PORTAGE LEARNING EXAM zm zm
Exam Solution zm
Portage Learning Chemistry CHEM 103 Unit 3 2026 A+ zm zm zm zm zm zm zm zm zm
GRADE ASSURED COMPLETE SOLUTIONS AND VERIFIE zm zm zm zm zm
D ANSWERS (C3887)
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QUESTION 1 zm
Heat temp change = qtemp change = m x c x ∆t -(40.5 x 4.184 x (∆t -
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85.7)) = 36.8 x 4.184 x (∆t - 26.3) -(169.452 x (∆t - 85.7)) = 153.9712 x (∆t - 26.3) -
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(169.452∆t - 14522.0364) = 153.9712∆t - 4049.44256 - zm zm zm zm zm zm zm
169.452∆t + 14522.0364 = 153.9712∆t - zm zm zm zm zm
4049.44256 18571.479 = 323.423∆t 57.4 C = ∆t
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ANSWER
1. Show the calculation of the final temperature of the mixture when a 40.5 gram sample of water a
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t 85.7C is added to a 36.8 gram sample of water at 26.3C in a coffee cup calorimeter. c (water) = 4.
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184 J/g C zm zm
QUESTION 2 zm
qs↔l = mass x Heat of Fusion = m x ∆Hfusion 120 x 0.334 = 40.08 kJ
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ANSWER
2. Show the calculation of the energy involved in melting 120 grams of ice at 0oC if the Heat of Fus
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ion for water is 0.334 kJ/g.
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QUESTION 3 zm
moles = grams/molecular weight moles (S) = 42.8/32.07 = 1.335 mols S = ΔHrx x new
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moles / original moles q = -792 x ( 1.335/2 )= -526.7 kJ
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ANSWER
3. Sulfur undergoes combustion to yield sulfur trioxide by the following reaction equation: 2 S + 3 O
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2 → 2 SO3 ΔH = -
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792 kJ If 42.8 g of S is reacted with excess O2, what will be the amount of heat given off?
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, QUESTION 4 zm
moles = grams/molecular weight moles (H2S ) = 26.2/34.086 = 0.7686 mols H2S ΔHrx
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= q / (new moles / original moles) -431.8 / ( 0.7686/2) = -1123.6 kJ
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ANSWER
4. Hydrosulfuric acid (H2S) undergoes combustion to yield sulfur dioxide and water by the following
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reaction equation: 2 H2S + 3 O2 → 2 SO2 + 2 H2O What is the ΔH of the reaction if 26.2 g of H2S
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reacts with excess O2 to yield 431.8 kJ?
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QUESTION 5 zm
2 (2 NH3 (g) → 3 H2 (g) + 2 N2 (g) ΔH = + 91.8 kJ) 3 (2 H2 (g) + O2 (g) → 2 H2O (g)
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ΔH = - zm zm
483.7 kJ) 2 (N2 (g) + O2 (g) → 2 NO (g) ΔH = 180.6 kJ) 4 NH3 (g) + 5 O2 (g) → 4 NO
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(g) + 6 H2O (g) ΔHrxn = - 906.3 kJ ΔHrxn = 2 (+ 91.8) + 3 (-483.7) + 2 (180.6) = -
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906.3 kJ
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ANSWER
7. The combustion of ammonia by the following reaction yields nitric oxide and water 4 NH3 (g) +
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5 O2 (g) → 4 NO (g) + 6 H2O (g) Determine the heat of reaction (ΔHrxn) for this reaction by using
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the following thermochemical data: N2 (g) + O2 (g) → 2 NO (g) ΔH = 180.6 kJ N2 (g) + 3 H2 (g)
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→ 2 NH3 (g) ΔH = - 91.8 kJ 2 H2 (g) + O2 (g) → 2 H2O (g) ΔH = - 483.7 kJ
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QUESTION 6 zm
Pi x Vi = Pf x Vf Ti Tf 680 ml/1000 = 0.680 liters = Vi 720 mm/760 = 0.947 atm = Pi
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820 mm/760 = 1.08 atm = Pf 28 C + 273 = 301 K = Ti 55 C + 273 = 328 K = Tf Put in
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the data: (0.947) x (0.680) = (1.08) x Vf (301) (328) Solve for Vf: 0.002139402 = 0.00
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3292683 x Vf Vf = 0.650 literrs zm zm zm zm zm zm
ANSWER
9. A gas sample has an original volume of 680 ml when collected at 720 mm and 28
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C. What will be the volume of the gas sample if the pressure increases to 820 mm and the temperat
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ure increases to 55 C?
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QUESTION 7 zm
P x V = n x R x T 0.546 mole = n R = 0.0821 700 mm/760 = 0.921 atm = P 25 C + 27
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3 = 298 K = T (0.921) x V = (0.546) x (0.0821) x (298) (0.921) x V = 13.358 V = 13.3
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58 = 14.5 liters 0.921
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ANSWER
Exam Solution zm
Portage Learning Chemistry CHEM 103 Unit 3 2026 A+ zm zm zm zm zm zm zm zm zm
GRADE ASSURED COMPLETE SOLUTIONS AND VERIFIE zm zm zm zm zm
D ANSWERS (C3887)
zm zm
QUESTION 1 zm
Heat temp change = qtemp change = m x c x ∆t -(40.5 x 4.184 x (∆t -
zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm
85.7)) = 36.8 x 4.184 x (∆t - 26.3) -(169.452 x (∆t - 85.7)) = 153.9712 x (∆t - 26.3) -
zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm
(169.452∆t - 14522.0364) = 153.9712∆t - 4049.44256 - zm zm zm zm zm zm zm
169.452∆t + 14522.0364 = 153.9712∆t - zm zm zm zm zm
4049.44256 18571.479 = 323.423∆t 57.4 C = ∆t
zm zm zm zm zm zm zm zm
ANSWER
1. Show the calculation of the final temperature of the mixture when a 40.5 gram sample of water a
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t 85.7C is added to a 36.8 gram sample of water at 26.3C in a coffee cup calorimeter. c (water) = 4.
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184 J/g C zm zm
QUESTION 2 zm
qs↔l = mass x Heat of Fusion = m x ∆Hfusion 120 x 0.334 = 40.08 kJ
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ANSWER
2. Show the calculation of the energy involved in melting 120 grams of ice at 0oC if the Heat of Fus
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ion for water is 0.334 kJ/g.
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QUESTION 3 zm
moles = grams/molecular weight moles (S) = 42.8/32.07 = 1.335 mols S = ΔHrx x new
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moles / original moles q = -792 x ( 1.335/2 )= -526.7 kJ
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ANSWER
3. Sulfur undergoes combustion to yield sulfur trioxide by the following reaction equation: 2 S + 3 O
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2 → 2 SO3 ΔH = -
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792 kJ If 42.8 g of S is reacted with excess O2, what will be the amount of heat given off?
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, QUESTION 4 zm
moles = grams/molecular weight moles (H2S ) = 26.2/34.086 = 0.7686 mols H2S ΔHrx
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= q / (new moles / original moles) -431.8 / ( 0.7686/2) = -1123.6 kJ
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ANSWER
4. Hydrosulfuric acid (H2S) undergoes combustion to yield sulfur dioxide and water by the following
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reaction equation: 2 H2S + 3 O2 → 2 SO2 + 2 H2O What is the ΔH of the reaction if 26.2 g of H2S
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reacts with excess O2 to yield 431.8 kJ?
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QUESTION 5 zm
2 (2 NH3 (g) → 3 H2 (g) + 2 N2 (g) ΔH = + 91.8 kJ) 3 (2 H2 (g) + O2 (g) → 2 H2O (g)
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ΔH = - zm zm
483.7 kJ) 2 (N2 (g) + O2 (g) → 2 NO (g) ΔH = 180.6 kJ) 4 NH3 (g) + 5 O2 (g) → 4 NO
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(g) + 6 H2O (g) ΔHrxn = - 906.3 kJ ΔHrxn = 2 (+ 91.8) + 3 (-483.7) + 2 (180.6) = -
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906.3 kJ
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ANSWER
7. The combustion of ammonia by the following reaction yields nitric oxide and water 4 NH3 (g) +
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5 O2 (g) → 4 NO (g) + 6 H2O (g) Determine the heat of reaction (ΔHrxn) for this reaction by using
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the following thermochemical data: N2 (g) + O2 (g) → 2 NO (g) ΔH = 180.6 kJ N2 (g) + 3 H2 (g)
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→ 2 NH3 (g) ΔH = - 91.8 kJ 2 H2 (g) + O2 (g) → 2 H2O (g) ΔH = - 483.7 kJ
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QUESTION 6 zm
Pi x Vi = Pf x Vf Ti Tf 680 ml/1000 = 0.680 liters = Vi 720 mm/760 = 0.947 atm = Pi
zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm zm
820 mm/760 = 1.08 atm = Pf 28 C + 273 = 301 K = Ti 55 C + 273 = 328 K = Tf Put in
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the data: (0.947) x (0.680) = (1.08) x Vf (301) (328) Solve for Vf: 0.002139402 = 0.00
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3292683 x Vf Vf = 0.650 literrs zm zm zm zm zm zm
ANSWER
9. A gas sample has an original volume of 680 ml when collected at 720 mm and 28
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C. What will be the volume of the gas sample if the pressure increases to 820 mm and the temperat
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ure increases to 55 C?
zm zm zm zm
QUESTION 7 zm
P x V = n x R x T 0.546 mole = n R = 0.0821 700 mm/760 = 0.921 atm = P 25 C + 27
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3 = 298 K = T (0.921) x V = (0.546) x (0.0821) x (298) (0.921) x V = 13.358 V = 13.3
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58 = 14.5 liters 0.921
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ANSWER
