open qa 

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course Phy 121

1/30, 8:12pm

Question: `q001. Note that there are 17 questions in this assignment.

If an object moves 12 meters in 4 seconds, then what is its average velocity? Explain how you obtained your result in terms of commonsense ideas.

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Your solution: ******* A.V. 3

Divide 12 by 4 to get your average velocity.

confidence rating #$&*: confident

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Given Solution:

Moving 12 meters in 4 seconds, we move an average of 3 meters every second.

We can imagine dividing up the 12 meters into four equal parts, one for each second. Each part will span 3 meters, corresponding to the distance moved in 1 second, on the average.

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Self-critique (if necessary): I did well with this question

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Self-critique rating: ok

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Question: `q002. How is the preceding problem related to the concept of a rate?

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Your solution: ****** The rate of change of A with respect to B is defined to be the quantity (change in A) / (change in B). Twelve is change in A, and four is change in B.

confidence rating #$&*: confident

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Given Solution:

A rate is obtained by dividing the change in a quantity by the change in another quantity on which is dependent. In this case we divided the change in position by the time during which that change occurred.

More specifically

• The rate of change of A with respect to B is defined to be the quantity (change in A) / (change in B).

An object which moves 12 meters in 3 seconds changes its position by 12 meter during a change in clock time of 3 seconds. So the question implies

• Change in position = 12 meters

• Change in clock time = 3 seconds

When we divide the 12 meters by the 3 seconds we are therefore dividing (change in position) by (change in clock time). In terms of the definition of rate of change:

• the change in position is the change in A, so position is the A quantity.

• the change in clock time is the change in B, so clock time is the B quantity.

So

(12 meters) / (3 seconds) is

(change in position) / (change in clock time) which is the same as

average rate of change of position with respect to clock time.

Thus

• average velocity is average rate of change of position with respect to clock time.

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Self-critique (if necessary):

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Self-critique rating: OK

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Question: `q003. We are still referring to the situation of the preceding questions:

Is object position dependent on time or is time dependent on object position?

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Your solution: *****The object is dependent on the time. The clock will keep running no matter the circumstances. So this makes the time independent.

confidence rating #$&*:

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95% confident

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Given Solution:

Object position is dependent on time--the clock runs whether the object is moving or not so time is independent of position. Clock time is pretty much independent of anything else (this might not be so at the most fundamental level, but for the moment, unless you have good reason to do otherwise, this should be your convention).

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Self-critique (if necessary):

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Self-critique rating:OK

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Question: `q004. We are still referring to the situation of the preceding questions, which concern average velocity:

So the rate here is the average rate at which position is changing with respect to clock time. Explain what concepts, if any, you missed in your explanations.

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Your solution:

confidence rating #$&*:

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Given Solution:

Be sure you have reviewed all the definitions and concepts associated with velocity. If there’s anything you don’t understand, be sure to address it in your self-critique.

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Self-critique (if necessary):

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Self-critique rating:

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Question: `q005. If an object is displaced -6 meters in three seconds, then what is the average speed of the object? What is its average velocity? Explain how you obtained your result in terms of commonsense images and ideas.

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Your solution: -6/3= -2 is the average velocity, but I’m not sure how you calculate the average speed in this problem. For the average velocity, I used the basic definition: The rate of change of A with respect to B is defined to be the quantity (change in A) / (change in B).

confidence rating #$&*:

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Given Solution:

Speed is the average rate at which distance changes with respect to clock time. Distance cannot be negative and the clock runs forward. Therefore speed cannot be negative.

Velocity is the average rate at which position changes with respect to clock time, and since position changes can be positive or negative, so can velocity.

In general distance has no direction, while velocity does have direction.

Putting it loosely, speed is just how fast something is moving; velocity is how fast and in what direction.

In this case, the average velocity is

• vAve = `ds / `dt = -6 m / (3 s) = -2 m/s.

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Self-critique (if necessary): It looks like I have the initial idea of how to determine average velocity. I will need to review average speed so I am more confident with my answer.

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Self-critique rating: OK

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Question: `q006. If `ds stands for the change in the position of an object and `dt for the time interval during which its position changes, then what expression stands for the average velocity vAve of the object during this time interval?

• Your solution: vAve = `ds / `dt. You divide change in position, `ds by the time interval, `dt.

confidence rating #$&*:

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Given Solution:

Average velocity is rate of change of position with respect to clock time.

Change in position is `ds and change in clock time is `dt, so average velocity is expressed in symbols as

• vAve = `ds / `dt.

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Self-critique (if necessary):

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Self-critique rating: OK

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Question: `q007. How do you write the expressions `ds and `dt on your paper?

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Your solution: you can use `ds and `dt on your paper

confidence rating #$&*:

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Given Solution:

You use the Greek capital Delta when writing on paper or when communicating outside the context of this course; this is the symbol that looks like a triangle. See Introductory Problem Set 1.

`d is used for typewritten communication because the symbol for Delta is not interpreted correctly by some Internet forms and text editors. You should get in the habit of thinking and writing the Delta symbol when you see `d.

You may use either `d or Delta when submitting work and answering questions.

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Self-critique (if necessary):

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Self-critique rating:

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Question: `q008. If an object changes position at an average rate of 5 meters/second for 10 seconds, then how far does it move?

How is this problem related to the concept of a rate?

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Your solution: You need to multiply. 5*10=50. So, the object moves 50 cm.

confidence rating #$&*:

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Given Solution:

In this problem you are given the rate at which position changes with respect to time, and you are given the time interval during which to calculate the change in position.

The definition of rate of change states that the rate of change of A with respect to B is (change in A) / (change in B), which we abbreviate as `dA / `dB. `dA stands for the change in the A quantity and `dB for the change in the B quantity.

For the present problem we are given the rate at which position changes with respect to clock time. The definition of rate of change is stated in terms of the rate of change of A with respect to B.

• So we identify the position as the A quantity, clock time as the B quantity.

The basic relationship

• ave rate = `dA / `dB

can be algebraically rearranged in either of two ways:

• `dA = ave rate * `dB or

• `dB = `dA / (ave rate)

Using position for A and clock time for B the above relationships are

• ave rate of change of position with respect to clock time = change in position / change in clock time

• change in position = ave rate * change in clock time

• change in clock time = change in position / ave rate.

In the present situation we are given the average rate of change of position with respect to clock time, which is 5 meters / second, and the change in clock time, which is 10 seconds.

Thus we find

• change in position = ave rate * change in clock time = 5 cm/sec * 10 sec = 50 cm.

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Self-critique (if necessary): I need to work on using the formulas given.

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Self-critique rating:OK

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Question: `q009. If vAve stands for the rate at which the position of the object changes with respect to clock time (also called velocity) and `dt for the time interval during which the change in position is to be calculated, then how to we write the expression for the change `ds in the position?

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Your solution: You would multiply rate vAve by time interval `dt to get your `ds.

`ds=vAve*`dt

confidence rating #$&*:

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Given Solution:

To find the change in a quantity we multiply the rate by the time interval during which the change occurs.

The velocity is the rate, so we obtain the change in position by multiplying the velocity by the time interval:

• `ds = vAve * `dt.

The units of this calculation pretty much tell us what to do:

• We know what it means to multiply pay rate by time interval (dollar / hr * hours of work) or automobile velocity by the time interval (miles / hour * hour).

• When we multiply vAve, for example in in units of cm / sec or meters / sec, by `dt in seconds, we get displacement in cm or meters. Similar reasoning applies if we use different measures of distance.

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Self-critique (if necessary):

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Self-critique rating: OK

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Question: `q010. Explain how the quantities average velocity vAve, time interval `dt and displacement `ds are related by the definition of a rate, and how this relationship can be used to solve the current problem.

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Your solution: You would divide `dt by `ds in order to get your vAve. So the formula would be vAve=`dt/`ds

confidence rating #$&*:

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Self-critique (if necessary):

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Self-critique rating:

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Question: `q010. Explain how the quantities average velocity vAve, time interval `dt and displacement `ds are related by the definition of a rate, and how this relationship can be used to solve the current problem.

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Your solution: You would divide `dt by `ds in order to get your vAve. So the formula would be vAve=`dt/`ds

confidence rating #$&*:

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Self-critique (if necessary):

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