Heating up
Nice mass!
I'll need you to be specific
You've changed...
FU-SION..HA!
Calorimetry...more than for food! (Pre-AP only)
100

What is the formula for q that uses a substances specific heat capacity? (c)

q = mcΔT

100

What is the rearranged formula to solve for mass?

m = q/cΔT

100

What is the rearranged formula to solve for the specific heat capacity? (c)

c = q/mΔT

100

What is the rearranged formula to solve for the change in temperature? (ΔT)

ΔT = q/mc

100

What are the formulas for the heat of fusion and vaporization?

q = ΔHF ; q = ΔHV

100

What is the relationship between energy gained and energy lost?

qgained = -qlost 

200
Heat energy (q) is measured in which units? (There are 2)

Joules (J) or calories (cal)

200

If an object's mass is doubled, what will happen to the amount of energy necessary to raise the temperature by the same amount?

It will also double
200

Specific heat capacity is measured in what units?

J/goC

200

What is the formula to calculate for ΔT if you are given the initial and final temperature?

ΔT = TF - TI

200

What is the heat of fusion of a 25.0 g sample of water at 0.00 C? (Hf = 334 J/g)

8,350 J

200

If hot metal is placed in cool water and loses 10,000 J, how much energy did the water gain?

10,000 J

300

What energy in J would it take to heat 5.00 g of water from 25.0C to 35.0C? (c = 4.18 J/gC)

209 J

300

What mass of oxygen would be heated 5000.0 J if the ΔT was 300.C? (c = 0.918 J/gC)

m = 18.2 g

300

What is the specific heat of a substance with 50.0 g of mass, 5000. J added, and a ΔT of 45.0C?

2.22 J/gC

300

What is the ΔT of glass with 20.0 g of mass and 800. J added? (c = 0.840 J/gC)

47.6 C

300

What is the heat of fusion of a 52.0 g sample of water at 100. C? (Hv = 2260 J/g)

118,000 J

400

What would be the heat energy if 15.0 g of iron were cooled from 400.C to 50.0C? (c = 0.412 J/gC)

q = -2160 J

400

What mass of water would be heated 4500.0 J if the starting temperature was 15.0 C and final temp was 100.C? (c = 0.918 J/gC)

57.7 g

400

What is the specific heat of a substance with 53.0 g of mass, 3400. J added, and an initial temp of 12.0C, final temp 48.0C?

1.78 J/gC

400

What is the ΔT of brass with 98.3 g of mass and 9840. J added? (c = 0.380 J/gC)

263 C

400

What is the total energy needed to melt 35.0 g water starting at -15 C? (Hf = 334 J/g) (c = 2.08 J/gC)

11,700 J + 1090 J = 12,790 J

500

Which would require more heat energy? Heating 20.0 g of water from 25.0C to 75.0C, or 40.0 g of water from 25.0C to 60.0C? (c = 4.18 J/gC)

20g q = 4180 J

40g q = 5850 J

500

What mass of silver would be cooled with the release of 2000.0 J if the initial temp was  250.C and the final was 20.0C? (c = 0.233 J/gC)

37.3 g

500

What is the specific heat of a substance with 77.2 g of mass, 12000. J added, and an initial temp of 10.0C, final temp 480.0C?

0.331 J/gC

500

What is the FINAL temperature of an aluminum sample with 402.0 g of mass and 76490. J added if the initial temp is 25.2 C? (c = 0.897 J/gC)

237 C

500

What is the total energy needed to vaporize 53.0 g water starting at 30.0 C? (Hf = 2260 J/g) (c = 4.18 J/gC)

15,500 J + 120,000 J = 135,500 J

500

What is the mass of water that would cool 54.0 g of iron (c = 0.412) from 400. to 30.0 C? The starting temp of the water was 25.0 C. (c of water = 4.18)

394 g