Answer:
Dx/dt  = 4,8 f/s
Explanation:
The ladder placed against a wall, and the ground formed a right triangle
with x and h the legs and L the hypothenuse
Then
L² = x² + h²      (1)
L = 26 f
Taking differentials on both sides of the equation we get
0  = 2x Dx/dt  + 2h Dh/dt   (1)
In this equation
x = 10 Â distance between the bottom of the ladder and the when we need to find, the rate of the ladder moving away from the wall
Dx/dt is the rate we are looking for
h = ?   The height of the ladder when  x = 10
As   L²  =  x²  + h²
h²  =  L²  -  x²
h²  =  (26)²  - (10)²
h²  =  676  -  100
h²  = 576
h = 24 f
Then equation (1)
0  = 2x Dx/dt  + 2h Dh/dt
2xDx/dt  = -  2h Dh/dt
10 Dx/dt  = - 24 ( -2 )    ( Note the movement of the ladder is downwards)
Dx/dt  =  48/10
Dx/dt  = 4,8 f/s
