Ram borrows $₹ 22500$ at $10 %$ per annum, compounded annually. If he repays $₹ 11250$ at the end of first year and $₹ 12550$ at the end of the second year, find the amount of loan outstanding against him at the end of third year.

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Solution

Given that
Principal (P) $=$ $₹ 22500$
Rate (R) $= 10 % p . a .$
Time (T) $= 3 y e a r s$
We need to find the amount of loan outstanding against him at the end of the third year
We know that if money borrowed on compound interest then
$A m o u n t = P {(1 + \frac{R}{100})}^{T}$
Let us calculate the amount yearly
Step 1
Beginning with the first year:
Amount at the end of the first year $= P {(1 + \frac{R}{100})}^{1} = 22500 {(1 + \frac{10}{100})}^{1} = 22500 x \frac{11}{10} = ₹ 24750$
Amount paid at the end of the first year $= ₹ 11250$ (given)
Balance after the first year $= ₹ 24750 - ₹ 11250 = ₹ 13500$
Now, this balance becomes principal for next year's calculation.

Amount at the end of 2nd year $= ₹ 13500 {(1 + \frac{10}{100})}^{1} = ₹ 13500 x \frac{11}{10} = ₹ 14850$
Amount paid at the end of the second year $= ₹ 12550$ (given)
Balance after the second year $= ₹ 14850 - ₹ 12550 = ₹ 2300$
Now, this balance becomes principal for next year's calculation.

Amount at the end of the third year $= 2300 {(1 + \frac{10}{100})}^{1} = 2300 x \frac{11}{10} = ₹ 2530$

Hence the amount of loan outstanding against him at the end of the third year is $₹ 2530$

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