Answer :
10 L of 30 % saline solution can be formed by mixing 4 L of 60 % saline solution and 6 L of 10 % saline solution.
Step-by-step explanation:
Let x be the number of liters of 60% saline solution
Now we require 10 L of 30% saline solution.
Liter soln % liters saline %
30 % 10 0.3
60 % x 0.6
10 % 10-x 0.1
Now forming the algebraic equation,
0.6x + 0.1 (10-x) = 10 (0.3)
0.6x + 1 - 0.1 x = 3
0.5 x = 2
x = 4 ( 4 l of 60 % solution is required. So 10 % saline solution required is 10 - 4 = 6 L).
Hence, 10 L of 30 % saline solution can be formed by mixing 4 L of 60 % saline solution and 6 L of 10 % saline solution.
Each solution required for the Bill is: 5L and 70L of saline solution.
Step-by-step explanation:
30% of 10L = [tex]\frac{30}{100}[/tex] × 10 = 3 L
Now,
60% of saline solution = 3L
So, saline solution = 3 × [tex]\frac{100}{60}[/tex] = 5L
Similarly,
10% of other saline solution = 7L
so, other saline solution = 7 × [tex]\frac{100}{10}[/tex] = 70L
Hence required solution is:
5 L of 60% saline solution
70 L of 10% other saline solution