Written by students who passed Immediately available after payment Read online or as PDF Wrong document? Swap it for free 4.6 TrustPilot
logo-home
Document preview thumbnail
Preview 2 out of 9 pages
Exam (elaborations)

CHEM 103 Portage Learning Exam 2 (problem set) and exam studyguide

Document preview thumbnail
Preview 2 out of 9 pages

CHEM 103 Portage Learning Exam 2 (problem set) and exam studyguide

Content preview

Portage Learning Chemistry CHEM 103 Unit 3
Study online at https://quizlet.com/_d7x2jb

1. Heat temp change = qtemp change = m x c x t
-(40.5 x 4.184 x (t - 85.7)) = 36.8 x 4.184 x (t - 26.3)
-(169.452 x (t - 85.7)) = 153.9712 x (t - 26.3)
-(169.452t - 14522.0364) = 153.9712t - 4049.44256
-169.452t + 14522.0364 = 153.9712t - 4049.44256
18571.479 = 323.423t
57.4 C = t: 1. Show the calculation of the final temperature of the mixture when a 40.5 gram sample of water at
85.7C is added to a 36.8 gram sample of water at 26.3C in a coffee cup calorimeter.
c (water) = 4.184 J/g C
2. qs”l = mass x Heat of Fusion = m x Hfusion
120 x 0.334 = 40.08 kJ: 2. Show the calculation of the energy involved in melting 120 grams of ice at 0oC if
the Heat of Fusion for water is 0.334 kJ/g.
3. moles = grams/molecular weight
moles (S) = 42.8/32.07 = 1.335 mols S
= ΔHrx x new moles / original moles
q = -792 x ( 1.335/2 )= -526.7 kJ: 3. Sulfur undergoes combustion to yield sulfur trioxide by the following
reaction equation:
2 S + 3 O2 ’2 SO3 ΔH = - 792 kJ
If 42.8 g of S is reacted with excess O2, what will be the amount of heat given off?
4. moles = grams/molecular weight
moles (H2S ) = 26.2/34.086 = 0.7686 mols H2S
ΔHrx = q / (new moles / original moles)
-431.8 / ( 0.7686/2) = -1123.6 kJ: 4. Hydrosulfuric acid (H2S) undergoes combustion to yield sulfur
dioxide and water by the following reaction equation:
2 H2S + 3 O2 ’2 SO2 + 2 H2O
What is the ΔH of the reaction if 26.2 g of H2S reacts with excess O2 to yield 431.8 kJ?
5. 1)
q water = s (specific heat of water) x mass x Δt = 4.18 J / g / K x 500 g x (53.13 C
- 25.00 C) = - 58,791 J
q calorimeter = heat capacity x Δt = (10.5 kJ/C) x (53.13 C - 25.00 C) = - 295.365
kJ x 1000 J/1 kJ= - 295,365 J
q reaction = - 58,791 J + (-295,365 J) = - 354,156 J = - 354,156 J x 1 kJ / 1000 J = -
1/9

, Portage Learning Chemistry CHEM 103 Unit 3
Study online at https://quizlet.com/_d7x2jb

354.16 kJ

(new) moles C6H6 = 7.05 g / 78 = 0.0904 mole C6H6

ΔH = q / (new moles / original moles)
ΔH = - 354.16 / (0.) = - 7828 kJ / mole


(2) Isolated system (bomb calorimeter)
(3) Exothermic (temperature of water rises due to heat given off by combustion
reaction): 5. A sample of benzene (C6H6), weighing 7.05 g underwent combustion in a bomb calorimeter by the
following reaction:

2 C6H6 (l) + 15 O2 (g) ’12 CO2 (g) + 6 H2O (l)

The heat given off was absorbed by 500 g of water and caused the temperature of the water and the calorimeter to
rise from 25.00 to 53.13 C. The heat capacity of water = 4.18 J/g/C and the heat capacity of the calorimeter = 10.5 kJ/C.
(1) what is the ΔH of the reaction? Using the definitions at the beginning of the module describe (2) the calorimeter +
contents, (3) the type of process.
6. q water = s (specific heat of water) x mass x Δt = 4.18 J / g / K x 100 g x 5.14 K
= 2148.52 J
q calorimeter = heat capacity x Δt = 150 x 5.14 K = 771 J
q reaction = 771 J + 2148.52 J = + 2919.52 J = + 2919.52 J x 1 kJ / 1000 J = 2.92 kJ
(1) ΔH reaction = 2.92 kJ / 14.5 g NaHCO g NaHCO3 / mol NaHCO3 = + 16.9
kJ / mol
(2) The calorimeter + contents (no lid) = open system, (3) Endothermic process-
: 6. A sample of 14.5 g of sodium bicarbonate (NaHCO3) was dissolved in 100 ml of water in a coffee-cup calorimeter
with no lid by the following reaction

NaHCO3 (s) ’Na+ (aq) + HCO3- (aq)

If the temperature of the water and the calorimeter (heat capacity of calorimeter = 150 J/C) decreases from 25.00oC


2/9

Document information

Uploaded on
January 30, 2026
Number of pages
9
Written in
2025/2026
Type
Exam (elaborations)
Contains
Questions & answers
$12.99

Wrong document? Swap it for free Within 14 days of purchase and before downloading, you can choose a different document. You can simply spend the amount again.
Written by students who passed
Immediately available after payment
Read online or as PDF

Seller avatar
Reputation scores are based on the amount of documents a seller has sold for a fee and the reviews they have received for those documents. There are three levels: Bronze, Silver and Gold. The better the reputation, the more your can rely on the quality of the sellers work.
Sold
24
Followers
2
Items
3436
Last sold
2 days ago


Why students choose Stuvia

Created by fellow students, verified by reviews

Quality you can trust: written by students who passed their tests and reviewed by others who've used these notes.

Didn't get what you expected? Choose another document

No worries! You can instantly pick a different document that better fits what you're looking for.

Pay as you like, start learning right away

No subscription, no commitments. Pay the way you're used to via credit card and download your PDF document instantly.

Student with book image

“Bought, downloaded, and aced it. It really can be that simple.”

Alisha Student

Working on your references?

Create accurate citations in APA, MLA and Harvard with our free citation generator.

Working on your references?

Frequently asked questions