“…Although several thermal-uid models have been used to overcome the failure in temperature control caused by moisture formation and abnormal operating conditions, the kinetics of the dehydration reactions that occur during the synthesis process has not been resolved or implemented in the RHK models. [17][18][19][20][21] Since the temperature distribution in the RHK furnace can be inuenced by the generated moisture which has a comparatively high heat capacity, the dehydration reaction mechanism must be incorporated into the models to accurately predict the synthesis environment and control the process conditions.…”
Dehydration reactions of cathode precursors such as lithium hydroxide monohydrate (LiOH·H2O) and transition metal hydroxide (NixCoyMnz(OH)2) cause considerable difficulties in temperature control during the synthesis of cathode materials used in...
“…Although several thermal-uid models have been used to overcome the failure in temperature control caused by moisture formation and abnormal operating conditions, the kinetics of the dehydration reactions that occur during the synthesis process has not been resolved or implemented in the RHK models. [17][18][19][20][21] Since the temperature distribution in the RHK furnace can be inuenced by the generated moisture which has a comparatively high heat capacity, the dehydration reaction mechanism must be incorporated into the models to accurately predict the synthesis environment and control the process conditions.…”
Dehydration reactions of cathode precursors such as lithium hydroxide monohydrate (LiOH·H2O) and transition metal hydroxide (NixCoyMnz(OH)2) cause considerable difficulties in temperature control during the synthesis of cathode materials used in...
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