Energetics Flashcards

1
Q

suggest one reason why extracting vanadium is expensive other than the costs of heating the reaction mixture?

A

Calcium is produced in the reaction. This is expensive to extract because it requires an immense amount of electricity. Electrolysis.

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2
Q

The equation for the reaction of Aluminium with iron 3 oxides.

A

2AL + Fe2O3 –> Al2O3 + 2Fe

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3
Q

Identify two hazards with the process of making vanadium using HCL other than temp

A

HCL is corrosive and hydrogen gas is flammable.

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4
Q

Deduce why this process produces pure vanadium other than the fact purified VCL2 is used.

A

The only other product produces is HCL which is a gas and it can therefore escape.

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5
Q

Why does Cl4 have a bond angle of 109.5

A

This is due to it having no lone pairs and 4 bonding pairs. Therefore they repel each other equally and spread as far as possible.

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6
Q

the reaction of iron with antimony sulfide to form antinomy and iron 3 sulfide

A

3Fe + Sb2S3 –> 2sb + 3Fes

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7
Q

One substance that is manufactured directly from sulfur dioxide is formed in this reaction.

A

Sulfur Trioxide

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8
Q

Why is the method of extraction from antinomy from a low-grade core ore is described as a low-cost process

A

Because it is a single-step process

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9
Q

suggest one other source of error in the student’s experiment

A

It was incomplete combustion

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10
Q

Suggest one reason why using a powdered catalyst increases the rate of reaction

A

It increases the collision frequency and the contact between the solids.

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11
Q

Suggest one major reason why this method of extracting strontium is expensive

A

Aluminum extract requires a large amount of energy due to it being extracted by electricity.

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12
Q

Why does calcium have a higher melting point than strontium

A

calcium has a stronger attraction between the cations and the delocalized electrons

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13
Q

Write the equation for magnesium and cold water

A

Mg + 2H2O –> 2Mg (OH)2 + H2

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14
Q

Give a medical use for the magnesium compound formed in the reaction of magnesium with cold water

A

Magnesium oxide is used to relieve indigestion and neutralize stomach acids

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15
Q

deduce the role of the bacteria in this reaction

A

A catalyst to speed up the reaction

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16
Q

Standard enthalpy of combustion

A

This is the enthalpy change when one mole a substance is burnt in excess oxygen with all the reactants and products under standard conditions

17
Q

What are standard conditions?

A

298K

100kpa

18
Q

Standard enthalpy of formation

A

This is the enthalpy change when one mole of a substance is produced from its constituent elements under standard conditions.

19
Q

Suggest two reasons why the value obtained by the student is different from the value calculated

A
  • Reactants not in standard condition
  • incomplete combustion
  • Energy has been lost to the surroundings due to heat loss
20
Q

state a change in volume of water that would cause a reduction in heat loss

A

Increase in volume as there is increased contact between the colorimeter and the water.

21
Q

A 50g sample of water was used. Explain how you could measure out this water without using a gas syringe

A

Water has a known density of 1gcm3 and therefore a volume of 50cm3 could be measured out

22
Q

write an equation for the fermentation reaction?

A

C6H1206 —> 2CH3 CH2OH + 2CO2

23
Q

give two essential conditions for the reaction to produce a good yield of ethanol.

A

Enzymes from yeast and conditions are aerobically

24
Q

Name the process used to produce a much more concentrated solution of ethanol from a dilute aqueous solution.

A

Fractional distillation

25
Q

What is carbon neutral

A

this is that there is no net overall carbon dioxide emission to the atmosphere

26
Q

Mean bond enthalpy

A

the average energy change over a range of molecules needed in breaking covalent bonds

27
Q

deduce the steps needed to determine an accurate minimum temperature that is not influenced by heat from the surroundings

A
  • Star a clock watch when the substance is added to water
  • Record the temperature every min for 5 min
  • Plot a graph temperature vs time
  • extrapolate back to the time of mixing and determine the temperature
28
Q

Lattice enthalpy of disassociation

A

enthalpy of solution = lattice enthalpy + hydration enthalpy of both ions.

  • Rearrange the equation
  • make sure that you x2 if the question mentions chloride ions
29
Q

why is your answer from lattice enthalpy off disassociation for magnesium chloride

A

Mag ion is smaller than calcium ions, therefore, this attracts chloride ions more strongly due to ionic bonding.