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Class 8 Maths Chapter 10 Practice Question Answers - Exponents and Powers

Q1: Write 3.61492 x 106 in usual form.
Sol:
3.61492 x 106
= 3.61492 x 1000000
= 3614920

Q2: Simplify [25 x t-4]/[5-3 x 10 x t-8]
Sol:

We can write the given expression as;
[52x t-4]/[5-3 x 5 x 2 x t-8]
= [52 x t-4+8]/[5-3+1 x2]
= [52+2 x t4]/[2]
= [54 x t4]/[2]
= [625/2] t4

Q3: 5 books and 5 paper sheets are placed in a stack. Find the total thickness of the stack if each book has a thickness of 20 mm and each sheet has a thickness of 0.016 mm.
Sol:

Given,
Thickness of 1 book = 20 mm
And,
Thickness of one paper = 0.016 mm
So, thickness of 5 books = 20 x 5 = 100 mm
And,
Thickness of 5 papers = 0.016 × 5 = 0.08 mm
Now, the total thickness of a stack is:
= 100 + 0.08 = 100.08 mm
= 100.08 102 / 102 mm
= 1.0008 × 102 mm

Q4: Find the value of x for which 2x ÷ 2-4 = 45
Sol:

Given,
2x ÷ 2-4 = 45
Now, 2x × (½)-4 = (22)5
Or, 2x × (½)-4 = 210
Thus, 2x+4 = 210
⇒ x + 4 = 10
Hence, x + 4 = 10
So, x = 6

Q5: Express 4-3 as a power with base 2.
Sol:

4-3 can be written as:
4-3 = (22)-3
Now, by using exponential law i.e. (am)n = amn
4-3 = 2-6 (which is in base 2 form).

Q6: Simplify the following expression and express the result in positive power notation:
(−4)5 ÷ (−4)8
Sol:

Using am ÷ an = am-n
(−4)5 ÷ (−4)8 = (-4)5/(-4)8
⇒ (-4)5-8 = 1/ (-4)3

Q7: Find the value of (40 + 4-1) × 22
Sol:

(40 + 4 -1) × 22 = (1 + ¼) × 4
= 5/4 x 4
= 5

Q8: Solve 3-4 and (½)-2
Sol:

We know, b-n = 1/bn
So, 3-4 = 1/34 = 1/81
And, (½)-2 = 1-2/2-2 
= 22/12 = 4

Q9: Evaluate a2 × a3 × a-5
Sol:
a2 × a3 × a-5 = a2+3-5
= a5-5
= a0 
= 1

Q10: Evaluate (√4)-3
Sol:

(√4)-3 = (4½)-3
= 4-3/2 = 1/ 43/2
= 1/(43)½ = 1/(64)½
= 1/(82)½ = 1/8

Q11: Calculate the missing value of “x” in the following expression: (11/9)3 × (9/11)6 = (11/9)2x-1
Sol:

Given: (11/9)3 × (9/11)6 = (11/9)2x-1
The multiplier of L.H.S of the equation can be written as:
(11/9)× (11/9)-6 = (11/9)2x-1
⇒ (11/9)3-6 = (11/9)2x-1
Therefore, -3 = 2x – 1
2x = -3 + 1
x = -2/2
x = -1

Q12: If a new-born bear weighs 4 kg, calculate how many kilograms a five-year-old bear weigh if its weight increases by the power of 2 in 5 years?
Sol:

Given,
Weight of new-born bear = 4 kg
Rate of weight increase in 5 years = power to 2
Thus, the weight of the 5-year old bear = 42
= 16 kg

Q13: Express 0.00000000837 in standard form.
Sol:

0.00000000837
= 0.00000000837 x 109 / 109
= 8.37 ×10-9

The document Class 8 Maths Chapter 10 Practice Question Answers - Exponents and Powers is a part of the Class 8 Course Mathematics (Maths) Class 8.
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