Separable Differential Equation

Click For Summary
SUMMARY

The discussion focuses on solving the separable differential equation related to the volume of water in a container, expressed as dV/dh = 16 sqrt(4 - (h - 2)²). The user initially struggles with integrating the expression and is advised to utilize trigonometric substitution for simplification. The correct approach involves substituting u = h - 2 and applying the sine function for further integration. The final solution requires careful attention to the substitutions made during the integration process.

PREREQUISITES
  • Understanding of ordinary differential equations (ODEs)
  • Familiarity with integration techniques, including u-substitution and trigonometric substitution
  • Knowledge of the properties of square roots and their integration
  • Basic concepts of volume and depth relationships in calculus
NEXT STEPS
  • Learn advanced integration techniques, specifically trigonometric substitution
  • Study the properties and applications of separable differential equations
  • Explore the use of definite integrals in calculating volumes
  • Practice solving ordinary differential equations with varying initial conditions
USEFUL FOR

Students studying calculus, particularly those focusing on differential equations, as well as educators seeking to enhance their teaching methods in integration techniques.

crm07149
Messages
6
Reaction score
0

Homework Statement


The volume V of water in a particular container is related to the depth h of the water by the equation dV/dh below. If V = 0 when h = 0, find V when h = 4.

Homework Equations


dV/dh = 16 sqrt(4-(h-2)2)

V(0) = 0
V(4) = ?

The Attempt at a Solution



I have not gotten the ODE in a form that I can integrate using separation of variables. I have gotten to the point dV/dh = 16 sqrt(-h2+4h) but this doesn't help much.
 
Last edited:
Physics news on Phys.org
Unless you miswrote the equation, you don't need to use separation of variables in this problem, since the right side is an equation of 1 variable. But you can do it like this:

dV/dh = √(4-(h-2)²)

move the dh over
∫dV = ∫√(4-(h-2)²) dh

V = (integrate that expression with respect to h) + C
 
The problem was from my textbook under the "separable equations" section so I listed it as that.

Integrating the expression √(4-(h-2)²) is what I was having trouble with. I tried u substitution, integration by parts, and other methods for awhile. Am I missing something obvious to integrate the expression?
 
I would try a trig substitution. To make things a little simpler, I would make an ordinary substitution u = h - 2, and then the trig substitution.

I usually draw a right triangle, with t being one of the acute angles, hypotenuse 2 and opposite (to angle t) side u. So the substitution here is sin t = u/2.

Don't forget that you'll need to undo two substitutions when you finally evaluate your antiderivative.
 

Similar threads

Apostol question about the differential equations of a falling object
  • · Replies 2 ·
Replies
2
Views
2K
Flux in a rotated cylindrical coordinate system
  • · Replies 7 ·
Replies
7
Views
2K
Integrate acceleration when a = f(v)
  • · Replies 2 ·
Replies
2
Views
1K
Maximizing the volume of a cylinder
  • · Replies 1 ·
Replies
1
Views
2K
How should I show that all solutions of this equation are bounded?
  • · Replies 4 ·
Replies
4
Views
2K
Calculating Minimum Water Level in a Barrel using ODE: Analysis and Approach
  • · Replies 3 ·
Replies
3
Views
2K
Solve the given second order differential equation
  • · Replies 14 ·
Replies
14
Views
1K
Rate of change problem (differentiation)
  • · Replies 12 ·
Replies
12
Views
2K
Find the equation of the tangent plane and normal to a surface
  • · Replies 1 ·
Replies
1
Views
1K
Finding the Centre of Mass of a Hemisphere
  • · Replies 13 ·
Replies
13
Views
3K