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Math 231, Problem Set 5 Solutions 1 Math 231.04, Problem Set 5 Solutions (Partial) Due Wednesday, Feb. 17, 2010 From Text Fundamentals of Diο¬erential Equations, by Nagle, Saο¬, and Snider Section 3.2, # 9, 19 Section 3.3, # 1, 2 Section 3.4, # 1, 5 Additional Problems: 1.) Suppose that a bacteria colony in a petri dish is growing unrestrictedly. If it takes 5 days for the population of bacteria to double, how long does it take for the population to triple? Assume the Malthusian model. Solution: Let π (π‘) denote the bacteria population at time π‘ days from the start. The Malthusian model is that π β² (π‘) = ππ (π‘). Solving this (which was done in class) gives π (π‘) = π (0)πππ‘ . Because the doubling time (the time for the population to double) is 5 days, we have π (5) = 2π (0). Hence 2π (0) = π (5) = π (0)ππβ 5 . Cancelling π (0) gives 2 = π5π . Taking the natural logarithm of both sides gives ln 2 = 5π, or π = 51 ln 2. Substituting this value for π in the equation π (π‘) = π (0)πππ‘ gives 1 π (π‘) = π (0)π( 5 ln 2)π‘ . To ο¬nd the tripling time (the time when the population is triple the original), we set π (π‘) = 3π (0) and solve for π‘: 1 3π (0) = π (0)π( 5 ln 2)π‘ . 1 We divide by π (0) to get 3 = π( 5 ln 2)π‘ and then take the natural logarithm of both sides to get ( ) 1 ln 3 = ln 2 π‘, 5 hence 5 ln 3 π‘= β 7.925 πππ¦π . ln 2 2.) A spherical snowball melts so that its volume changes at a rate proportional to its surface area. (This is reasonable since the heat comes in only through the surface.) If the initial radius is 8 cm, and and in 1 hour the radius becomes 5 cm, when will the snowball disappear? Hint: The volume of a sphere is 43 ππ3 and the surface area is 4ππ2 , where π is the radius. Find an equation expressing the rate of change of the volume of the snowball in terms of the volume. Math 231, Problem Set 5 Solutions 2 Solution: Let π (π‘) be the volume of the snowball at time π‘ hours, let π be the surface area, and π the radius. The problem gives the information that π β² = ππ = π4ππ2 , (1) 4 ππ3 , 3 for some constant π. Since π = ( 3 we have π = 3π /(4π), or π = 3π 4π )1/3 . Substituting this value of π in (1), we get β² π = π4π where π΄ = 4β 32/3 π π 42/3 π 2/3 [( 3π 4π )1/3 ]2 ( = 4ππ 3π 4π )2/3 4 β 32/3 π 2/3 ππ = π΄π 2/3 , 42/3 π 2/3 = is a constant. The equation π β² = π΄π 2/3 is separable: ππ = π΄π 2/3 , ππ‘ or ππ = π΄ ππ‘. π 2/3 Integrating both sides, β« (2) Note that β« β« ππ = π΄ ππ‘. π 2/3 β« π 1/3 ππ β2/3 = π ππ = = 3π 1/3 , 2/3 π 1/3 with the constant of integration omitted. Hence (2) becomes 3π 1/3 = β« π΄ ππ‘ = π΄π‘ + π΅. Multiplying by 3 gives π 1/3 = 3π΄π‘ + 3π΅ = πΆπ‘ + π·, for constants πΆ = 3π΄ and π· = 3π΅. Hence π = (πΆπ‘ + π·)3 . The initial radius is given as 8 cm, so the initial volume is π (0) = 34 ππ(0)3 = 43 π β 83 . Hence 4 π β 83 = π (0) = (πΆ β 0 + π·)3 = π·3 . 3 Hence )1/3 ( ) ( 4 1/3 4 3 = π·= πβ 8 π β 8. 3 3 Therefore ( )3 ( ) 4 1/3 (3) π = πΆπ‘ + π β 8 . 3 We are also given that the radius is 5 when π‘ = 1, or π(1) = 5. Hence π (1) = 4 ππ(1)3 = 34 π β 53 cm, so 3 ( 4 4 π β 53 = π (1) = π = πΆ β 1 + π 3 3 ( )1/3 )3 β 8 ( 4 = πΆ+ π 3 ( )1/3 )3 β 8 . Math 231, Problem Set 5 Solutions 3 Taking the cube root of both sides, 4 πΆ+ π 3 ( ( or πΆ = 43 π (3) gives )1/3 β 5β ( 4 π 3 )1/3 )1/3 4 β 8= π β 53 3 ( β 8 = ( ( 4 π 3 4 π = β π 3 (( = 4 π 3 ( )1/3 )3 )1/3 )1/3 )1/3 4 = π 3 ( (5 β 8) = β 4 β 3π‘ + π 3 ( ( )1/3 )1/3 4 π 3 β 5, )1/3 β 3. Substituting into )3 β 8 4 (β3π‘ + 8) = π(β3π‘ + 8)3 3 The snowball disappears when π = 0, or when (β3π‘ + 8)3 = 0, hence π‘= 8 βππ . 3 Although the approach above is straightforward, it is very messy computationally. There is a faster solution based on related rates, as follows. Since 4 π = ππ3 , 3 we have ππ ππ ππ ππ = = 4ππ2 . ππ‘ ππ ππ‘ ππ‘ On the other hand, we are given that the rate of change of the volume is proportional to the surface area π = 4ππ2 , so ππ = ππ = 4ππ2 π, ππ‘ for some constant π. Setting the two expressions for 4ππ2 ππ ππ‘ equal, ππ = 4ππ2 π. ππ‘ Cancelling the 4ππ2 terms gives ππ = π, ππ‘ which shows that the radius chages at a constant rate. Integrating in π‘ gives π = ππ‘ + πΆ, for some constant πΆ. Since π(0) = 8, we have 8 = π β 0 + πΆ, or πΆ = 8. Hence π = ππ‘ + 8. Since π(1) = 5, we have 5 = π β 1 + 8 = π + 8, Math 231, Problem Set 5 Solutions 4 so π = β3. Therefore π = β3π‘ + 8. The snowball disappears when the radius is 0, or when β3π‘ + 8 = 0, hence when π‘ = 8/3. 3.) The temperature of a living human being is 98.6 β , where temperature is measured in degrees Farenheit. A dead body with temperature 80 β is found in a room with constant temperature 70 β . If the temperature of the body one hour later is 75 β , how long before the body was found did it die? Assume Newtonβs Law of Cooling. Solution: Let π (π‘) denote the temperature of the body at time π‘ hours, and let π denote the room temperature, which is 70, measured in degrees Farenheit. Newtonβs Law of Cooling states that ππ = π(π β π ) = π(70 β π ), ππ‘ for some constant π. This equation is separable: ππ = π ππ‘. 70 β π Integrating both sides gives β« β« ππ = π ππ‘, 70 β π or β ln β£70 β π β£ = ππ‘ + πΆ. Multiplying through the last equation by β1 and noting that the temperature of the body will be greater than 70 and hence β£70 β π β£ = π β 70, we get ln(π β 70) = βππ‘ β πΆ. Taking the exponential of both sides, π β 70 = πln(π β70) = πβππ‘βπΆ = πβππ‘ πβπΆ = π΄πβππ‘ , where π΄ = πβπΆ is a constant. Hence (4) π = 70 + π΄πβππ‘ . It is easiest to break this problem into two parts, with separate time scales. In order to ο¬nd the constant π, which is a constant depending only on the object (in this case the body), let π‘ = 0 correspond to the moment the body was found. Then π (0) = 80 and π (1) = 75. From π (0) = 80, we get 80 = 70 + π΄πβπβ 0 = 70 + π΄π0 = 70 + π΄, so π΄ = 10. Hence (4) becomes π = 70 + 10πβππ‘ . Then using π (1) = 75, we get 75 = π (1) = 70 + 10πβπβ 1 = 70 + 10πβπ . Math 231, Problem Set 5 Solutions 5 To solve for π, we subtract 70 from both sides to get 5 = 10πβπ . Dividing both sides by 10, we get 1/2 = πβπ . Taking the natural logarithm of both sides gives ln(1/2) = βπ, or π = β ln(1/2) = ln 2, using the fact that ln(1/π₯) = β ln π₯ for any π₯ > 0. Now we know that π = ln 2, so substituting in (4) gives π = 70 + π΄πβ(ln 2)π‘ . (5) To ο¬nish the problem, it is convenient to use a diο¬erent starting point for the time scale. Let π‘ = 0 now be the time that the body died. (Changing the starting point for π‘ doesnβt change π, which is why we can use the value of π determined above, but it does change π΄, which is why we treat π΄ as unknown.) Then π (0) = 98.6 and if π‘0 denotes the time when the body was found, we have π (π‘0 ) = 80. Our goal is to ο¬nd π‘0 . Using π (0) = 98.6 in (5) gives 98.6 = π (0) = 70 + π΄πβ(ln 2)β 0 = 70 + π΄π0 = 70 + π΄, hence π΄ = 28.6. Thus we have π = 70 + 28.6πβ(ln 2)π‘ . Since π (π‘0 ) = 80, we have 80 = 70 + 28.6πβ(ln 2)π‘0 . Subtracting 70 from both sides gives 10 = 28.6πβ(ln 2)π‘0 , or πβ(ln 2)π‘0 = 10/28.6 = 1/2.86. Taking the natural logarithm of both sides yields β(ln 2)π‘0 = ln(1/2.86) = β ln 2.86. Hence π‘0 = ln 2.86 β 1.516 βππ . ln 2 4.) A baseball of mass .5 ππ is thrown directly upward from height 0 with an initial velocity of 50 π/π ππ. Assume that the force in newtons due to air resistance is β.3π£, where π£ is the velocity of the object. Determine the equation of motion of the baseball. What is the maximum height that the baseball reaches? How does your answer compare to what the maximum height would be if there is no air resistance? Warning: if you set up coordinates so that the positive axis is in the up direction, then the force due to gravity is downward, hence negative. Solution: We use a coordinate system with origin at the point on the ground where the baseball is thrown, oriented with the positive axis directly upward. Let π₯(π‘) denote the height of the baseball at time π‘, let π£(π‘) denote its velocity, and π(π‘) its acceleration. My Newtonβs Law, the acceleration of the baseball is related to the net force πΉ acting on it by πΉ = ππ. The force acting on the baseball has two components. One is due to gravity, and equals βππ (it is negative because gravity is pulling the object down, which is negative in our coordinate system), where π = 9.8 π/π ππ2 . The other force is due to air resistance, and is equal to β.3π£. Thus ππ£ β² = βππ β .3π£. Math 231, Problem Set 5 Solutions 6 Putting in the mass π = .5 and π = 9.8, we have .5π£ β² = β.5(9.8) β .3π£. Multiplying this equation through by 2, we have π£ β² = β(9.8) β .6π£, or π£ β² + .6π£ = β9.8. β« This is a ο¬rst order linear equation, with integrating factor π through by the integrating factor gives .6 ππ‘ = π.6π‘ . Multiplying π£ β² π.6π‘ + .6π.6π‘ π£ = β9.8π.6π‘ . π ( .6π‘ ) π π£ . Hence integrating both sides gives ππ‘ The left side is π.6π‘ π£ = β« 49 π ( .6π‘ ) 9.8 π π£ ππ‘ = β9.8π.6π‘ ππ‘ = β π.6π‘ + πΆ = β π.6π‘ + πΆ. ππ‘ .6 3 β« Multiplying the equation through by πβ.6π‘ gives π£=β (6) 49 + πΆπβ.6π‘ . 3 The initial velocity is π£(0) = 50 π/π ππ, as given in the problem. Hence 50 = β 49 49 + πΆπβ.6β 0 = β + πΆ, 3 3 so πΆ = 50 + 49/3 = 199/3. Substituting this value into (6) gives π£=β Since π£ = ππ₯ , we have ππ‘ β« β« π₯= π£(π‘) ππ‘ = β 49 199 β.6π‘ + π . 3 3 49 199 β.6π‘ 49 199 β.6π‘ 49 199 β.6π‘ + π ππ‘ = β π‘β π +πΆ1 = β π‘β π +πΆ1 . 3 3 3 3(.6) 3 1.8 At time 0, the baseball is at ground level, so π₯(0) = 0. Hence 0=β 49 199 β.6β 0 199 β 0β π + πΆ1 = β + πΆ1 . 3 1.8 1.8 Hence πΆ1 = 199/1.8. Substituting for πΆ, we get (7) π₯(π‘) = β 49 199 β.6π‘ 199 π‘β π + . 3 1.8 1.8 This is the equation of motion of the baseball. ππ₯ To ο¬nd the maximum height the baseball reaches, we take and set it equal to ππ‘ ππ₯ 49 199 β.6π‘ 0, to ο¬nd the time when the maximum height occurs. But =π£=β + π . ππ‘ 3 3 So we solve 49 199 β.6π‘ β + π = 0, 3 3 Math 231, Problem Set 5 Solutions or 7 199 β.6π‘ 49 49 π = , or πβ.6π‘ = . Taking the natural logarithm of both sides, we get 3 3 199 β.6π‘ = ln 49 199 = β ln , 199 49 1 199 ln . Substituting this π‘ into equation (7) (it is easier if we recall from .6 49 49 ), we get solving for π‘ that πβ.6π‘ = 199 so π‘ = 49 1 199 199 49 199 49 199 49 199 π₯=β ln β + =β ln β + 3 .6 49 1.8 199 1.8 1.8 49 1.8 1.8 ( ) β β27.2222(1.40148) β 27.2222 + 110.5555 β 45.17 π. If there is no air resistance, then the only force acting on the baseball is due to gravity, so ππ£ β² = ππ = πΉ = βππ. Cancelling π, we get π£ β² = βπ = β9.8. Integrating gives π£ = β9.8π‘ + πΆ. Since π£(0) = 50, we get 50 = 0 + πΆ, or πΆ = 50. Hence π£ = β9.8π‘ + 50. (8) Hence the maximum height is reached when π£ = π‘ = 50/9.8. To ο¬nd the equation of motion, π₯(π‘) = β« π£(π‘) ππ‘ = β« ππ₯ = 0, which is when 9.8π‘ = 50, or ππ‘ β9.8π‘ + 50 ππ‘ = β4.9π‘2 + 50π‘ + πΆ1 . Since π₯(0) = 0, we get 0 = 0 + 0 + πΆ1 , so πΆ1 = 0. Therefore π₯(π‘) = β4.9π‘2 + 50π‘. At the maximum height, where π‘ = 50/9.8, we get 50 π₯(π‘) = β4.9 9.8 ( )2 50 + 50 β 127.55 π. 9.8 ( )
