1. There are two containers: the first contains 500 ml of alcohol, while the second contains 500 ml of water. Three cups of alcohol from the first container is taken out and is mixed well in the second container. Then three cups of this mixture is taken out and is mixed in the first container. Let A denote the proportion of water in the first container and B denote the proportion of alcohol in the second container. Then,
Write Comment
Comments
By: anil on 05 May 2019 02.31 am
Let the volume of the cup be V.
Hence, after removing three cups of alcohol from the first container, Volume of alochol in the first container is 500-3V
Volume of water in the second container is 500 and volume of alcohol in the second container is 3V.
So, in each cup, the amount of alcohol contained is $$frac{3V}{500+3V}*V$$ Hence, after adding back 3 cups of the mixture, amount of alcohol in the first container is $$500-3V+frac{9V^2}{500+3V} = frac{500*500}{500+3V}$$
Amount of water contained in the second container is $$500 - frac{3*500*V}{500+3V} = frac{500*500}{500+3V}$$ So, the required proportion of alcohol in the first container and water in the second container are equal.
Terms And Service:We do not guarantee the accuracy of available data ..We Provide Information On Public Data.. Please consult an expert before using this data for commercial or personal use
Hence, after removing three cups of alcohol from the first container, Volume of alochol in the first container is 500-3V
Volume of water in the second container is 500 and volume of alcohol in the second container is 3V.
So, in each cup, the amount of alcohol contained is $$frac{3V}{500+3V}*V$$ Hence, after adding back 3 cups of the mixture, amount of alcohol in the first container is $$500-3V+frac{9V^2}{500+3V} = frac{500*500}{500+3V}$$
Amount of water contained in the second container is $$500 - frac{3*500*V}{500+3V} = frac{500*500}{500+3V}$$ So, the required proportion of alcohol in the first container and water in the second container are equal.