Calculate Δ H ° for each of the following reactions, which occur in the atmosphere. a . C 2 H 4 ( g ) + O 3 ( g ) → CH 3 CHO( g ) + O 2 ( g ) b . O 3 ( g ) + NO( g ) → NO 2 ( g ) + O 2 ( g ) c. SO 3 ( g ) + H 2 O( l ) → H 2 SO 4 ( aq ) d . 2NO( g ) + O 2 (g) → 2SO 2 ( g )
Calculate Δ H ° for each of the following reactions, which occur in the atmosphere. a . C 2 H 4 ( g ) + O 3 ( g ) → CH 3 CHO( g ) + O 2 ( g ) b . O 3 ( g ) + NO( g ) → NO 2 ( g ) + O 2 ( g ) c. SO 3 ( g ) + H 2 O( l ) → H 2 SO 4 ( aq ) d . 2NO( g ) + O 2 (g) → 2SO 2 ( g )
Calculate ΔH° for each of the following reactions, which occur in the atmosphere.
a. C2H4(g) + O3(g) → CH3CHO(g) + O2(g)
b. O3(g) + NO(g) → NO2(g) + O2(g)
c. SO3(g) + H2O(l) → H2SO4(aq)
d. 2NO(g) + O2(g) → 2SO2(g)
(a)
Expert Solution
Interpretation Introduction
Interpretation: For given reactions, standard enthalpy change has to be calculated.
Concept introduction
Standard Enthalpy change (ΔH0): The heat change when molar quantities of reactants as specified by chemical equation to form a product at standard conditions. Standard condition:
250C and 1 atmosphere pressure.
Answer to Problem 121AE
C2H4(g)+O3(g)→CH3CHO(g)+O2(g)ΔH0= -361kJ
Explanation of Solution
Explanation
Given: Standard enthalpy value for given substance in the reactions are,
Substance and stateΔH0ΔHf0kJ / mol
O3(g) 143
H2O(l) -286
NO(g) 90
CH3CHO(g) -166
C2H4(g) 52
H2SO4(aq) -909
O2(g) 0
NO2(g) 34
SO3(g) -396
Standard enthalpy values for given substances in the reaction are shown above.
To calculate standard enthalpy change for given reaction.
The standard enthalpy change for given equation is -361 kJ .
ΔH0=
H0product-Hreactant0
=
-166kJ-[143kJ+52kJ]
=
-361kJ
C2H4(g)+O3(g)→CH3CHO(g)+O2(g)ΔH0= -361kJ
The standard enthalpy change for the reaction can be calculated by enthalpy of product versus enthalpy of reactant. The standard enthalpy values for given substances in a reaction are shown (Table.1). By substituting these values in standard enthalpy change equation the standard enthalpy change for the reaction has calculated as -361 k J .
(b)
Expert Solution
Interpretation Introduction
Interpretation: For given reactions, standard enthalpy change has to be calculated.
Concept introduction
Standard Enthalpy change (ΔH0): The heat change when molar quantities of reactants as specified by chemical equation to form a product at standard conditions. Standard condition:
250C and 1 atmosphere pressure.
Answer to Problem 121AE
O3(g)+NO(g)→NO2(g)+O2(g)ΔH0= -199 kJ
Explanation of Solution
Given: Standard enthalpy value for given substance in the reactions are,
Substance and stateΔH0ΔHf0kJ / mol
O3(g) 143
H2O(l) -286
NO(g) 90
CH3CHO(g) -166
C2H4(g) 52
H2SO4(aq) -909
O2(g) 0
NO2(g) 34
SO3(g) -396
Standard enthalpy values for given substances in the reaction are shown above.
To calculate standard enthalpy change for given equation.
The standard enthalpy change for given equation is -199kJ.
ΔH0=
H0product-Hreactant0
=34 kJ-[(90 kJ)+(143 kJ)]
= -199 kJ
O3(g)+NO(g)→NO2(g)+O2(g)ΔH0= -199 kJ
The standard enthalpy change for the reaction can be calculated by enthalpy of product versus enthalpy of reactant. The standard enthalpy values for given substances in a reaction are shown (Table.1). By substituting these values in standard enthalpy change equation the standard enthalpy change for the reaction has calculated as -199kJ.
(c)
Expert Solution
Interpretation Introduction
Interpretation: For given reactions, standard enthalpy change has to be calculated.
Concept introduction
Standard Enthalpy change (ΔH0): The heat change when molar quantities of reactants as specified by chemical equation to form a product at standard conditions. Standard condition:
250C and 1 atmosphere pressure.
Answer to Problem 121AE
SO3(g)+HO2(l)→H2SO4(aq)ΔH0= -227kJ
Explanation of Solution
Explanation:
Given: Standard enthalpy value for given substance in the reactions are,
Substance and stateΔH0ΔHf0kJ / mol
O3(g) 143
H2O(l) -286
NO(g) 90
CH3CHO(g) -166
C2H4(g) 52
H2SO4(aq) -909
O2(g) 0
NO2(g) 34
SO3(g) -396
Standard enthalpy values for given substances in the reaction are shown above.
To calculate standard enthalpy change for given equation.
The standard enthalpy change for given equation is -227kJ .
ΔH0=
H0product-Hreactant0
= -909kJ-[(-396kJ)+(-286kJ)]
= -227kJ
SO3(g)+HO2(l)→H2SO4(aq)ΔH0= -227kJ
The standard enthalpy change for the reaction can be calculated by enthalpy of product versus enthalpy of reactant. The standard enthalpy values for given substances in a reaction are shown (Table.1). By substituting these values in standard enthalpy change equation the standard enthalpy change for the reaction has calculated as -227kJ. .
(d)
Expert Solution
Interpretation Introduction
Interpretation: For given reactions, standard enthalpy change has to be calculated.
Concept introduction
Standard Enthalpy change (ΔH0): The heat change when molar quantities of reactants as specified by chemical equation to form a product at standard conditions. Standard condition:
250C and 1 atmosphere pressure.
Answer to Problem 121AE
2NO(g)+O2(g)→2NO2(g)ΔH0= -112kJ
Explanation of Solution
Explanation:
Given: Standard enthalpy value for given substance in the reactions are,
Substance and stateΔH0ΔHf0kJ / mol
O3(g) 143
H2O(l) -286
NO(g) 90
CH3CHO(g) -166
C2H4(g) 52
H2SO4(aq) -909
O2(g) 0
NO2(g) 34
SO3(g) -396
Standard enthalpy values for given substances in the reaction are shown above.
To calculate standard enthalpy change for given equation.
The standard enthalpy change for given equation is -112kJ.
2NO(g)+O2(g)→2NO2(g)ΔH0= -112 kJ
The standard enthalpy change for the reaction can be calculated by enthalpy of product versus enthalpy of reactant. The standard enthalpy values for given substances in a reaction are shown (Table.1). By substituting these values in standard enthalpy change equation the standard enthalpy change for the reaction has calculated as -112kJ .
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The table shows the tensile stress-strain values obtained for various
hypothetical metals. Based on this, indicate which is the most brittle
and which is the most tough (or most resistant).
Breaking strength Elastic modulus
Material Yield strength Tensile strength
Breaking strain
A
(MPa)
415
(MPa)
(MPa)
(GPa)
550
0.15
500
310
B
700
850
0.15
720
300
C
Non-effluence fracture
650
350
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