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    The Effect of Immersion Cooling on Lithium Plating Degradation in Lithium-Ion Batteries

    Source: Journal of Electrochemical Energy Conversion and Storage:;2026:;volume( 023 ):;issue:002
    Author:
    Juarez Robles, Daniel
    ,
    Salvi, Swapnil S.
    ,
    Swarts, Andre
    ,
    Sarlashkar, Jayant V.
    DOI: 10.1115/1.4070548
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Abstract. The objective of this study is to investigate the interaction between immersion cooling and lithium plating as a degradation mechanism in high charge rate Li-ion batteries. Commercial 5 Ah cylindrical cells (graphite/lithium nickel manganese cobalt oxide (NMC)) were subjected to aggressive charge cycling (1.3C) under different thermal boundary conditions: air cooling (reference) and immersion liquid cooling with flowrates between 0 and 4 lpm. The reference cell aged in air was confirmed to have significant lithium plating by performing a destructive physical analysis and subsequent electrode analysis. The plated cell validated the characteristic impedance drop signature, in the high state of charge (SOC) region, on the transition impedance obtained via pseudo-electrochemical impedance spectroscopy (EIS). The signature was then used as a nondestructive diagnostic for plating in the immersion-cooled cells. Counterintuitively, the immersion-cooled cells, particularly those with higher coolant flowrates, exhibited faster capacity fade, higher internal resistance, and higher transition impedance after only 70 equivalent cycles compared to the air-cooled cells. Pseudo-EIS corroborated this, showing a more pronounced impedance drop at high SOC (signature of lithium plating) in the cells cooled with higher flowrates. This suggested that, while immersion cooling effectively reduced bulk temperature, the intensive cooling at high flowrates lowered the cell's operating temperature, thereby increasing internal resistance and overpotential. This drove the anode potential below 0.0 V versus Li/Li+, promoting lithium plating and degradation and highlighting the need for dynamic thermal management strategies during fast charging, especially in conjunction with effective thermal management capabilities such as immersion cooling.
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      The Effect of Immersion Cooling on Lithium Plating Degradation in Lithium-Ion Batteries

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    contributor authorJuarez Robles, Daniel
    contributor authorSalvi, Swapnil S.
    contributor authorSwarts, Andre
    contributor authorSarlashkar, Jayant V.
    date accessioned2026-08-23T07:51:34Z
    date available2026-08-23T07:51:34Z
    date copyright2026/05/01
    date issued2026
    identifier issn2381-6872
    identifier otherjeecs-25-1205.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4315714
    description abstractAbstract. The objective of this study is to investigate the interaction between immersion cooling and lithium plating as a degradation mechanism in high charge rate Li-ion batteries. Commercial 5 Ah cylindrical cells (graphite/lithium nickel manganese cobalt oxide (NMC)) were subjected to aggressive charge cycling (1.3C) under different thermal boundary conditions: air cooling (reference) and immersion liquid cooling with flowrates between 0 and 4 lpm. The reference cell aged in air was confirmed to have significant lithium plating by performing a destructive physical analysis and subsequent electrode analysis. The plated cell validated the characteristic impedance drop signature, in the high state of charge (SOC) region, on the transition impedance obtained via pseudo-electrochemical impedance spectroscopy (EIS). The signature was then used as a nondestructive diagnostic for plating in the immersion-cooled cells. Counterintuitively, the immersion-cooled cells, particularly those with higher coolant flowrates, exhibited faster capacity fade, higher internal resistance, and higher transition impedance after only 70 equivalent cycles compared to the air-cooled cells. Pseudo-EIS corroborated this, showing a more pronounced impedance drop at high SOC (signature of lithium plating) in the cells cooled with higher flowrates. This suggested that, while immersion cooling effectively reduced bulk temperature, the intensive cooling at high flowrates lowered the cell's operating temperature, thereby increasing internal resistance and overpotential. This drove the anode potential below 0.0 V versus Li/Li+, promoting lithium plating and degradation and highlighting the need for dynamic thermal management strategies during fast charging, especially in conjunction with effective thermal management capabilities such as immersion cooling.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleThe Effect of Immersion Cooling on Lithium Plating Degradation in Lithium-Ion Batteries
    typeJournal Paper
    journal volume23
    journal issue2
    journal titleJournal of Electrochemical Energy Conversion and Storage
    identifier doi10.1115/1.4070548
    treeJournal of Electrochemical Energy Conversion and Storage:;2026:;volume( 023 ):;issue:002
    contenttypeFulltext
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