Lesson 3.3.2.2
3.3.2.2 Modification of alkanes by cracking Quiz: AQA Chemistry, Unit 3
20 questions
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Lesson 3.3.2.2, Modification of alkanes by cracking: 20 multiple choice questions for the AQA Chemistry (7405), Unit 3: Organic chemistry, written with Revision Ninja.
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The 20 questions
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What type of bonds are broken during cracking?
- C-H bonds only
- Ionic bonds in salts
- Metallic bonds
- C-C bonds in alkanes
-
What conditions are used for thermal cracking?
- Low pressure and low temperature
- High pressure and high temperature
- Ultraviolet light only
- Zeolite catalyst at room temperature
-
What catalyst is used in catalytic cracking?
- Platinum wire only
- Concentrated sulfuric acid
- Sodium hydroxide
- A zeolite
-
Which product is mainly formed by thermal cracking?
- Ionic salts
- Metals
- Alkenes
- Carboxylic acids
-
What is the main use of catalytic cracking products?
- Making ionic salts for fertiliser
- Producing pure oxygen
- Motor fuels and aromatic hydrocarbons
- Making metal alloys
-
Which of these equations represents cracking of decane?
- C10H22 -> C10H20 + H2 only
- C10H22 -> C8H18 + C2H4
- C10H22 + O2 -> CO2 + H2O
- C10H22 -> 2C5H12
-
Why is cracking economically important?
- Long-chain alkanes are always more valuable than short ones
- Cracking produces only water as a product
- Cracking removes all sulfur from crude oil
- There is more demand for short-chain alkanes than the crude oil fractions supply
-
Why are alkenes produced by cracking valuable to industry?
- They are always converted into ionic salts
- They are always used directly as medicines
- They are used as feedstock to make polymers and other chemicals
- They are unreactive and therefore useless
-
Which product of catalytic cracking is an aromatic hydrocarbon?
- Ethanol
- Benzene
- Methane
- Ethene
-
What is the molecular formula of the alkene produced when C12H26 is cracked to give C8H18 and one alkene?
- C2H4
- C4H8
- C6H12
- C4H10
-
Which of the following is a reason for using a catalyst in cracking?
- It stops the alkanes from being broken
- It makes the reaction produce only ionic compounds
- It increases the molar mass of the products
- It allows cracking to occur at lower temperature and pressure
-
Which feature distinguishes thermal from catalytic cracking?
- Catalytic cracking needs no heating at all
- Thermal cracking uses a zeolite; catalytic cracking uses high pressure
- Thermal cracking gives only aromatics
- Thermal cracking gives mainly alkenes and needs high pressure; catalytic cracking uses a zeolite at slight pressure
-
Which compound is a common product of cracking that is used as a feedstock in the chemical industry?
- Sodium chloride
- Ethene
- Ethanoic acid
- Iron(III) oxide
-
Which statement about the mechanism of cracking is correct for this specification?
- The mechanism must be drawn with curly arrows
- The mechanism involves only oxygen atoms
- The mechanism is an ionic substitution
- The mechanism is not required
-
What is the balanced equation for cracking C16H34 to give C8H18 and an alkene?
- C16H34 -> C8H16 + C8H20
- C16H34 -> C4H10 + C12H24
- C16H34 -> C8H18 + C8H18
- C16H34 -> C8H18 + C8H16
-
How does cracking help a refinery meet demand for petrol?
- It breaks down heavier fractions into shorter alkanes suitable for petrol
- It converts petrol into heavy bitumen
- It removes all petrol from the mixture
- It adds sulfur to petrol
-
A refinery cracks C10H22 into C5H12 and an alkene. What is the alkene formula?
- C5H12
- C10H20
- C5H8
- C5H10
-
Which property of alkenes made by cracking makes them useful as feedstock?
- They are completely unreactive
- The C=C double bond is reactive
- They are always solid at room temperature
- They contain no carbon atoms
-
Explain why a refinery uses catalytic cracking rather than only thermal cracking for petrol production.
- Catalytic cracking needs no heat at all
- Thermal cracking gives no alkenes at all
- Catalytic cracking produces only ionic compounds
- Catalytic cracking gives more branched alkanes and aromatics needed for motor fuels, at lower pressure and energy cost
-
Explain why the cracking of long alkanes is endothermic and needs high temperature.
- The cracking reaction is always instantaneous at room temperature
- Breaking strong C-C bonds requires energy input, so high temperature supplies the energy for bond fission
- Alkanes react only with oxygen at high temperature
- Forming new C=C bonds releases heat and so no energy is needed
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