in a 35pound mixture, the percentage of pure quinine is 60. how much pure quinine should be added to the mixture so that the adulteration is 35% of the total.
Answers
Answered by
9
Hi,
here u go with ur answer..
Amount of quinine is 60% of 35=60/100*35=3/5*35=21lb. The amount of "adulteration" is 40% (100-60%). If we add x lb of quinine we get 21+x lb of quinine and the mass has increased by x to 35+x lb, so the percentage of quinine is now (21+x)/(35+x)=65/100, because the "adulteration" has reduced from 40/100 to 35/100, and the amount of quinine must be 1-35/100=65/100.
Multiply equation by (35+x): 21+x=0.65(35+x)=22.75+0.65x; this gives us: 0.35x=22.75-21=1.75. So x=1.75/0.35=5lb.
Mark the answer as BRAINLIEST PLZ
Similar questions