Annoying Loan Reyament Questions (1 Viewer)

BigBear_25

Member
Joined
Oct 11, 2005
Messages
79
Location
In font of my laptop
Gender
Male
HSC
2006
Can someone help me with these loan repayment questions

1) A loan of $6000 over 5 years at 15% p.a interest, charged monthly, is paid back in 5 yearly instalments. How much is each instalment, and how much money is paid back altogether?

2) Bill thinks he can afford a mortgage payment of $800 a month. How much can he borrow, to the nearest $100, over 25 years at 11.5% p.a. interest.

Thank you in advanced.

P.S: these questions are from Maths in Focus 2
 

insert-username

Wandering the Lacuna
Joined
Jun 6, 2005
Messages
1,226
Location
NSW
Gender
Male
HSC
2006
1) A loan of $6000 over 5 years at 15% p.a interest, charged monthly, is paid back in 5 yearly instalments. How much is each instalment, and how much money is paid back altogether?
Let R = the value of the repayment
Interest Rate = 15/12% = 1.25% per month

Year 1 = 6000*1.012512 - R

Year 2 = 6000*1.012524 - R*1.012512 - R

Year 3 = 6000*1.012536 - R*1.012524 - R*1.012512 - R

Year 5 = 6000*1.012560 - R*1.012548 - R*1.012536 - R*1.012524 - R*1.012512 - R

0 = 6000*1.012560 - R(1 + 1.012512 + 1.012524 + 1.012536 + 1.012548)

R = (6000*1.012560)/(1 + 1.012512 + 1.012524 + 1.012536 + 1.012548)

R = (6000*1.012560)/[(1.012560 - 1)/(0.1607545)

= $1835.68 per year. :)

Therefore $9178.40 is repaid altogether


I_F
 

SoulSearcher

Active Member
Joined
Oct 13, 2005
Messages
6,757
Location
Entangled in the fabric of space-time ...
Gender
Male
HSC
2007
2) Bill thinks he can afford a mortgage payment of $800 a month. How much can he borrow, to the nearest $100, over 25 years at 11.5% p.a. interest.

Here, you just have to find the original loan the person took out. Let the original amount be P, rate is 1 + (0.115/12) and time period be 300 months
At the beginning of the loan period,
A0 = P
After first repayment,
A1 = P * (1+23/2400) - 800
A2 = A1*(1+23/2400) - 800
= P*(1+23/2400)2 - 800((1+23/2400) + 1)
A3 = P*(1+23/2400)3 - 800((1+23/2400)2 + (1+23/2400) + 1)
...
A300 = P*(1+23/2400)300 - 800((1+23/2400)299 (1+23/2400)298+ ... + (1+23/2400) + 1)
but A300 = 0, as the loan is repayed, and ((1+23/2400)299 (1+23/2400)298+ ... + (1+23/2400) + 1) is a geometric series with 300 terms, first term 1 and ratio (1+23/2400), so
0 = P*(1+23/2400)300 - 800((1+23/2400)300 - 1)/(23/2400) - 1
P*(1+23/2400)300 = 800((1+23/2400)300 - 1)/((23/2400)-1)
P = { 800((1+23/2400)300 - 1)/((23/2400)-1) } / { (1+23/2400)300 }
= $78,703.83
= $78,700 to the nearest hundred
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top