After sitting on a shelf for a while, a can of soda at a room temperature...
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After sitting on a shelf for a while, a can of soda at a room temperature (67F) is placed inside a refrigerator and slowly cools. The temperature of the refrigerator is 36F. Newton's Law of Cooling explains that the temperature of the can of soda will decrease proportionally to the difference between the temperature of the can of soda and the temperature of the refrigerator, as given by the formula below: Ta To T=Ta (To-Ta)e- -kt = the temperature surrounding the object = the initial temperature of the object t = the time in minutes T = the temperature of the object after t minutes k = decay constant The can of soda reaches the temperature of 55F after 30 minutes. Using this information, find the value of k, to the nearest thousandth. Use the resulting equation to determine the Fahrenheit temperature of the can of soda, to the nearest degree, after 95 minutes. Enter only the final temperature into the input box. After sitting on a shelf for a while, a can of soda at a room temperature (67F) is placed inside a refrigerator and slowly cools. The temperature of the refrigerator is 36F. Newton's Law of Cooling explains that the temperature of the can of soda will decrease proportionally to the difference between the temperature of the can of soda and the temperature of the refrigerator, as given by the formula below: Ta To T=Ta (To-Ta)e- -kt = the temperature surrounding the object = the initial temperature of the object t = the time in minutes T = the temperature of the object after t minutes k = decay constant The can of soda reaches the temperature of 55F after 30 minutes. Using this information, find the value of k, to the nearest thousandth. Use the resulting equation to determine the Fahrenheit temperature of the can of soda, to the nearest degree, after 95 minutes. Enter only the final temperature into the input box.
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Related Book For
Differential Equations and Linear Algebra
ISBN: 978-0131860612
2nd edition
Authors: Jerry Farlow, James E. Hall, Jean Marie McDill, Beverly H. West
Posted Date:
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