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`10^@C` पर A का उत्पाद में वियोजन के लिए `K=4.5xx10^3" सेकण्ड"^(-1)` है तथा संक्रियण ऊर्जा 60 किलोजूल/मोल है किस तापर पर `K=1.5xx10^(10)" सेकण्ड"^(-1)

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`10^@C` पर A का उत्पाद में वियोजन के लिए `K=4.5xx10^3" सेकण्ड"^(-1)` है तथा संक्रियण ऊर्जा 60 किलोजूल/मोल है किस तापर पर `K=1.5xx10^(10)" सेकण्ड"^(-1)` होगा
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`thereforeK_2/K_1=E_a/(2.303R)[(T_2-T_1)/(T_1T_2)]`
`K_1=4.5xx10^3,K_2=1.5xx10^(10)`
`T_1=10+273=283K,E_a=6000" जूल", T_2=?`
या `log""(1.5xx10^(10))/(4.5xx10^3)=(60000)/(2.303xx8.314)[(T_2-283)/(283T_2)]`
`therefore" "T_2=297K" या "24^@C`
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