chapter 6-heat chemistry Flashcards

1
Q

Work equation

A

W= -P(change in volume)
W=force x distance

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2
Q

When work is negative

A

when work is done by the system

-if the surroundings were a gas, then the surroundings shall expand. expansion

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3
Q

when work is positive

A

when work is done on the system

  • compression
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4
Q

Work and heat are process quantities

True or False?

A

True

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5
Q

what are the three types of systems?

A

Open- can exchange energy and matter
Closed- can exchange energy but not matter
Isolated- cannot transfer energy or matter

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6
Q

(delta)H= (delta)U + W

A

At constant pressure, heat of rxn

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7
Q

(delta)H= (delta)E + P(delta)V

A

Heat of reaction equation

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8
Q

units of Joules

A

1000 cal= 1 kcal = 1 Cal = 4.184J

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9
Q

heat of reaction equation

A

(Sum of Products) - (Sum of reactants)

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10
Q

calorimeter equation

A

q= mC(delta)T

at constant pressure

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11
Q

enthalpy change based on bond energies

A

(sum of bonds broken) + (- sum of bonds formed)

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