Please help with this question p.s. if ur called prexicular, go away

Question

asked Nov 19, 2024 218k views

1 Answer

DachuanZhao · Answer 1 · 2024-11-25T15:09:50+0000

Answer:

$W=(A-2HL)/(2(L+H)),\;\;L\\eq -H$

Explanation:

To make W the subject of the formula, use algebraic operations to isolate W.

Given equation:

A=2(LW+WH+HL)

Divide both sides of the equation by 2:

$\implies (A)/(2)=(2(LW+WH+HL))/(2)$

$\implies (A)/(2)=LW+WH+HL$

Subtract HL from both sides of the equation:

$\implies (A)/(2)-HL=LW+WH+HL-HL$

$\implies (A)/(2)-HL=LW+WH$

Rewrite the left side of the equation as one fraction by multiplying the term HL by 2/2:

$\implies (A)/(2)-HL \cdot (2)/(2)=LW+WH$

$\implies (A)/(2)-(2HL)/(2)=LW+WH$

$\implies (A-2HL)/(2)=LW+WH$

Factor out the common term W from the right side of the equation:

$\implies (A-2HL)/(2)=W(L+H)$

Divide both sides of the equation by (L + H):

$\implies ((A-2HL)/(2))/((L+H))=(W(L+H))/((L+H))$

$\implies W=((A-2HL)/(2))/((L+H))$

Simplify the right side of the equation:

$\implies W=(A-2HL)/(2) /(L+H)$

$\implies W=(A-2HL)/(2) \cdot (1)/((L+H))$

$\implies W=(A-2HL)/(2(L+H))$

If the denominator is equal to zero, W is undefined.

Therefore, we need to impose the condition L ≠ -H.

Therefore, the final solution is:

$W=(A-2HL)/(2(L+H)),\;\;L\\eq -H$