To make a mixture from two Quantity MCQ Quiz - Objective Question with Answer for To make a mixture from two Quantity - Download Free PDF

Given:

A jar contains a mixture of two liquids P and Q in the ratio 4:1.

10 litres of the mixture is taken out, and 10 litres of liquid Q is added to the jar.

The new ratio becomes 2:3.

Formula used:

Let the initial quantity of liquid P be 4x and liquid Q be x.

After removing 10 litres of the mixture:

Liquid P removed = \(\frac{4}{5} \times 10\) = 8 litres.

Liquid Q removed = \(\frac{1}{5} \times 10\) = 2 litres.

The remaining quantities after removal:

Liquid P = 4x - 8.

Liquid Q = x - 2.

Adding 10 litres of liquid Q:

New liquid Q = (x - 2) + 10.

New ratio of P:Q = 2:3.

Equation: \(\frac{\text{Liquid P}}{\text{Liquid Q}} = \frac{2}{3}\)

Calculation:

\(\frac{4x - 8}{x - 2 + 10} = \frac{2}{3}\)

⇒ \(\frac{4x - 8}{x + 8} = \frac{2}{3}\)

⇒ 3(4x - 8) = 2(x + 8)

⇒ 12x - 24 = 2x + 16

⇒ 12x - 2x = 16 + 24

⇒ 10x = 40

⇒ x = 4

Initial liquid P = 4x = 4 × 4 = 16 litres.

∴ The correct answer is option (2).

Given:

Initial ratio B1 : B2 = 3 : 2

Mixture removed = 10 litres

Replaced with = B2

Final ratio B1 : B2 = 3 : 5

Formula Used:

Amount of B1 removed = (Ratio of B1 / Total ratio) × Quantity removed

Amount of B2 removed = (Ratio of B2 / Total ratio) × Quantity removed

Calculations:

Let initial quantity of B1 = 3x litres

Let initial quantity of B2 = 2x litres

Amount of B1 in 10 litres removed mixture = (3 / (3 + 2)) × 10 = (3/5) × 10 = 6 litres

Amount of B2 in 10 litres removed mixture = (2 / (3 + 2)) × 10 = (2/5) × 10 = 4 litres

Remaining B1 = 3x - 6

Remaining B2 = 2x - 4

After adding 10 litres of B2, final quantity of B2 = 2x - 4 + 10 = 2x + 6

Final ratio:

⇒ (3x - 6) / (2x + 6) = 3 / 5

⇒ 5 × (3x - 6) = 3 × (2x + 6)

⇒ 15x - 30 = 6x + 18

⇒ 9x = 48

⇒ x = 48 / 9 = 16 / 3

Initial quantity of B1 = 3x = 3 × (16 / 3) = 16 litres

∴ Initially, there were 16 litres of B1 in the container.

Given:

Initial mixture = 60 litres

Ratio of acid and water = 7:5

Formula Used:

Initial quantity of acid = (7/12) × 60

Initial quantity of water = (5/12) × 60

New quantity of water = Initial quantity of water + Added water

New ratio of acid and water = 5:9

Calculations:

Initial quantity of acid = (7/12) × 60 = 35 litres

Initial quantity of water = (5/12) × 60 = 25 litres

Let the added water be "x" litres

New quantity of water = 25 + x

According to the new ratio:

35/(25 + x) = 5/9

9 × 35 = 5 × (25 + x)

315 = 125 + 5x

5x = 315 - 125

5x = 190

x = 38

∴ The amount of water to be added is 38 litres

Given:

Initial volume of milk = 72 litres

One-third of the milk is replaced by water.

One-third of the mixture is extracted again, and an equal amount of water is added.

Formula used:

Pure liquid after repeated dilution = y [1 - (x)]n

n = number of times

x = fraction of quantity removed

Calculation:

Pure milk remains = 72 [1 - (1/3)]2

⇒ Pure milk remains = 72 × 4/9

⇒ Pure milk = 32

Water remaining = 72 - 32 = 40

⇒ Milk : Water = 32 : 40 = 4 : 5

⇒ Milk : Water = 4 : 5

∴ The correct answer is option (1).

Given:

Initial ratio of Grape : Pineapple = 13 : 11

Mixture drawn off = 8 litres

Final ratio of Grape : Pineapple = 13 : 14

Formula Used:

Quantity of a component in mixture = (Ratio of component / Sum of ratios) × Total quantity of mixture

Calculation:

Let the initial total quantity of the mixture be 24x litres (13 + 11).

Initial quantity of grape juice = (13 / 24) × 24x = 13x litres

Initial quantity of pineapple juice = (11 / 24) × 24x = 11x litres

Quantity of grape juice drawn off = (13 / 24) × 8 = 13 / 3 litres

Quantity of pineapple juice drawn off = (11 / 24) × 8 = 11 / 3 litres

Remaining grape juice = 13x - 13/3 litres

Remaining pineapple juice = 11x - 11/3 litres

After adding 8 litres of pineapple juice, the quantity of pineapple juice becomes:

(11x - 11/3) + 8 litres

The new ratio of Grape : Pineapple is 13 : 14.

So, (13x - 13/3) / (11x - 11/3 + 8) = 13 / 14

⇒ 14 × (13x - 13/3) = 13 × (11x - 11/3 + 8)

⇒ 182x - 182/3 = 143x - 143/3 + 104

⇒ 39x = 104 + (182 - 143) / 3

⇒ 39x = 104 + 13

⇒ 39x = 117

⇒ x = 3

Initial quantity of pineapple juice = 11x = 11 × 3 = 33 litres

∴ The correct answer is Option (4).

Given:

Initial ratio B1 : B2 = 3 : 2

Mixture removed = 10 litres

Replaced with = B2

Final ratio B1 : B2 = 3 : 5

Formula Used:

Amount of B1 removed = (Ratio of B1 / Total ratio) × Quantity removed

Amount of B2 removed = (Ratio of B2 / Total ratio) × Quantity removed

Calculations:

Let initial quantity of B1 = 3x litres

Let initial quantity of B2 = 2x litres

Amount of B1 in 10 litres removed mixture = (3 / (3 + 2)) × 10 = (3/5) × 10 = 6 litres

Amount of B2 in 10 litres removed mixture = (2 / (3 + 2)) × 10 = (2/5) × 10 = 4 litres

Remaining B1 = 3x - 6

Remaining B2 = 2x - 4

After adding 10 litres of B2, final quantity of B2 = 2x - 4 + 10 = 2x + 6

Final ratio:

⇒ (3x - 6) / (2x + 6) = 3 / 5

⇒ 5 × (3x - 6) = 3 × (2x + 6)

⇒ 15x - 30 = 6x + 18

⇒ 9x = 48

⇒ x = 48 / 9 = 16 / 3

Initial quantity of B1 = 3x = 3 × (16 / 3) = 16 litres

∴ Initially, there were 16 litres of B1 in the container.

Given:

Initial ratio B1 : B2 = 3 : 2

Mixture removed = 10 litres

Replaced with = B2

Final ratio B1 : B2 = 3 : 5

Formula Used:

Amount of B1 removed = (Ratio of B1 / Total ratio) × Quantity removed

Amount of B2 removed = (Ratio of B2 / Total ratio) × Quantity removed

Calculations:

Let initial quantity of B1 = 3x litres

Let initial quantity of B2 = 2x litres

Amount of B1 in 10 litres removed mixture = (3 / (3 + 2)) × 10 = (3/5) × 10 = 6 litres

Amount of B2 in 10 litres removed mixture = (2 / (3 + 2)) × 10 = (2/5) × 10 = 4 litres

Remaining B1 = 3x - 6

Remaining B2 = 2x - 4

After adding 10 litres of B2, final quantity of B2 = 2x - 4 + 10 = 2x + 6

Final ratio:

⇒ (3x - 6) / (2x + 6) = 3 / 5

⇒ 5 × (3x - 6) = 3 × (2x + 6)

⇒ 15x - 30 = 6x + 18

⇒ 9x = 48

⇒ x = 48 / 9 = 16 / 3

Initial quantity of B1 = 3x = 3 × (16 / 3) = 16 litres

∴ Initially, there were 16 litres of B1 in the container.

Given:

Initial ratio of Grape : Pineapple = 13 : 11

Mixture drawn off = 8 litres

Final ratio of Grape : Pineapple = 13 : 14

Formula Used:

Quantity of a component in mixture = (Ratio of component / Sum of ratios) × Total quantity of mixture

Calculation:

Let the initial total quantity of the mixture be 24x litres (13 + 11).

Initial quantity of grape juice = (13 / 24) × 24x = 13x litres

Initial quantity of pineapple juice = (11 / 24) × 24x = 11x litres

Quantity of grape juice drawn off = (13 / 24) × 8 = 13 / 3 litres

Quantity of pineapple juice drawn off = (11 / 24) × 8 = 11 / 3 litres

Remaining grape juice = 13x - 13/3 litres

Remaining pineapple juice = 11x - 11/3 litres

After adding 8 litres of pineapple juice, the quantity of pineapple juice becomes:

(11x - 11/3) + 8 litres

The new ratio of Grape : Pineapple is 13 : 14.

So, (13x - 13/3) / (11x - 11/3 + 8) = 13 / 14

⇒ 14 × (13x - 13/3) = 13 × (11x - 11/3 + 8)

⇒ 182x - 182/3 = 143x - 143/3 + 104

⇒ 39x = 104 + (182 - 143) / 3

⇒ 39x = 104 + 13

⇒ 39x = 117

⇒ x = 3

Initial quantity of pineapple juice = 11x = 11 × 3 = 33 litres

∴ The correct answer is Option (4).

Given:

Initial mixture = 60 litres

Ratio of acid and water = 7:5

Formula Used:

Initial quantity of acid = (7/12) × 60

Initial quantity of water = (5/12) × 60

New quantity of water = Initial quantity of water + Added water

New ratio of acid and water = 5:9

Calculations:

Initial quantity of acid = (7/12) × 60 = 35 litres

Initial quantity of water = (5/12) × 60 = 25 litres

Let the added water be "x" litres

New quantity of water = 25 + x

According to the new ratio:

35/(25 + x) = 5/9

9 × 35 = 5 × (25 + x)

315 = 125 + 5x

5x = 315 - 125

5x = 190

x = 38

∴ The amount of water to be added is 38 litres

Given:

A jar contains a mixture of two liquids P and Q in the ratio 4:1.

10 litres of the mixture is taken out, and 10 litres of liquid Q is added to the jar.

The new ratio becomes 2:3.

Formula used:

Let the initial quantity of liquid P be 4x and liquid Q be x.

After removing 10 litres of the mixture:

Liquid P removed = \(\frac{4}{5} \times 10\) = 8 litres.

Liquid Q removed = \(\frac{1}{5} \times 10\) = 2 litres.

The remaining quantities after removal:

Liquid P = 4x - 8.

Liquid Q = x - 2.

Adding 10 litres of liquid Q:

New liquid Q = (x - 2) + 10.

New ratio of P:Q = 2:3.

Equation: \(\frac{\text{Liquid P}}{\text{Liquid Q}} = \frac{2}{3}\)

Calculation:

\(\frac{4x - 8}{x - 2 + 10} = \frac{2}{3}\)

⇒ \(\frac{4x - 8}{x + 8} = \frac{2}{3}\)

⇒ 3(4x - 8) = 2(x + 8)

⇒ 12x - 24 = 2x + 16

⇒ 12x - 2x = 16 + 24

⇒ 10x = 40

⇒ x = 4

Initial liquid P = 4x = 4 × 4 = 16 litres.

∴ The correct answer is option (2).

Given:

Two equal glasses are 1/3 and 1/4 full of milk respectively, and then filled with water to the brim.

Formula used:

Ratio = (Volume of Water) : (Volume of Milk)

Calculations:

Let the capacity of each glass be 1 unit.

Volume of Milk in Glass 1 = 1/3

Volume of Water in Glass 1 = 1 - 1/3 = 2/3

Volume of Milk in Glass 2 = 1/4

Volume of Water in Glass 2 = 1 - 1/4 = 3/4

Total Milk = 1/3 + 1/4

⇒ Total Milk = \(\frac{4}{12} + \frac{3}{12} = \frac{7}{12}\)

Total Water = 2/3 + 3/4

⇒ Total Water = \(\frac{8}{12} + \frac{9}{12} = \frac{17}{12}\)

Ratio of Water : Milk = Total Water : Total Milk

⇒ Ratio = \(\frac{17}{12} : \frac{7}{12}\)

⇒ Ratio = 17 : 7

∴ The correct answer is option (4).

Given:

Initial volume of milk = 72 litres

One-third of the milk is replaced by water.

One-third of the mixture is extracted again, and an equal amount of water is added.

Formula used:

Pure liquid after repeated dilution = y [1 - (x)]n

n = number of times

x = fraction of quantity removed

Calculation:

Pure milk remains = 72 [1 - (1/3)]2

⇒ Pure milk remains = 72 × 4/9

⇒ Pure milk = 32

Water remaining = 72 - 32 = 40

⇒ Milk : Water = 32 : 40 = 4 : 5

⇒ Milk : Water = 4 : 5

∴ The correct answer is option (1).