In Problem 36, if a small furnace that generates 1000 Btu/hr is placed in zone B, determine the coldest it would eventually get in zone B has a heat capacity of 2°F per thousand Btu.

Short Answer

Expert verified

Therefore, the cold of zone B is eventually got 4601141.8°F.

Step by step solution

01

General form

Elimination Procedure for 2 x 2 Systems:

To find a general solution for the system

L1x+L2y=f1,L3x+L4y=f2,

Where L1,L2,L3, and L4 are polynomials in D=ddt:

  1. Make sure that the system is written in operator form.
  2. Eliminate one of the variables, say, y, and solve the resulting equation for x(t). If the system is degenerating, stop! A separate analysis is required to determine whether or not there are solutions.
  3. (Shortcut) If possible, use the system to derive an equation that involves y(t) but not its derivatives. [Otherwise, go to step (d).] Substitute the found expression for x(t) into this equation to get a formula for y(t). The expressions for x(t), and y(t) give the desired general solution.
  4. Eliminate x from the system and solve for y(t). [Solving for y(t) gives more constants- twice as many as needed.]
  5. Remove the extra constants by substituting the expressions for x(t) and y(t) into one or both of the equations in the system. Write the expressions for x(t) and y(t) in terms of the remaining constants.

Vieta’s formulas for finding roots:

For function y(t) to be bounded, we need both roots of the auxiliary equation to be non-positive if they are reals and, if they are complex, then the real part has to be non-positive. In other words,

  1. If r1,r2R, then r1·r20,r1+r20,
  2. If r1,r2=α±βi,β0, then α=r1+r220.

Section 3.3: Heat transfer, it is modelled by the following equationdTdt=KMt-Tt+Ht+Ut where1K is the time constant for the building given in hours, Mtis the outside temperature, Ttis the inside temperature, Htis the heating in the building, Utis the cooling.

02

Evaluate the given equation

Given that, 1000Btu/hris placed in zone B.

Referring to problem 36:

Only zone A is heated by a furnace, which generates 80,000Btu/hr.

The heat capacity of zone A is 14°Fper thousand Btu.

The time constant for heat transfer between zone A and the outside is 4 hours, between the unheated zone B and the outside is 5 hours, and between the two zones is 2 hours.

Let x(t) be denoted as the temperature in A at time t and y(t) be denoted as the temperature in B at time t.

Using the given information create the system of equation.

Then, dxdt=12yt-xt-xt4+20anddydt=12xt-yt-yt5+2

The above equations can be rewritten as,

role="math" localid="1664042606654" dxdt=12yt-xt-xt4+204dxdt=2yt-xt-xt+80=2yt-2xt+80-xt=2yt-3xt+80

4dxdt+3xt-2yt=80......(1)dydt=12xt-yt-yt5+210dydt=5xt-yt-2yt+20=5xt-5yt-2yt+20

=5xt-7yt+2010dydt-5xt+7yt=20......(2)

Rewrite the system in operator form:

4D+3x-2y=80......(3)-5x+10D+7y=20......(4)

03

Solve the equations

Multiply 5 on equation (3) and multiply4D+3on equation (4). Then, add them together to get.

54D+3x-10y-54D+3x+4D+310D+7y=400+604D+310D+7y-10y=46040D2+58D+21-10y=46040D2+58D+11y=460

40D2+58D+11y=400......(5)

Since the auxiliary equation to the corresponding homogeneous equation is:

40r2+58r+11=0.

Then,

r=-58±582-44×402×40=-29±40140

So, the roots arer=-29+40140and r=-29-40140.

Then, the general solution of y isyht=Ae-29+40140t+Be-29-40140t......(6)

Let us assume that, ypt=C......(7)

Substitute equation (7) in equation (5).

40D2+58D+11y=46040D2+58D+11C=46011C=460C=46011

Substitute the value of C in equation (7).

yt=yht+ypt=Ae-29+40140t+Be-29-40140t+46011

So, the general solution isyt=Ae-29+40140t+Be-29-40140t+46011......(8)

04

limit method

To find: limtx.

Implement the limits on equation (8).

role="math" localid="1664043341919" limtyt=limtAe-29+40140t+Be-29-40140t+46011=46011

So, the solution is founded

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