QUESTION IMAGE
Question
consider the following thermochemical equation:
h₂(g) + cl₂(g) → 2 hcl(g) δh = -184.6 kj
what is the enthalpy of reaction (δh) is the reaction is reversed?
-92.3 kj
+92.3 kj
-184.6 kj
+184.6 kj
Step1: Understand the rule of enthalpy sign change
When a reaction is reversed, the sign of the enthalpy change ($\Delta H$) is reversed.
Step2: Apply the rule to the given reaction
Given the original reaction \(H_2(g)+Cl_2(g)\to 2HCl(g)\) with \(\Delta H = - 184.6\space kJ\). When reversed, the new reaction is \(2HCl(g)\to H_2(g)+Cl_2(g)\). So, \(\Delta H\) becomes \(+184.6\space kJ\)
Snap & solve any problem in the app
Get step-by-step solutions on Sovi AI
Photo-based solutions with guided steps
Explore more problems and detailed explanations
+184.6 kJ