[tex]5\frac{1}{3}[/tex] liters is the amount to be drained out and replaced
Solution:
40 % antifreeze solution in 16 liter radiator
Let "x" be the amount drained from radiation and replaced with pure antifreeze
To obtain a 60 % antifreeze solution
The original solution is 16 liter, 40% of which is antifreeze
You want the solution to be 60% antifreeze:
60 % x 16 = [tex]\frac{60}{100} \times 16 = 9.6[/tex]
You will remove x liters of the 40% solution and replace it with x liters pure (100%) antifreeze.
[tex]40 \% (16 - x) + 100 \% \times x = 60 \% \times 16[/tex]
Let us solve expression for "x"
[tex]\frac{40}{100} \times (16 - x) + \frac{100}{100} \times x = \frac{60}{100} \times 16\\\\0.4(16-x) + x = 0.6 \times 16\\\\6.4 - 0.4x + x = 9.6\\\\6.4 + 0.6x = 9.6\\\\0.6x = 3.2\\\\x = 5.33\\\\x = 5\frac{1}{3}[/tex]
Thus [tex]5\frac{1}{3}[/tex] liters is the amount to be drained out and replaced
