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dc.contributor.authorGÜRKAN, KORAY
dc.contributor.authorBALLIKAYA, Sedat
dc.contributor.authorKaraman, Halime
dc.date.accessioned2023-10-10T13:07:43Z
dc.date.available2023-10-10T13:07:43Z
dc.identifier.citationGÜRKAN K., Karaman H., BALLIKAYA S., "Optimization of high-performance flexible thermoelectric generator from material synthesis to simulation and device application", Energy Conversion and Management, cilt.291, 2023
dc.identifier.issn0196-8904
dc.identifier.othervv_1032021
dc.identifier.otherav_2c8ba23a-9fb4-4b81-a7c3-ba43fda7fdf0
dc.identifier.urihttp://hdl.handle.net/20.500.12627/190447
dc.identifier.urihttps://doi.org/10.1016/j.enconman.2023.117335
dc.identifier.urihttps://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85164364949&origin=inward
dc.description.abstractRecently, flexible thermoelectric (f-TEG) power generators have attracted great attention due to their ability to capture waste heat from curved heat sources and convert it into useful electrical power. This study presents the material synthesis, theoretical optimization, module fabrication, and device application of a high-performance f-TEG. Firstly, n-type Bi2Te2.7Se0.3 and p-type Sb1.5Bi0.5Te3 TE materials were synthesized via a low-cost and fast fabrication process of mechanical alloying, cold pressed followed by a sintering process. The n-type and p-type materials exhibit maximum ZT values of 0.7 and 1.1, respectively. Then, the transport properties were used to optimize the geometry of the f-TEG in COMSOL Multiphysics. Based on the optimized parameters, a flexible module was developed which consists of 70 thermocouples each has a leg dimension of 1 × 1.5 × 2 mm3. The fabricated f-TEG measured on the arm generates an open circuit voltage, and power output of 93 mV, and 556 µW, respectively, at a temperature difference of 10 °C. The device was tested with a custom-made two-wire wireless ECG (electrocardiogram) and TEG harvester. Charge and discharge times of the supercapacitor and the efficiency of the TEG harvester were determined for the temperature difference of 10 °C. The test results show that the f-TEG can generate enough power to supply energy to the wireless ECG, but the efficiency of the boost converter is as low as 20%.
dc.language.isoeng
dc.subjectTarım Makineleri
dc.subjectTarımda Enerji
dc.subjectBiyoyakıt Teknolojisi
dc.subjectNükleer Fizik
dc.subjectTemel Bilimler
dc.subjectMühendislik ve Teknoloji
dc.subjectYenilenebilir Enerji, Sürdürülebilirlik ve Çevre
dc.subjectFizik Bilimleri
dc.subjectNükleer Enerji ve Mühendislik
dc.subjectYakıt Teknolojisi
dc.subjectEnerji Mühendisliği ve Güç Teknolojisi
dc.subjectTarımsal Bilimler
dc.subjectENERJİ VE YAKITLAR
dc.subjectFizik
dc.subjectMühendislik
dc.subjectTemel Bilimler (SCI)
dc.subjectMühendislik, Bilişim ve Teknoloji (ENG)
dc.subjectZiraat
dc.subjectNÜKLEER BİLİMİ VE TEKNOLOJİSİ
dc.titleOptimization of high-performance flexible thermoelectric generator from material synthesis to simulation and device application
dc.typeMakale
dc.relation.journalEnergy Conversion and Management
dc.contributor.departmentİstanbul Üniversitesi-Cerrahpaşa , Mühendislik Fakültesi , Elektrik Elektronik Mühendisliği Bölümü
dc.identifier.volume291
dc.contributor.firstauthorID4350138


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