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Tamilnadu Samacheer Kalvi 11th Business Maths Solutions Chapter 6 Applications of Differentiation Ex 6.1

Samacheer Kalvi 11th Business Maths Applications of Differentiation Ex 6.1 Text Book Back Questions and Answers

Question 1.
A firm produces x tonnes of output at a total cost of C(x) = \(\frac{1}{10}\) x3 – 4x2 – 20x + 7 find the
(i) average cost
(ii) average variable cost
(iii) average fixed cost
(iv) marginal cost and
(v) marginal average cost.
Solution:
c(x) = f(x) + x
c(x) = \(\frac{1}{10}\) x3 – 4x2 – 20x + 7
Then f(x) = \(\frac{1}{10}\) x3 – 4x2 – 20x and k = 7
(i) Average Cost (AC) = \(\frac{\text { Total cost }}{\text { Output }}=\frac{C(x)}{x}=\frac{f(x)+k}{x}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q1

(ii) Average Variable Cost (AVC) = \(\frac{\text { Variable cost }}{\text { Output }}=\frac{f(x)}{x}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q1.1

(iii) Average Fixed Cost (AFC) = \(\frac{\text { Fixed cost }}{\text { Output }}=\frac{k}{x}=\frac{7}{x}\)

(iv) Marginal Cost (MC) = \(\frac{d \mathrm{C}}{d x}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q1.2

(v) Marginal Average Cost (MAC) = \(\frac{d}{d x}\) (AC)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q1.3

Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1

Question 2.
The total cost of x units of output of a firm is given by C = \(\frac{2}{3} x+\frac{35}{2}\). Find the
(i) cost when output is 4 units
(ii) average cost when output is 10 units
(ii) marginal cost when output is 3 units
Solution:
C = \(\frac{2}{3} x+\frac{35}{2}\)
i.e., C(x) = \(\frac{2}{3} x+\frac{35}{2}\)
(i) Cost when output is 4 units, i.e., to find when x = 4, C = ?
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q2

(ii) Average cost when output is 10 units, i.e., to find when x = 10, AC = ?
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q2.1
Average cost when output is 10 units is ₹ \(\frac{29}{12}\)

(iii) Marginal cost when output is 3 units
C = \(\frac{2}{3} x+\frac{35}{2}\)
Marginal Cost (MC) = \(\frac{d}{d x}\) (C)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q2.2
Marginal cost when output is 3 units will be ₹ \(\frac{2}{3}\)

Question 3.
Revenue function ‘R’ and cost function ‘C’ are R = 14x – x2 and C = x(x2 – 2). Find the
(i) average cost
(ii) marginal cost
(iii) average revenue and
(iv) marginal revenue.
Solution:
R = 14x – x2 and C = x(x2 – 2)
C = x3 – 2x
(i) Average Cost (AC) = \(\frac{\text { Total cost }}{\text { Output }}=\frac{C(x)}{x}\)
= \(\frac{x^{3}-2 x}{x}\)
= \(\frac{x^{3}}{x}-\frac{2 x}{x}\)
= x2 – 2

(ii) Marginal Cost (MC) = \(\frac{d \mathrm{C}}{d x}\)
= \(\frac{d}{d x}\) (x3 – 2x)
= \(\frac{d}{d x}\) (x3) – 2 \(\frac{d}{d x}\) (x)
= 3x2 – 2

(iii) Average Revenue R = 14x – x2
Average Revenue (AR) = \(\frac{\text { Total Revenue }}{\text { Output }}=\frac{\mathrm{R}(x)}{x}\)
= \(\frac{14 x-x^{2}}{x}\)
= \(\frac{14 x}{x}-\frac{x^{2}}{x}\)
= 14 – x

(iv) Marginal Revenue (MR) = \(\frac{d \mathrm{R}}{d x}\)
= \(\frac{d}{d x}\) (14x – x2)
= 14 \(\frac{d}{d x}\) (x) – \(\frac{d}{d x}\) (x2)
= 14(1) – 2x
= 14 – 2x

Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1

Question 4.
If the demand law is given by p = 10\(e^{-\frac{x}{2}}\) then find the elasticity of demand.
Solution:
p = 10\(e^{-\frac{x}{2}}\)
Elasticity of demand: ηd = \(-\frac{p}{x} \cdot \frac{d x}{d p}\)
p = 10\(e^{-\frac{x}{2}}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q4
Elasticity of demand: ηd = \(-\frac{p}{x} \cdot \frac{1}{\left(\frac{d p}{d x}\right)}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q4.1

Question 5.
Find the elasticity of demand in terms of x for the following demand laws and also find the value of x where elasticity is equals to unity.
(i) p = (a – bx)2
(ii) p = a – bx2
Solution:
(i) p = (a – bx)2
= \(\frac{d p}{d x}=2(a-b x)^{2-1} \frac{d}{d x}(a-b x)\)
= 2(a – bx) (0 – b(1))
= -2b(a – bx)
Elasticity of demand: ηd = \(-\frac{p}{x} \cdot \frac{d x}{d p}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q5
When the elasticity of demand is equals to unity,
\(\frac{a-b x}{2 b x}\) = 1
a – bx = 2bx
2bx = a – bx
2bx + bx = a
3bx = a
x = \(\frac{a}{3 b}\)
∴ The value of x when elasticity is equal to unity is \(\frac{a}{3 b}\)

(ii) p = a – bx2
\(\frac{d p}{d x}=0-b \frac{d}{d x}\left(x^{2}\right)\)
= -b(2x)
= -2bx
Elasticity of demand: ηd = \(-\frac{p}{x} \cdot \frac{d x}{d p}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q5.1
When elasticity is equals to unit,
\(\frac{a-b x^{2}}{2 b x^{2}}\) = 1
a – bx2 = 2bx2
2bx2 = a – bx2
2bx2 + bx2 = a
3bx2 = a
x2 = \(\frac{a}{3 b}\)
x = \(\sqrt{\frac{a}{3 b}}\)
∴ The value of x when elasticity is equal to unity is \(\sqrt{\frac{a}{3 b}}\)

Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1

Question 6.
Find the elasticity of supply for the supply function x = 2p2 + 5 when p = 3.
Solution:
x = 2p2 + 5
\(\frac{d x}{d p}\) = 2 × 2p + 0 = 4p
Elasticity of supply: ηs = \(\frac{p}{x} \cdot \frac{d x}{d p}\)
= \(\frac{p}{2 p^{2}+5} \times 4 p\)
= \(\frac{4 p^{2}}{2 p^{2}+5}\)
When p = 3, elasticity of supply, ηs = \(\frac{4 \times 3^{2}}{2(3)^{2}+5}\)
= \(\frac{4 \times 9}{18+5}\)
= \(\frac{36}{23}\)

Question 7.
The demand curve of a commodity is given by p = \(\frac{50-x}{5}\), find the marginal revenue for any output x and also find marginal revenue at x = 0 and x = 25?
Solution:
Given that p = \(\frac{50-x}{5}\)
Revenue, R = px
= \(\left(\frac{50-x}{5}\right) x\)
= \(\frac{50 x-x^{2}}{5}\)
= \(\frac{1}{5}\) (50x – x2)
Marginal Revenue (MR) = \(\frac{d}{d x}\) (R)
= \(\frac{d}{d x}\) \(\frac{1}{5}\) (50x – x2)
= \(\frac{1}{5}\) \(\frac{d}{d x}\) (50x – x2)
= \(\frac{1}{5}\) (50 – 2x)
Marginal revenue when x = 0 is, MR = \(\frac{1}{5}\) (50 – 2 × 0)
= \(\frac{1}{5}\) × 50
= 10
When x = 25, marginal revenue is MR = \(\frac{1}{5}\) (50 – 2 × 25)
= \(\frac{1}{5}\) (50 – 50)
= 0

Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1

Question 8.
The supply function of certain goods is given by x = a\(\sqrt{p-b}\) where p is unit price, a and b are constants with p > b. Find elasticity of supply at p = 2b.
Solution:
Given that x = a\(\sqrt{p-b}\)
Elasticity of supply: ηs = \(\frac{p}{x} \cdot \frac{d x}{d p}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q8
Hint for differentiation
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q8.1
When p = 2b, Elasticity of supply: ηs = \(\frac{2 b}{2(2 b-b)}=\frac{2 b}{2 b}=1\)

Question 9.
Show that MR = p \(\left[1-\frac{\mathbf{1}}{\eta_{d}}\right]\) for the demand function p = 400 – 2x – 3x2 where p is unit price and x is quantity demand.
Solution:
Given p = 400 – 2x – 3x2
Revenue, R = px = (400 – 2x – 3x2)x = 400x – 2x2 – 3x3
Marginal Revenue (MR) = \(\frac{d}{d x}\) (R)
= \(\frac{d}{d x}\) (400x – 2x2 – 3x3)
= 400 – 4x – 9x2
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q9
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q9.1
Thus for the function p = 400 – 2x – 3x2
MR = \(p\left[1-\frac{1}{\eta_{d}}\right]\)

Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1

Question 10.
For the demand function p = 550 – 3x – 6x2 where x is quantity demand and p is unit price. Show that MR = \(p\left[1-\frac{1}{\eta_{d}}\right]\)
Solution:
Given p = 550 – 3x – 6x2
Revenue, R = px = (550 – 3x – 6x2)x = 550x – 3x2 – 6x3
Marginal Revenue (MR) = \(\frac{d}{d x}\) (R)
= \(\frac{d}{d x}\) (550x – 3x2 – 6x3)
= 550 – 6x- 18x2
Now ηd = \(-\frac{p}{x} \cdot \frac{d x}{d p}\)
p = 550 – 3x – 6x2
\(\frac{d p}{d x}\) = 0 – 3 – 12x
∴ ηd = \(-\frac{p}{x} \cdot \frac{1}{\left(\frac{d p}{d x}\right)}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q10

Question 11.
For the demand function x = \(\frac{25}{p^{4}}\), 1 ≤ p ≤ 5, determine the elasticity of demand.
Solution:
The demand function, x = \(\frac{25}{p^{4}}\), 1 ≤ p ≤ 5
The elasticity demand, ηd = \(-\frac{p}{x} \cdot \frac{d x}{d p}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q11
Hint for differentiation
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q11.1
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q11.2

Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1

Question 12.
The demand function of a commodity is p = 200 – \(\frac{x}{100}\) and its cost is C = 40x + 120 where p is a unit price in rupees and x is the number of units produced and sold. Determine
(i) profit function
(ii) average profit at an output of 10 units
(iii) marginal profit at an output of 10 units and
(iv) marginal average profit at an output of 10 units.
Solution:
The demand function, p = 200 – \(\frac{x}{100}\)
Cost is C = 40x + 120
Revenue function, R(x) = px
= \(\left(200-\frac{x}{100}\right) x\)
= 200x – \(\frac{x^{2}}{100}\)
(i) Profit function = R(x) – C(x)
= 200x – \(\frac{x^{2}}{100}\) – (40x + 120)
= 200x – \(\frac{x^{2}}{100}\) – 40x – 120
= 160x – \(\frac{x^{2}}{100}\) – 120

(ii) Average profit (AP) = \(\frac{\text { Total Profit }}{\text { Output }}\)
= \(\frac{1}{x}\left(160 x-\frac{x^{2}}{100}-120\right)\)
= \(160-\frac{x}{100}-\frac{120}{x}\)
Average profit at an output of 10 units
When x = 10, average profit = 160 – \(\frac{10}{100}-\frac{120}{10}\)
= 160 – \(\frac{1}{10}\) – 12
= 148 – \(\frac{1}{10}\)
= 148 – 0.1
= ₹ 147.9

(iii) Marginal profit [MP] = \(\frac{d \mathrm{P}}{x}\)
= \(\frac{d}{d x}\left(160 x-\frac{x^{2}}{100}-120\right)\)
= 160 – \(\frac{2 x}{100}\)
= 160 – \(\frac{x}{50}\)
Marginal profit when x = 10, is = 160 – \(\frac{10}{50}\)
= 160 – \(\frac{1}{5}\)
= 160 – 0.2
= ₹ 159.8

(iv) Average profit AP = 160 – \(\frac{x}{100}-\frac{120}{x}\)
Marginal average profit (MAP) = \(\frac{d}{d x}\) (AP)
= \(\frac{d}{d x}\left(160-\frac{x}{100}-\frac{120}{x}\right)\)
= 0 – \(\frac{1}{100}-120\left(-\frac{1}{x^{2}}\right)\) [∵ \(\frac{d}{d x}\left(\frac{1}{x}\right)=\frac{-1}{x^{2}}\)]
= \(\frac{-1}{100}+\frac{120}{x^{2}}\)
When x = 10, marginal average profit is = \(-\frac{1}{100}+\frac{120}{10^{2}}\)
= \(\frac{-1}{100}+\frac{120}{100}\)
= \(\frac{-1+120}{100}\)
= \(\frac{119}{100}\)
= ₹ 1.19

Question 13.
Find the values of x, when the marginal function of y = x3 + 10x2 – 48x + 8 is twice the x.
Solution:
y = x3 + 10x2 – 48x + 8
Marginal function, \(\frac{d y}{d x}\) = 3x2 + 10(2x) – 48
= 3x2 + 20x – 48
Given that, the marginal function is twice the x.
Therefore, 3x2 + 20x – 48 = 2x
3x2 + 18x – 48 = 0
Divide throughout by 3, x2 + 6x – 16 = 0
(x + 8) (x – 2) = 0
x = -8 (or) x = 2
The values of x are -8, 2.

Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1

Question 14.
The total cost function y for x units is given by y = 3x\(\left(\frac{x+7}{x+5}\right)\) + 5. Show that the marginal cost decreases continuously as the output increases.
Solution:
The total cost function, y = 3x\(\left(\frac{x+7}{x+5}\right)\) + 5
To prove the marginal cost decreases continuously as the output increase we should prove \(\frac{d y}{d x}\) is positive.
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q14
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q14.1
∴ The marginal cost decreases continuously of the output increases.

Question 15.
Find the price elasticity of demand for the demand function x = 10 – p where x is the demand p is the price. Examine whether the demand is elastic, inelastic, or unit elastic at p = 6.
Solution:
The demand function is x = 10 – p
Price elasticity of demand,
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q15
Price elasticity of demand when p – 6 is ηd = \(\frac{6}{10-6}=\frac{6}{4}\) = 1.5
∴ |ηd| = 1.5 > 1, the demand is elastic.

Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1

Question 16.
Find the equilibrium price and equilibrium quantity for the following functions.
Demand: x = 100 – 2p and supply: x = 3p – 50.
Solution:
Demand x = 100 – 2p
Supply x = 3p – 50
At equilibrium, demand = supply
100 – 2p = 3p – 50
-2p – 3p = -100 – 50
-5p = -150
p = \(\frac{-150}{-5}\) = 30
∴ Equilibrium price pE = 30
Supply, x = 3p – 50
Put p = 30, we get
x = 3(30) – 50 = 90 – 50 = 40
∴ Equilibrium quantity xE = 40

Question 17.
The demand and cost functions of a firm are x = 6000 – 30p and C = 72000 + 60x respectively. Find the level of output and price at which the profit is maximum.
Solution:
We know that profit is maximum when marginal Revenue (MR) = Marginal Cost (MC)
The demand function, x = 6000 – 30p
30p = 6000 – x
p = \(\frac{1}{30}\) (6000 – x)
p = \(\frac{6000}{30}-\frac{x}{30}\)
p = 200 – \(\frac{x}{30}\) …….. (1)
Revenue, R = px
= \(\left(200-\frac{x}{30}\right) x\)
= 200x – \(\frac{x^{2}}{30}\)
Marginal Revenue (MR) = \(\frac{d \mathrm{R}}{d x}\)
Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1 Q17
Cost function, C = 72000 + 60x
Marginal cost, \(\frac{d \mathrm{C}}{d x}\) = \(\frac{d}{d x}\) (72000 + 60x)
= 0 + 60(1)
= 60
But marginal revenue = marginal cost
200 – \(\frac{x}{15}\) = 60
\(-\frac{x}{15}\) = 60 – 200
\(-\frac{x}{15}\) = -140
-x = – 140 × 15
x = 140 × 15 = 2100
The output is 2100 units.
By (1) we have p = 200 – \(\frac{x}{30}\)
When x = 2100,
Profit, p = 200 – \(\frac{2100}{30}\) = 200 – 70 = 130
p = ₹ 130

Samacheer Kalvi 11th Business Maths Guide Chapter 6 Applications of Differentiation Ex 6.1

Question 18.
The cost function of a firm is C = x3 – 12x2 + 48x. Find the level of output (x > 0) at which average cost is minimum.
Solution:
The cost function is C = x3 – 12x2 + 48x
Average cost is minimum,
When Average Cost (AC) = Marginal Cost (MC)
Cost function, C = x3 – 12x2 + 48x
Average Cost, AC = \(\frac{x^{3}-12 x^{2}+48 x}{x}\) = x2 – 12x + 48
Marginal Cost (MC) = \(\frac{d \mathrm{C}}{d x}\)
= \(\frac{d}{d x}\) (x3 – 12x2 + 48x)
= 3x2 – 24x + 48
But AC = MC
x2 – 12x + 48 = 3x2 – 24x + 48
x2 – 3x2 – 12x + 24x = 0
-2x2 + 12x = 0
Divide by -2 we get, x2 – 6x = 0
x (x – 6) = 0
x = 0 (or) x – 6 = 0
x = 0 (or) x = 6
But x > 0
∴ x = 6
Output = 6 units