Practice Test on Compound Interest | Compound Interest Questions and Answers

Students can find several questions on Compound Interest. Practice the Objective Questions of Compound Interest Over here and be prepared for the exams. Learn how to solve Compound Interest Problems by checking the Solved Examples. Use the Sample Problems over here covering various questions including the Compound Interest Formula.

Compound Interest Practice Test has questions when the Interest Rate is Compounded Annually, Half-Yearly, Quarterly, Various Rate of Interest, Amount Calculations, etc. Solve the Questions on CI and test your knowledge on the related areas and bridge the gap accordingly.

1. The compound interest on $ 20,000 at 5 % per annum for 3 years, compounded annually is?

Solution:

P = $20,000

R = 5%

n = 3 Years

A = P(1+R/100)ⁿ

= 20,000(1+5/100)³

=20,000(105/100)³

= 20,000(1.157)

= $23152

CI = A – P

= $23152 – $20,000

= $3152

2. The simple interest on a sum of money for 2 years at 3 % per annum is $ 6250. What will be the compound interest on the same sum at the same rate for the same period, compounded annually?

Solution:

From given data SI = $6250

T = 2 Years

R = 3%

SI = PTR/100

6250 = P*2*3/100

6250 = 6P/100

6250*100 = 6P

6P = 625000

P = $1,04,166

We know A = P(1+R/100)ⁿ

=1,04,166(1+3/100)²

=1,04,166(103/100)²

=1,10,509

Compound Interest = Amount – Principal

= $1,10,509 – $1,04,166

= $6343

3. If a sum of Rs. 10,000 lent for 10% per annum at compound interest then the sum of the amount will be Rs. 14,161 in

Solution:

We know A = P(1+R/100)ⁿ

Given P = Rs. 10,000

R = 10%

A = 14,161

n = ?

Substitute the input values in the formula of Amount we have

14161 = 10000(1+10/100)ⁿ

14161/10000 = (1+10/100)ⁿ

(11/10)⁴ = (11/10)ⁿ

n = 4 Years

4. The population of a city is 1,20,000. It increases by 5% in the first year and increases by 10% in the second year. What is the population of the town at the end of 2 yrs?

Solution:

The population of city = 1,20,000

The population of city after 2 years = P(1+R₁/100)(1+R₂/100)

= 1,20,000(1+5/100)(1+10/100)

= 1,20,000(1.05)(1.1)

= 1,38,600

Therefore, the Population of the city by the end of 2 years is 1,38,600.

5. The difference between simple interest and compound on Rs. 1500 for one year at 20% per annum reckoned half-yearly is

Solution:

Given Data is Principal = 1500

R = 20%

T = 1 year

SI = PTR/100

= (1500*1*20)/100

= Rs. 300

Amount A = P(1+R/100)ⁿ

=1500(1+(10/100))²

= 1500(1+1/10)²

=1500(1.1)²

= Rs. 1815

CI = A – P

= Rs. 1815 – Rs. 1500

= Rs. 315

Difference = CI – SI

= Rs. (315 – 300)

= Rs. 15

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