Query 3

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course PHY 201

3/3 11PM

If your solution to stated problem does not match the given solution, you should self-critique per instructions at 

   http://vhcc2.vhcc.edu/dsmith/geninfo/labrynth_created_fall_05/levl1_22/levl2_81/file3_259.htm

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Your solution, attempt at solution. If you are unable to attempt a solution, give a phrase-by-phrase interpretation of the problem along with a statement of what you do or do not understand about it. This response should be given, based on the work you did in completing the assignment, before you look at the given solution.

 

003.  `Query 3

 

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Question:  What do the coordinates of two points on a graph of position vs. clock time tell you about the motion of the object?  What can you reason out once you have these coordinates?

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Your solution: 

 The slope would give you the average velocity with that you could find the average acceleration, assuming it is uniform.

 

 

confidence rating #$&*: 3

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Given Solution:  The coordinates a point on the graph include a position and a clock time, which tells you where the object whose motion is represented by the graph is at a given instant.  If you have two points on the graph, you know the position and clock time at two instants. 

Given two points on a graph you can find the rise between the points and the run.

On a graph of position vs. clock time, the position is on the 'vertical' axis and the clock time on the 'horizontal' axis. 

· The rise between two points represents the change in the 'vertical' coordinate, so in this case the rise represents the change in position.

· The run between two points represents the change in the 'horizontal' coordinate, so in this case the run represents the change in clock time.

The slope between two points of a graph is the 'rise' from one point to the other, divided by the 'run' between the same two points.

· The slope of a position vs. clock time graph therefore represents rise / run = (change in position) / (change in clock time).

· By the definition of average velocity as the average rate of change of position with respect to clock time, we see that average velocity is vAve = (change in position) / (change in clock time).

· Thus the slope of the position vs. clock time graph represents the average velocity for the interval between the two graph points.

 

 

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Self-critique (if necessary):ok

 

 

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Self-critique Rating:ok

 

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Question:

Pendulums of lengths 20 cm and 25 cm are counted for one minute.  The counts are respectively 69 and 61.  To how many significant figures do we know the difference between these counts?

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Your Solution: 

 2 significant figures, because in subtraction we use the significant figure of the value with the least decimal places.

 

confidence rating #$&*:

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Question:

What are some possible units for position?  What are some possible units for clock time?  What therefore are some possible units for rate of change of position with respect to clock time?

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Your Solution: 

 Postion can be cm, feet, or miles. Clocktime can be seconds, hours, or minutes. Velocity rates could be cm/sec, feet/minutes, miles/hour.

 

confidence rating #$&*:

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Question:  What fraction of the Earth's diameter is the greatest ocean depth?

What fraction of the Earth's diameter is the greatest mountain height (relative to sea level)?

On a large globe 1 meter in diameter, how high would the mountain be, on the scale of the globe?  How might you construct a ridge of this height?

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Your solution: 

 

 

confidence rating #$&*: 1

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Given Solution: 

The greatest mountain height is a bit less than 10 000 meters.  The diameter of the Earth is a bit less than 13 000 kilometers. 

Using the round figures 10 000 meters and 10 000 kilometers, we estimate that the ratio is 10 000 meters / (10 000 kilometers).  We could express 10 000 kilometers in meters, or 10 000 meters in kilometers, to actually calculate the ratio.  Or we can just see that the ratio reduces to meters / kilometers.  Since a kilometer is 1000 meters, the ratio is 1 / 1000.

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Self-critique (if necessary): ???? Was this a textbook question? Where was I supposed to get the greatest mountain height and diameter of the Earth. I’m using the OpenStax text???

 

@&

That question is from the Giancoli text. You aren't required to solve these problems, and in fact you won't necessarily even be able to interpret the questions from the brief descriptions given in these documents.

In any case the greatest mountain height and greatest ocean depth should be common knowledge to anyone with a high school education (it's not so, but it used to be and it still should be). Lacking that (as nearly everyone does), it would be very easy to find it on the Web.

In any case, this question wasn't required for you.

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Self-critique Rating: 3

 

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Question:  `qQuery  Principles of Physics and General College Physics:  Summarize your solution to the following: 

Find the sum

1.80 m + 142.5 cm + 5.34 * 10^5 `micro m

to the appropriate number of significant figures. 

 

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Your solution: 

 5.34 * 10 ^5 has the least decimal places so its significant figure is used (3). 54.4 x 10^5

 

 

confidence rating #$&*: 2

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Given Solution: 

`a** 1.80 m has three significant figures (leading zeros don't count, neither to trailing zeros unless there is a decimal point; however zeros which are listed after the decimal point are significant; that's the only way we have of distinguishing, say, 1.80 meter (read to the nearest .01 m, i.e., nearest cm) and 1.000 meter (read to the nearest millimeter).

 

Therefore no measurement smaller than .01 m can be distinguished.

 

142.5 cm is 1.425 m, good to within .00001 m.

 

5.34 * `micro m means 5.34 * 10^-6 m, so 5.34 * 10^5 micro m means (5.34 * 10^5) * 10^-6 meters = 5.34 + 10^-1 meter, or .534 meter, accurate to within .001 m.

 

Then theses are added you get 3.759 m; however the 1.80 m is only good to within .01 m so the result is 3.76 m.  **

 

 

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Self-critique (if necessary): Didn’t notice the difference in the units of measurements.

 

 

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Question:  Openstax:  A generation is about one-third of a lifetime. Approximately howmany generations have passed since the year 0 AD?

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Your solution: 

 (2015/lifetime)(1/3) = how many generations have passed

 

 

confidence rating #$&*: 3

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Given Solution: 

A lifetime is about 70 years.  1/3 of that is about 23 years.

About 2000 years have passed since 0 AD, so there have been about

2000 years / (23 years / generation) = 85 generations

in that time

 

 

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Self-critique (if necessary):ok

 

 

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Self-critique Rating:

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Question:  Openstax:  How many times longer than the mean life of an extremely unstable atomic nucleus is the lifetime of a human? (Hint: The lifetime of an unstable atomic nucleus is on the order of 10^(-22) s .)

 

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Your solution: 

 Convert 70 years to seconds. 70 x 365 days = 25550 days. 25550 * 24 hours = 613200 hours. 613200 * 60 minutes * 60 seconds = 2207520000 seconds/ 10^-22 = to 2 significant figures 2.2^-35

 

 

confidence rating #$&*:

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Given Solution: 

Assuming a 70-year human lifetime:

A years is 365 days * 24 hours / day * 60 minutes / hour * 60 seconds / minute = 3 000 000 seconds.

The number of seconds could be calculated to a greater number of significant figures, but this would be pointless since the 10^(-22) second is only an order-of-magnitude calculation, which could easily be off by a factor of 2 or 3.

Dividing 3 000 000 seconds by the 10^-22 second lifetime of the nucleus we get

1 human lifetime = 3 000 000 seconds/year * 70 years / (10^-22 seconds / nuclear lifetime) = 2 * 10^31 nuclear lifetimes.

 

 

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Self-critique (if necessary): ??????I think my math was right, but I got lost with the significant figures. I thought you could only apply significance to the solution. But you had 3 000 000 for the seconds in a year but because the lifetime of the nucleus is only 2 significant figures that is all you need for your seconds calculations? ??????

 

 

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Self-critique Rating:3

@&

10^-22 = .0000000000000000000001, which has only 1 significant figure.

*@

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Question:  Openstax:  Calculate the approximate number of atoms in a bacterium. Assume that the average mass of an atom in the bacterium is ten times the mass of a hydrogen atom. (Hint: The mass of a hydrogen atom is on the order of 10−27 kg and the mass of a bacterium is on the order of 10−15 kg. )

To understand what this means, you might think it through something like this:

10^-27, written 0.000 000 000 000 000 000 000 000 001, is smaller 10^-15 (which you should write out and think about).

Ten times the mass of a hydrogen atom is 10 * 10^-27 = 10^-26.

1000 times 10^-26 is 10^-23; 1000 times 10^-23 is 10^-20; 1000 times 10^-20 is 10^-17, and you still have to multiply this by 100 to get 10^-15.  So the number of atoms is about 1000 * 1000 * 1000 * 100 = 100 000 000 000 (that's 100 billion).

Of course also want to calculate the result without thinking much about what it means.  To do so you see how many of the smaller quantity it takes to make up the larger.  In other words you'll divide the smaller quantity into the larger.  The result is as follows:

number of atoms in bacterium = mass of bacterium / mass of atom = 10^-15 kg / (10^-26 kg) = 10^-11 kg / kg = 10^-11.

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Your solution: 

 I understand

 

 

confidence rating #$&*:

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Question:

A ball rolls from rest down a book, off that book and smoothly onto another book, where it picks up additional speed before rolling off the end of that book. 

Suppose you know all the following information:

· How far the ball rolled along each book.

· The time interval the ball requires to roll from one end of each book to the other.

· How fast the ball is moving at each end of each book.

· The acceleration on each book is uniform.

How would you use your information to determine the clock time at each of the three points (top of first book, top of second which is identical to the bottom of the first, bottom of second book), if we assume the clock started when the ball was released at the 'top' of the first book?

How would you use your information to sketch a graph of the ball's position vs. clock time?

(This question is more challenging that the others):  How would you use your information to sketch a graph of the ball's speed vs. clock time, and how would this graph differ from the graph of the position?

 

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Your solution:  It would be two linear lines that were connected at a similar point that were both gradually increasing. The slopes would represent the average velocity which we could find because we know the velocity of the ball at the end of each book, with the average velocity we could find the acceleration on each book because we know it is uniform.

The speed vs clock time graph would probably be two positive curves, that connect at a similar point and that are rapidly increasing as the acceleration increased.

 

 

confidence rating #$&*:

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Self-critique Rating:

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Question:  For University Physics students:  Summarize your solution to Problem 1.31 (10th edition 1.34) (4 km on line then 3.1 km after 45 deg turn by components, verify by scaled sketch).   

 

 

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Your solution: 

 

 

confidence rating #$&*:

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Given Solution: 

`a** THE FOLLOWING CORRECT SOLUTION WAS GIVEN BY A STUDENT:

 

The components of vectors A (2.6km in the y direction) and B (4.0km in the x direction) are known.

 

We find the components of vector C(of length 3.1km) by using the sin and cos functions.

 

Cx was 3.1 km * cos(45 deg) = 2.19.  Adding the x component of the second vector, 4.0, we get 6.19km.

 

Cy was 2.19 and i added the 2.6 km y displacement of the first vector to get 4.79.

 

So  Rx = 6.19 km and Ry = 4.79 km.

 

To get vector R, i  used the pythagorean theorem to get the magnitude of vector R, which was sqrt( (6.29 km)^2 + (4.79 km)^2 ) = 7.9 km.

 

The angle is theta = arctan(Ry / Rx) = arctan(4.79 / 6.19) = 37.7 degrees. **

 

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Self-critique (if necessary):

 

 

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