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Max/min problem (1 Viewer)

Sp3ctre

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I'm on holidays atm so I don't have any writing equipment to work out this question, but try splitting the trapezium into a right angle triangle and a square and equate the areas.

i.e. Area of trapezium = Area of square + Area of rectangle

Then rearrange so that y is the subject
 

fan96

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I got y2 = 20 - x2

(Did I do something wrong?)

IMG_0451.JPG

I'm on holidays atm so I don't have any writing equipment to work out this question, but try splitting the trapezium into a right angle triangle and a square and equate the areas.

i.e. Area of trapezium = Area of square + Area of rectangle

Then rearrange so that y is the subject
Unfortunately that doesn't work. From that, you get:

(1/2x)(x) [rectangle] + 1/2xy [triangle] = 1/2x(x+y) [trapezium]
i.e. 1/2(x+y) = 1/2(x+y)
 
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Sp3ctre

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I got y2 = 20 - x2

(Did I do something wrong?)

View attachment 34362



Unfortunately that doesn't work. From that, you get:

(1/2x)(x) [rectangle] + 1/2xy [triangle] = 1/2x(x+y) [trapezium]
i.e. 1/2(x+y) = 1/2(x+y)
Oh of course, I'm stupid D:

The working you provided seems correct, perhaps OP may have made a typo
 

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