$ 2000 is invested at 3 % interest and $ 4000 is invested at 8 % interest
Solution:
Given that, total of $6000 was invested
Let "x" be the amount invested at 3 % interest
Then, (6000 - x) is the amount invested at 8 % interest
Given that,
The total yearly interest amounted to $380
Then, we can frame a equation as:
[tex]x \times 3 \% + (6000 - x) \times 8 \% = 380[/tex]
Solve the above expression for "x"
[tex]x \times \frac{3}{100} + (6000-x) \times \frac{8}{100} = 380\\\\0.03x + (6000-x) \times 0.08 = 380\\\\0.03x + 480 - 0.08x = 380\\\\-0.05x = -100\\\\\text{Divide both sides by -0.05 }\\\\x = 2000[/tex]
Thus, $ 2000 is invested at 3 % interest
(6000 - x) = 6000 - 2000 = 4000
$ 4000 is invested at 8 % interest
