The standard enthalpy of formation ( Δ \-f H\+\+ \-\-m[K\-2Zn(IO\-3)\-4·2H\-2O,s,298.2K]=-2210.68 kJ·mol\+\{-1\}) of a double salt K\-2Zn(IO\-3)\-4·2H\-2O is determined by solution calorimetry in a isoperibel reaction calorimeter. The calorimetric solvent is an acid solution consisting of 3 mol·L\+\{-1\} HNO\-3. Accoding to the HESS Law, we designed a rational thermochemical cycle. Simultaneously, the Δ \-f H\+\+ \-\-\{m 298.2K\} was calculated from the data of the DSC curve. The values obtained by the two methods were compared.
The standard molar formation enthalpies of (A+)2Cd2(SO4)3[A+is NH-4+or K+ ] are determined from the enthalpies of dissolution (ΔSHm) of [(A+)2SO4(s)+ 2CdSO4(s)] and (A+ )2Cd2(SO4)3(s) in twice distilled water or 3 mol· L- 1 HNO3 solvent respectively,at 298.2 K,as: Δ fHm[(NH4)2Cd2(SO4)3,s,298.2K]=- 3031.74± 0.08 kJ· mol-1 Δ fHm[K2Cd2(SO4)3,s,298.2K]=- 3305.52± 0.17 kJ·