Problem 1:
V+2 = 1/3(h+c)
3(V+2)= H+C
H=3(V+2) -C
Solving Specified Variables...
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Problem 2:
A-1/2 = (3/5)hb I multiply both sides by 5, then divide by 3.
(5/3)(A-1/2) = hb
((5/3)(A-1/2))/h = b
Make sense? Hopefully I was right about the "hb". 
The third problem is confusing. You wrote:
3. A= x-3/6-x + h, solve for h?
Does that mean:
3. A = x - x - (3/6) + h
Because if it does, the answer is very simple. x - x = 0 and 3/ 6 = 1/2 so,
A = (1/2) + h
h = A - (1/2)
Trying again! I'll use this: * to mean multiplication.
A= x-3/6-x + h The entire mess of 6-x+h can be multiplied to the other side, giving us:
A * (6-x+h) = x-3 In other words, A is multiplied by all three of those guys. Multiplying A through gives us:
A*6 - A*x + A*h = x-3 Now we can add A*x to both sides:
A*6 + A*h = x-3 + A*x Subtract A*6 from both sides.
A*h = x-3 + A*x - A*6 Now all we have to do is divide both sides by A to get h by itself. So you have to take the whole disaster on the right and divide it by A.
h = (x-3 + A*x - A*6)/A
Make more sense? Hopefully? I don't know if your teacher wants you to simplify or not. You could divide everything by A...
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just finded this page randomly
and understand nothing.
Hi everyone,
How would you solve these?
1. V=1/3(h+c)-2, solve for h?
2. A=1/2+3/5hb, solve for b?
3. A= x-3/6-x + h, solve for h?