A5 Equilibria Flashcards

1
Q

Using Le Chatalier’s principale explain the effect of increasingtemperature

A
  • Forwards reaction is exo/endothermic
  • So increasing temperautre favours forwards/backwards reaction
  • Equilibrium concentration of XXX increases
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2
Q

Define dynamic equilibria

A
  • Exists only in a closed system
  • The rate of the forward reaction is equal to the rate of the reverse reaction
  • The concentrations of reactants and products do not change
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3
Q

Using Le Chatalier’s principale explain the effect of increasing pressure

A
  • Fewer gas moles on the left/right
  • Increasing pressure shifts equallibrium to the left/right hand side
  • Equilibrium concentration of XXX incresaes
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4
Q

Using Le Chatalier’s principale explain the effect of increasing concentration

A
  • More reactant particles in mixture per unit volume
  • Equilibrium shifts to right hand side
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5
Q

Using Le Chatalier’s principale explain the effect of a catalyst

A
  • Increases the rate of both the forwards and backwards reactions in the equilibria by the same ammount
  • The position of equalibria remains unchanged
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6
Q

In equilibria industry, what are the advantageous/disadvantages to temperature

A
  • High temperature = quicker rate
  • High temperature is expensive
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7
Q

In equilibria industry, what are the advantageous/disadvantages to pressure

A
  • High pressure = quicker rate
  • High pressure = expensive
  • High pressure = dangerous
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8
Q

Why is it difficult to know the effect on equalibria if it is affected by both temperature and pressure

A

Difficult to predict relative contributions of two opposing factors

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9
Q

Why is nitrogen accesible in industry

A

Occurs naturally in the air

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10
Q

Explain the effect of changing temperature on the position of Kc

A
  • If temperature change causes equilibria to shift to the right hand side, Kc value increases
  • If temperature change causes equilibria to shift to the left hand side, Kc value decreases
  • Kc value is not affected by pressure, or catalysts
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10
Q

Stages required for Kp with brief explaination of each one if applicable

A
  • Initial moles
  • Change in moles (use molar ratio, and oppostie sides of the equation are positive and negative)
  • Equilibrium moles
  • Concentration (Conc=mol/vol)
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11
Q

What should always be ignored in Kc calculations

A

Solids

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12
Q

Stages for calculating Kp with a brief explaination of each one if applicaible

A
  • Initial moles
  • Change in moles (use molar ratio and opposite sides of equation have opposite signs)
  • Equilibrium moles
  • Mole fraction (E moles over total moles)
  • Partial pressure (multiply by volume)
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13
Q

What reactants and products should only be used in a Kp calculations

A

Gases only

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14
Q

Explain the effect of increasing pressure (causing right hand shift) on the Kp equation

A
  • Equallibrium shifts right, as right hand side has fewer moles
  • Increased pressure results in denominator of Kp experssion increasing more than numerator
  • Numerator expression must increase to restore Kp
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15
Q

Explain how increasing temperature affects the value of Kp

A
  • If temperature change causes equalibira to shift to right hand side, Kp value increases
  • If temperature change causes equalibira to shift to left hand side, Kp value decreases
  • Kp value is not affected by pressure, or catalysts