Deck 4: Extrema on an Interval
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Deck 4: Extrema on an Interval
1



A
2
Locate the absolute extrema of the function




D
3



C
4



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5




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6



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7





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8
Determine whether Rolle's Theorem can be applied to the function



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9
any critical numbers of the function



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10



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11


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12


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15
a graphing utility to graph the function
absolute extrema of the function on the interval




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16


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17
all critical numbers of of the function



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18
a computer algebra system to graph the function
absolute extrema on the interval




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19
Locate the absolute extrema of the function




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20


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21
height of an object t seconds after it is dropped from a height of 550 meters is 

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22
Identify the open intervals where the function
decreasing. 


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23
company introduces a new product for which the number of units sold S is 

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24
Identify the open intervals on which the function
increasing or decreasing. 


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25
company introduces a new product for which the number of units sold S is 

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26
Determine whether the Mean Value Theorem can be applied to the function 

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27
plane begins its takeoff at 2:00 P.M. on a 2200-mile flight. After 12.5 hours, the plane arrives at its destination. Explain why there are at least two times during the flight when the
Speed of the plane is 100 miles per hour.
A)By the Mean Value Theorem, there is a time when the speed of the plane must equal the average speed of 303 mi/hr.The speed was 100 mi/hr when the plane was accelerating to
303 mi/hr and decelerating from 303 mi/hr.
B)By the Mean Value Theorem, there is a time when the speed of the plane must equal the average speed of 152 mi/hr.The speed was 100 mi/hr when the plane was accelerating to
152 mi/hr and decelerating from 152 mi/hr.
C)By the Mean Value Theorem, there is a time when the speed of the plane must equal the average speed of 88 mi/hr.The speed was 100 mi/hr when the plane was accelerating to 88
Mi/hr and decelerating from 88 mi/hr.
D)By the Mean Value Theorem, there is a time when the speed of the plane must equal the average speed of 117 mi/hr.The speed was 100 mi/hr when the plane was accelerating to
117 mi/hr and decelerating from 117 mi/hr.
E)By the Mean Value Theorem, there is a time when the speed of the plane must equal the average speed of 176 mi/hr.The speed was 100 mi/hr when the plane was accelerating to
176 mi/hr and decelerating from 176 mi/hr.
Speed of the plane is 100 miles per hour.
A)By the Mean Value Theorem, there is a time when the speed of the plane must equal the average speed of 303 mi/hr.The speed was 100 mi/hr when the plane was accelerating to
303 mi/hr and decelerating from 303 mi/hr.
B)By the Mean Value Theorem, there is a time when the speed of the plane must equal the average speed of 152 mi/hr.The speed was 100 mi/hr when the plane was accelerating to
152 mi/hr and decelerating from 152 mi/hr.
C)By the Mean Value Theorem, there is a time when the speed of the plane must equal the average speed of 88 mi/hr.The speed was 100 mi/hr when the plane was accelerating to 88
Mi/hr and decelerating from 88 mi/hr.
D)By the Mean Value Theorem, there is a time when the speed of the plane must equal the average speed of 117 mi/hr.The speed was 100 mi/hr when the plane was accelerating to
117 mi/hr and decelerating from 117 mi/hr.
E)By the Mean Value Theorem, there is a time when the speed of the plane must equal the average speed of 176 mi/hr.The speed was 100 mi/hr when the plane was accelerating to
176 mi/hr and decelerating from 176 mi/hr.
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28
height of an object t seconds after it is dropped from a height of 250 meters is 

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29
Determine whether Rolle's Theorem can be applied to the function



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30
Determine whether the Mean Value Theorem can be applied to the function 

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31
Determine whether the Mean Value Theorem can be applied to the function 

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32
Determine whether Rolle's Theorem can be applied to the function 

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33


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34
Which of the following functions passes through the point



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35
Determine whether Rolle's Theorem can be applied to the function 

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36


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37
Determine whether Rolle's Theorem can be applied to



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38
a function f that has derivative
the point (5,6). 


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39
ordering and transportation cost C for components used in a manufacturing 

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40


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41


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42
the points of inflection and discuss the concavity of the function. 

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43


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44
Determine the open intervals on which the graph of
is concave downward or concave upward. 


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45
the points of inflection and discuss the concavity of the function 

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46
resistance R of a certain type of resistor is
where R is measured in ohms and the temperature T is measured in degrees Celsius. Use a computer algebra
System to find


System to find


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47
all points of inflection on the graph of the function



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48
Determine the open intervals on which the graph of the function
concave upward or concave downward. 


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49


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50



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51
ball bearing is placed on an inclined plane and begins to roll. The angle of 

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52

(c) Apply the First Derivative Test to identify all relative extrema.

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53
Determine the open intervals on which the graph of the function



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54


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55
the open interval(s) on which the function
is increasing in the interval Round numerical values in your answer to three decimal places. 


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56


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57
the relative minima of
the First Derivative Test. Round numerical values in your answer to three decimal places. 


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58


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59

Nearest whole number.

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60
ball bearing is placed on an inclined plane and begins to roll. The angle of 

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61
Suppose a manufacturer has determined that the total cost C of operating a factory is



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62
all relative extrema of the function
. Use the Second Derivative Test where applicable. 


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63
Match the function
with one of the following graphs. 


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64
all relative extrema of the function
. Use the Second Derivative Test where applicable. 


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65


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66
all relative extrema of the function
. Use the Second Derivative Test where applicable. 


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67
all points of inflection on the graph of the function



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68


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69
the points of inflection and discuss the concavity of the function 

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70
all points of inflection, if any exist, of the graph of the function 

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71




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72
Locate any relative extrema and inflection points of the function
. Use a graphing utility to confirm your results. 


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73
the points of inflection and discuss the concavity of the function
. 


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74
Suppose the deflection D of a beam of length L is
where
is the distance from one end of the beam. Find the value of x that yields the maximum deflection. 



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75
Determine the x-coordinate(s) of any relative extrema and inflection points of the function



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76
all points of inflection of the graph of the function
the interval . Round your answer to three decimal places wherever applicable. 


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77
the point of inflection of the graph of the function
on the interval 


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78
all relative extrema of the function
. Use the Second Derivative Test where applicable. 


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79
Determine the x-coordinate(s) of any relative extrema and inflection points of the function




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80


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