape should not be the same because of the variation in boundary conditions. To sum up, this paper shows that there is a high-conductivity tree design corresponding to minimum peak temperature with fixed constraints and conditions. This result is in accord with the constructal law which states that there should be an optimal design for a given set of conditions and constraints, and this design should be morphed in order to ensure minimum flow resistances as conditions and constraints change. en_US
dc.description.sponsorship Scientific and Technological Research Council of Turkey (114M592) en_US
dc.identifier.citation Çetkin, E., and Oliani, A. (2015). The natural emergence of asymmetric tree-shaped pathways for cooling of a non-uniformly heated domain. Journal of Applied Physics, 118(2). doi:10.1063/1.4926620 en_US
dc.identifier.doi 10.1063/1.4926620 en_US
dc.identifier.doi 10.1063/1.4926620
dc.identifier.issn 0021-8979
dc.identifier.issn 1089-7550
dc.identifier.scopus 2-s2.0-84936966974
dc.identifier.uri https://doi.org/10.1063/1.4926620
dc.identifier.uri https://hdl.handle.net/11147/5878
dc.language.iso en en_US
dc.publisher American Institute of Physics en_US
dc.relation info:eu-repo/grantAgreement/TUBITAK/MAG/114M592 en_US
dc.relation.ispartof Journal of Applied Physics en_US
dc.rights info:eu-repo/semantics/openAccess en_US
dc.subject Boundary conditions en_US
dc.subject Confined flow en_US
dc.subject Heat generation en_US
dc.subject Forestry en_US
dc.subject Thermal conductance en_US
dc.title The Natural Emergence of Asymmetric Tree-Shaped Pathways for Cooling of a Non-Uniformly Heated Domain en_US
dc.type Article en_US
dspace.entity.type Publication
gdc.author.institutional Çetkin, Erdal
gdc.author.yokid 26438
gdc.bip.impulseclass C4
gdc.bip.influenceclass C4
gdc.bip.popularityclass C4
gdc.coar.access open access
gdc.coar.type text::journal::journal article
gdc.collaboration.industrial true
gdc.description.department İzmir Institute of Technology. Mechanical Engineering en_US
gdc.description.issue 2 en_US
gdc.description.publicationcategory Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı en_US
gdc.description.scopusquality Q2
gdc.description.volume 118 en_US
gdc.description.wosquality Q3
gdc.identifier.openalex W1506867041
gdc.identifier.wos WOS:000357961000033
gdc.index.type WoS
gdc.index.type Scopus
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gdc.oaire.diamondjournal false
gdc.oaire.impulse 14.0
gdc.oaire.influence 4.256271E-9
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gdc.oaire.keywords Boundary conditions
gdc.oaire.keywords Thermal conductance
gdc.oaire.keywords Heat generation
gdc.oaire.keywords Forestry
gdc.oaire.keywords Confined flow
gdc.oaire.popularity 1.2798452E-8
gdc.oaire.publicfunded false
gdc.oaire.sciencefields 0103 physical sciences
gdc.oaire.sciencefields 01 natural sciences
gdc.openalex.collaboration International
gdc.openalex.fwci 4.74442558
gdc.openalex.normalizedpercentile 0.95
gdc.openalex.toppercent TOP 10%
gdc.opencitations.count 33
gdc.plumx.crossrefcites 28
gdc.plumx.mendeley 7
gdc.plumx.scopuscites 39
gdc.scopus.citedcount 39
gdc.wos.citedcount 36
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