The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load

Yıl: 2023 Cilt: 28 Sayı: 2 Sayfa Aralığı: 651 - 666 Metin Dili: İngilizce DOI: 10.53433/yyufbed.1175411 İndeks Tarihi: 31-08-2023

The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load

Öz:
An experimental study is performed to illustrate the effect of the melting temperature of graphite matrix composite with phase change materials on the performance characteristics of a small-scale li-ion package (3s2p) under dynamic/square wave load. Paraffin (RT35 and RT42) is used as a PCM. Graphite matrix is manufactured with 75 g l-1 bulk density. The battery package is performed for three different configurations: free-air cooling case (reference case), and graphite matrix composites with RT35 and RT42. The experimental outputs present that graphite matrix composite has considerable potential for thermal management of the Li-ion pack. Safe operating time, discharge and energy capacity values are increased by 140%, 141% and 102% with the graphite composite with RT35 in the comparison reference case, respectively. It is observed that the melting temperature of PCM of graphite composite is of critical importance to the performance of the battery pack. For the graphite composite with RT35, operating time, discharge capacity and energy capacity values are enhanced by 6.2 %, 7 % and 10 % compared to the RT42 case, respectively.
Anahtar Kelime: Battery Cooling Graphite matrix Li-ion PCM Thermal management

Grafit Matris Kompozit Faz Dönüşüm Sıcaklığının Kare Dalga Yük Altındaki Küçük Ölçekli Bir Li-iyon Batarya Paketi Performansına Etkisi

Öz:
Faz değiştiren malzeme (FDM) ilaveli kompozit grafit matris içerisindeki faz değiştiren malzeme erime sıcaklığının küçük ölçekli (3s2p) bir li-iyon paketi performansı üzerindeki etkileri dinamik-kare yük altında deneysel olarak incelenmiştir. FDM olarak parafin (RT35 ve RT42) kullanılmıştır. Grafit matris 75 g l-1 yığın yoğunluğu ile üretilmiştir. Batarya paketi üç farklı konfigürasyon için test edilmiştir: doğal taşınım hava soğutma (referans durum) ve grafit kompozit-RT35 ve RT42. Deneysel çıktılar, grafit matris kompozitin li-iyon batarya paketinin termal yönetimi için önemli bir potansiyele sahip olduğunu ortaya koymaktadır. Referans duruma kıyasla grafit matris kompozit-RT35 ile güvenli çalışma süresinde %140, deşarj ve enerji kapasitesi değerlerinde ise %141 ve %102 oranında bir artış sağlanmıştır. Grafit matris kompozit içerisindeki FDM’lerin erime sıcaklıklarının batarya paketi performansı üzerinde kritik öneme sahip olduğu gözlenmiştir. Grafit matris kompozit-RT35 için çalışma süresi, deşarj kapasitesi ve enerji kapasitesi değerleri grafit matris kompozit-RT42 durumuna kıyasla, sırasıyla, %6, %7 ve %10 artırılmıştır.
Anahtar Kelime: Batarya FDM Grafit matris Li-iyon Soğutma Termal yönetim

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
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APA YAZICI M (2023). The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load. , 651 - 666. 10.53433/yyufbed.1175411
Chicago YAZICI Mustafa Yusuf The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load. (2023): 651 - 666. 10.53433/yyufbed.1175411
MLA YAZICI Mustafa Yusuf The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load. , 2023, ss.651 - 666. 10.53433/yyufbed.1175411
AMA YAZICI M The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load. . 2023; 651 - 666. 10.53433/yyufbed.1175411
Vancouver YAZICI M The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load. . 2023; 651 - 666. 10.53433/yyufbed.1175411
IEEE YAZICI M "The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load." , ss.651 - 666, 2023. 10.53433/yyufbed.1175411
ISNAD YAZICI, Mustafa Yusuf. "The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load". (2023), 651-666. https://doi.org/10.53433/yyufbed.1175411
APA YAZICI M (2023). The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load. Yüzüncü Yıl Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 28(2), 651 - 666. 10.53433/yyufbed.1175411
Chicago YAZICI Mustafa Yusuf The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load. Yüzüncü Yıl Üniversitesi Fen Bilimleri Enstitüsü Dergisi 28, no.2 (2023): 651 - 666. 10.53433/yyufbed.1175411
MLA YAZICI Mustafa Yusuf The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load. Yüzüncü Yıl Üniversitesi Fen Bilimleri Enstitüsü Dergisi, vol.28, no.2, 2023, ss.651 - 666. 10.53433/yyufbed.1175411
AMA YAZICI M The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load. Yüzüncü Yıl Üniversitesi Fen Bilimleri Enstitüsü Dergisi. 2023; 28(2): 651 - 666. 10.53433/yyufbed.1175411
Vancouver YAZICI M The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load. Yüzüncü Yıl Üniversitesi Fen Bilimleri Enstitüsü Dergisi. 2023; 28(2): 651 - 666. 10.53433/yyufbed.1175411
IEEE YAZICI M "The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load." Yüzüncü Yıl Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 28, ss.651 - 666, 2023. 10.53433/yyufbed.1175411
ISNAD YAZICI, Mustafa Yusuf. "The Effect of Phase Change Temperature of Graphite Matrix Composite on Small-Scale Li-Ion Package Performance Under Square Wave Load". Yüzüncü Yıl Üniversitesi Fen Bilimleri Enstitüsü Dergisi 28/2 (2023), 651-666. https://doi.org/10.53433/yyufbed.1175411