WorksheetsMotion_E_1
Total questions: 82
Worksheet time: 41mins
Can a body have a constant speed and still be accelerating? What is the first statement of the audio clip?
Yes, a body can have a constant speed and still be accelerating.
Acceleration can be either due to change in speed or due to direction of motion or both.
Consider an example of uniform circular motion.
In a uniform circular motion, the body moves with a constant speed but we still say that it is accelerating due to the change in direction.
ac = r−v2 This acceleration is called centripetal acceleration and is given as
Can a body have a constant speed and still be accelerating? What is the Second statement of the audio clip?
Where, v = constant speed And r = radius of circle
Acceleration can be either due to change in speed or due to direction of motion or both.
Consider an example of uniform circular motion.
In a uniform circular motion, the body moves with a constant speed but we still say that it is accelerating due to the change in direction.
ac = r−v2 This acceleration is called centripetal acceleration and is given as
Can a body have a constant speed and still be accelerating? What is the Third statement of the audio clip?
Where, v = constant speed And r = radius of circle
Acceleration can be either due to change in speed or due to direction of motion or both.
Consider an example of uniform circular motion.
In a uniform circular motion, the body moves with a constant speed but we still say that it is accelerating due to the change in direction.
ac = r−v2 This acceleration is called centripetal acceleration and is given as
Can a body have a constant speed and still be accelerating? What is the Fourth statement of the audio clip?
Where, v = constant speed And r = radius of circle
Acceleration can be either due to change in speed or due to direction of motion or both.
Consider an example of uniform circular motion.
In a uniform circular motion, the body moves with a constant speed but we still say that it is accelerating due to the change in direction.
ac = r−v2 This acceleration is called centripetal acceleration and is given as
Can a body have a constant speed and still be accelerating? What is the Fifth statement of the audio clip?
Where, v = constant speed And r = radius of circle
Acceleration can be either due to change in speed or due to direction of motion or both.
Consider an example of uniform circular motion.
In a uniform circular motion, the body moves with a constant speed but we still say that it is accelerating due to the change in direction.
ac = r−v2 This acceleration is called centripetal acceleration and is given as
Can a body have a constant speed and still be accelerating? What is the Sixth statement of the audio clip?
Where, v = constant speed And r = radius of circle
Acceleration can be either due to change in speed or due to direction of motion or both.
Consider an example of uniform circular motion.
In a uniform circular motion, the body moves with a constant speed but we still say that it is accelerating due to the change in direction.
ac = r−v2 This acceleration is called centripetal acceleration and is given as
Displacement time graph. What is the first statement?
Welcome to this video in which we'll be learning about displacement time graph.
So what is a displacement time graph?
It's a graph in which displacement is plotted against time and here there are two variables.
The time is plotted on the x axis because it's an independent variable
Whereas displacement depends on time so it is plotted on the y axis
Displacement time graph. What is the SECOND statement?
And what we then obtain is a line graph
So what is a displacement time graph?
It's a graph in which displacement is plotted against time and here there are two variables.
The time is plotted on the x axis because it's an independent variable
Whereas displacement depends on time so it is plotted on the y axis
Displacement time graph. What is the THIRD statement?
And what we then obtain is a line graph
So a displacement time graph is a line graph
It's a graph in which displacement is plotted against time and here there are two variables.
The time is plotted on the x axis because it's an independent variable
Whereas displacement depends on time so it is plotted on the y axis
Displacement time graph. What is the Fourth statement?
And what we then obtain is a line graph
So a displacement time graph is a line graph
So in order to understand a displacement time graph let's look at an example now
The time is plotted on the x axis because it's an independent variable
Whereas displacement depends on time so it is plotted on the y axis
Displacement time graph. What is the Fifth statement?
And what we then obtain is a line graph
So a displacement time graph is a line graph
So in order to understand a displacement time graph let's look at an example now
In this example we need to have certain data for which we'll be plotting the graph
Whereas displacement depends on time so it is plotted on the y axis
Displacement time graph. What is the Sixth statement?
And what we then obtain is a line graph
So a displacement time graph is a line graph
So in order to understand a displacement time graph let's look at an example now
In this example we need to have certain data for which we'll be plotting the graph
We have the time starting at 0 and we observe till 8 seconds and those are the values of displacement
Displacement time graph. What is the Seventh statement?
Now one thing that has to be made clear is that the values of time that we have are the times at which observations were made
So a displacement time graph is a line graph
So in order to understand a displacement time graph let's look at an example now
In this example we need to have certain data for which we'll be plotting the graph
We have the time starting at 0 and we observe till 8 seconds and those are the values of displacement
Displacement time graph. What is the Eighth statement?
Now one thing that has to be made clear is that the values of time that we have are the times at which observations were made
So when the time is 0 that may or may not be the time when the motion started but it is certainly the time at which we started making the observation
So in order to understand a displacement time graph let's look at an example now
In this example we need to have certain data for which we'll be plotting the graph
We have the time starting at 0 and we observe till 8 seconds and those are the values of displacement
Displacement time graph. What is the Ninth statement?
Now one thing that has to be made clear is that the values of time that we have are the times at which observations were made
So when the time is 0 that may or may not be the time when the motion started but it is certainly the time at which we started making the observation
Next the values of displacement that we see are values of total displacement at these times stated
In this example we need to have certain data for which we'll be plotting the graph
We have the time starting at 0 and we observe till 8 seconds and those are the values of displacement
Displacement time graph. What is the Eleventh statement?
Now one thing that has to be made clear is that the values of time that we have are the times at which observations were made
So when the time is 0 that may or may not be the time when the motion started but it is certainly the time at which we started making the observation
Next the values of displacement that we see are values of total displacement at these times stated
So let's say for example 5 seconds. So at 5 seconds the total displacement of the body was 8 meters
So now, let's look at what the displacement time graph of this data looks like
Displacement time graph. What is the Twelfth statement?
It looks like this. It is basically into three different line segments.
So when the time is 0 that may or may not be the time when the motion started but it is certainly the time at which we started making the observation
Next the values of displacement that we see are values of total displacement at these times stated
So let's say for example 5 seconds. So at 5 seconds the total displacement of the body was 8 meters
So now, let's look at what the displacement time graph of this data looks like
Displacement time graph. What is the Thirteenth statement?
It looks like this. It is basically into three different line segments.
So that is what I meant when I said that the displacement time graph is a line graph
Next the values of displacement that we see are values of total displacement at these times stated
So let's say for example 5 seconds. So at 5 seconds the total displacement of the body was 8 meters
So now, let's look at what the displacement time graph of this data looks like
Displacement time graph. What is the
Fourteenth statement?
It looks like this. It is basically into three different line segments.
So that is what I meant when I said that the displacement time graph is a line graph
Now using a displacement time graph we can describe these motions
So let's say for example 5 seconds. So at 5 seconds the total displacement of the body was 8 meters
So now, let's look at what the displacement time graph of this data looks like
Displacement time graph. What is the Fifteenth statement?
It looks like this. It is basically into three different line segments.
So that is what I meant when I said that the displacement time graph is a line graph
Now using a displacement time graph we can describe these motions
First one when the body is at rest
So now, let's look at what the displacement time graph of this data looks like
Displacement time graph. What is the Sixteenth statement?
It looks like this. It is basically into three different line segments.
So that is what I meant when I said that the displacement time graph is a line graph
Now using a displacement time graph we can describe these motions
The first one when the body is at rest
Second one where the body moves with uniform velocity and the third one in which the body moves with variable motion
Displacement time graph. What is the Seventeenth statement?
So let's look at the first instance, when the body is at rest, the value of displacement for all instances of time will be zero so therefore the graph is a straight line
So that is what I meant when I said that the displacement time graph is a line graph
Now using a displacement time graph we can describe these motions
The first one when the body is at rest
Second one where the body moves with uniform velocity and the third one in which the body moves with variable motion
Displacement time graph. What is the
Eighteenth statement?
So let's look at the first instance, when the body is at rest, the value of displacement for all instances of time will be zero so therefore the graph is a straight line
That is along the x-axis, so whenever we have such a graph which is a straight line that is along the x axis or even parallel to it we can conclude that the body is at rest
Now using a displacement time graph we can describe these motions
The first one when the body is at rest
Second one where the body moves with uniform velocity and the third one in which the body moves with variable motion
Displacement time graph. What is the Nineteenth statement?
So let's look at the first instance, when the body is at rest, the value of displacement for all instances of time will be zero so therefore the graph is a straight line
That is along the x-axis, so whenever we have such a graph which is a straight line that is along the x axis or even parallel to it we can conclude that the body is at rest
Now let's look at the next instance, where the body moves with uniform velocity.
The first one when the body is at rest
Second one where the body moves with uniform velocity and the third one in which the body moves with variable motion
Displacement time graph. What is the Twentieth statement?
So let's look at the first instance, when the body is at rest, the value of displacement for all instances of time will be zero so therefore the graph is a straight line
That is along the x-axis, so whenever we have such a graph which is a straight line that is along the x axis or even parallel to it we can conclude that the body is at rest
Now let's look at the next instance, where the body moves with uniform velocity.
Now, when we say that the body moves with uniform velocity, it means that the body covers in two equal distances in equal intervals of time
Second one where the body moves with uniform velocity and the third one in which the body moves with variable motion
Displacement time graph. What is the Twenty-first statement?
So let's look at the first instance, when the body is at rest, the value of displacement for all instances of time will be zero so therefore the graph is a straight line
That is along the x-axis, so whenever we have such a graph which is a straight line that is along the x axis or even parallel to it we can conclude that the body is at rest
Now let's look at the next instance, where the body moves with uniform velocity.
Now, when we say that the body moves with uniform velocity, it means that the body covers in two equal distances in equal intervals of time
So therefore the data looks like this. If you look at the values of displacement, the displacement increases by a factor of two for each and every second.
Displacement time graph. What is the Twenty-second statement?
So when the time increase by 1 second, the total displacement is 2 meters and when the time increases by 2 seconds the displacement also increases by just two seconds.
That is along the x-axis, so whenever we have such a graph which is a straight line that is along the x axis or even parallel to it we can conclude that the body is at rest
Now let's look at the next instance, where the body moves with uniform velocity.
Now, when we say that the body moves with uniform velocity, it means that the body covers in two equal distances in equal intervals of time
So therefore the data looks like this. If you look at the values of displacement, the displacement increases by a factor of two for each and every second.
Displacement time graph. What is the Twenty-their statement?
So when the time increase by 1 second, the total displacement is 2 meters and when the time increases by 2 seconds the displacement also increases by just two seconds.
Therefore the graph looks like this. Now you can see that this graph is a straight line but it's neither parallel to the x-axis nor parallel to the y-axis. In fact it's a straight line that is sloping upward
Now let's look at the next instance, where the body moves with uniform velocity.
Now, when we say that the body moves with uniform velocity, it means that the body covers in two equal distances in equal intervals of time
So therefore the data looks like this. If you look at the values of displacement, the displacement increases by a factor of two for each and every second.
Displacement time graph. What is the Twenty-fourth statement?
So when the time increase by 1 second, the total displacement is 2 meters and when the time increases by 2 seconds the displacement also increases by just two seconds.
Therefore the graph looks like this. Now you can see that this graph is a straight line but it's neither parallel to the x-axis nor parallel to the y-axis. In fact it's a straight line that is sloping upward
So whenever we have a graph that is a straight line that is parallel neither to the x axis nor do y axis we can conclude that the body moves with uniform velocity
Now, when we say that the body moves with uniform velocity, it means that the body covers in two equal distances in equal intervals of time
So therefore the data looks like this. If you look at the values of displacement, the displacement increases by a factor of two for each and every second.
Displacement time graph. What is the Twenty-fifth statement?
So when the time increase by 1 second, the total displacement is 2 meters and when the time increases by 2 seconds the displacement also increases by just two seconds.
Therefore the graph looks like this. Now you can see that this graph is a straight line but it's neither parallel to the x-axis nor parallel to the y-axis. In fact it's a straight line that is sloping upward
So whenever we have a graph that is a straight line that is parallel neither to the x axis nor do y axis we can conclude that the body moves with uniform velocity
Next let us take the case of a body that moves with non-uniform velocity or variable velocity
So therefore the data looks like this. If you look at the values of displacement, the displacement increases by a factor of two for each and every second.
Displacement time graph. What is the Twenty-Sixth statement?
So when the time increase by 1 second, the total displacement is 2 meters and when the time increases by 2 seconds the displacement also increases by just two seconds.
Therefore the graph looks like this. Now you can see that this graph is a straight line but it's neither parallel to the x-axis nor parallel to the y-axis. In fact it's a straight line that is sloping upward
So whenever we have a graph that is a straight line that is parallel neither to the x axis nor do y axis we can conclude that the body moves with uniform velocity
Next let us take the case of a body that moves with non-uniform velocity or variable velocity
So in this case, the data is something like this and therefore the graph is not a straight line.
Displacement time graph. What is the Twenty-seventh statement?
In fact, it can be anything but a straight line. In this case, the graph is a curve and the values of displacement keep on increasing and the amount by which they keep on increasing also increases
Therefore the graph looks like this. Now you can see that this graph is a straight line but it's neither parallel to the x-axis nor parallel to the y-axis. In fact it's a straight line that is sloping upward
So whenever we have a graph that is a straight line that is parallel neither to the x axis nor do y axis we can conclude that the body moves with uniform velocity
Next let us take the case of a body that moves with non-uniform velocity or variable velocity
So in this case, the data is something like this and therefore the graph is not a straight line.
Displacement time graph. What is the Twenty-Eighth statement?
In fact, it can be anything but a straight line. In this case, the graph is a curve and the values of displacement keep on increasing and the amount by which they keep on increasing also increases
In fact it can be anything but a straight line. In this case the graph is a curve and the values of displacement keep on increasing and the amount by which they keep on increasing also increases
So whenever we have a graph that is a straight line that is parallel neither to the x axis nor do y axis we can conclude that the body moves with uniform velocity
Next let us take the case of a body that moves with non-uniform velocity or variable velocity
So in this case, the data is something like this and therefore the graph is not a straight line.
Displacement time graph. What is the Twenty-Ninth statement?
In fact, it can be anything but a straight line. In this case, the graph is a curve and the values of displacement keep on increasing and the amount by which they keep on increasing also increases
In fact it can be anything but a straight line. In this case the graph is a curve and the values of displacement keep on increasing and the amount by which they keep on increasing also increases
So therefore the graph is a curve so to conclude we can say that whenever we have a graph that is not a straight line then we can conclude that the body moves with variable velocity right
Next let us take the case of a body that moves with non-uniform velocity or variable velocity
So in this case, the data is something like this and therefore the graph is not a straight line.
Displacement time graph. What is the Thirtieth statement?
In fact, it can be anything but a straight line. In this case, the graph is a curve and the values of displacement keep on increasing and the amount by which they keep on increasing also increases
In fact it can be anything but a straight line. In this case the graph is a curve and the values of displacement keep on increasing and the amount by which they keep on increasing also increases
So therefore the graph is a curve so to conclude we can say that whenever we have a graph that is not a straight line then we can conclude that the body moves with variable velocity right
So with a displacement time graph for the first information that we can have is that; what is the displacement? what is the total displacement of the body at any any given point of time.
So in this case, the data is something like this and therefore the graph is not a straight line.
Displacement time graph. What is the Thirty-first statement?
In fact, it can be anything but a straight line. In this case, the graph is a curve and the values of displacement keep on increasing and the amount by which they keep on increasing also increases
In fact it can be anything but a straight line. In this case the graph is a curve and the values of displacement keep on increasing and the amount by which they keep on increasing also increases
So therefore the graph is a curve so to conclude we can say that whenever we have a graph that is not a straight line then we can conclude that the body moves with variable velocity right
So with a displacement time graph for the first information that we can have is that; what is the displacement? what is the total displacement of the body at any any given point of time.
So let's say in this case although we do not have data for let's say 5.5 seconds but from the graph, we can find that the the total displacement of the body at 5.5 seconds was four meters.
Displacement time graph. What is the Thirty-second statement?
Similarly although we don't have data for 7.5 seconds from the graph we can find out that the total displacement of the body at 7.5 seconds was about 12 meters right
In fact it can be anything but a straight line. In this case the graph is a curve and the values of displacement keep on increasing and the amount by which they keep on increasing also increases
So therefore the graph is a curve so to conclude we can say that whenever we have a graph that is not a straight line then we can conclude that the body moves with variable velocity right
So with a displacement time graph for the first information that we can have is that; what is the displacement? what is the total displacement of the body at any any given point of time.
So let's say in this case although we do not have data for let's say 5.5 seconds but from the graph, we can find that the the total displacement of the body at 5.5 seconds was four meters.
Displacement time graph. What is the Thirty-third statement?
Similarly although we don't have data for 7.5 seconds from the graph we can find out that the total displacement of the body at 7.5 seconds was about 12 meters right
So that is the first piece of information that we can get from a displacement time graph. Now from a displacement time graph we can also determine the velocity of body.
So therefore the graph is a curve so to conclude we can say that whenever we have a graph that is not a straight line then we can conclude that the body moves with variable velocity right
So with a displacement time graph for the first information that we can have is that; what is the displacement? what is the total displacement of the body at any any given point of time.
So let's say in this case although we do not have data for let's say 5.5 seconds but from the graph, we can find that the the total displacement of the body at 5.5 seconds was four meters.
Displacement time graph. What is the Thirty-fourth statement?
Similarly although we don't have data for 7.5 seconds from the graph we can find out that the total displacement of the body at 7.5 seconds was about 12 meters right
So that is the first piece of information that we can get from a displacement time graph. Now from a displacement time graph we can also determine the velocity of body.
So how do we determine velocity
So with a displacement time graph for the first information that we can have is that; what is the displacement? what is the total displacement of the body at any any given point of time.
So let's say in this case although we do not have data for let's say 5.5 seconds but from the graph, we can find that the the total displacement of the body at 5.5 seconds was four meters.
Displacement time graph. What is the Thirty-fIfth statement?
Similarly although we don't have data for 7.5 seconds from the graph we can find out that the total displacement of the body at 7.5 seconds was about 12 meters right
So that is the first piece of information that we can get from a displacement time graph. Now from a displacement time graph we can also determine the velocity of body.
So how do we determine velocity
Now let's look at this example. There is a red line that represents the motion of body A and there's a blue line that represents the motion of body B.
So let's say in this case although we do not have data for let's say 5.5 seconds but from the graph, we can find that the the total displacement of the body at 5.5 seconds was four meters.
Displacement time graph. What is the Thirty-Sixth statement?
Similarly although we don't have data for 7.5 seconds from the graph we can find out that the total displacement of the body at 7.5 seconds was about 12 meters right
So that is the first piece of information that we can get from a displacement time graph. Now from a displacement time graph we can also determine the velocity of body.
So how do we determine velocity
Now let's look at this example. There is a red line that represents the motion of body A and there's a blue line that represents the motion of body B.
Now from this graph, we can clearly see that body A covers 16 meters in eight seconds and body B covers eight meters in eight seconds.
Displacement time graph. What is the Thirty-
Seventh statement?
Which means that body A moves with a higher velocity and body B moves with a lower velocity
So that is the first piece of information that we can get from a displacement time graph. Now from a displacement time graph we can also determine the velocity of body.
So how do we determine velocity
Now let's look at this example. There is a red line that represents the motion of body A and there's a blue line that represents the motion of body B.
Now from this graph, we can clearly see that body A covers 16 meters in eight seconds and body B covers eight meters in eight seconds.
Displacement time graph. What is the Thirty-
Eighth statement?
Which means that body A moves with a higher velocity and body B moves with a lower velocity
The graph of body A is a steep slope whereas the graph of body B has a gentle slope
So how do we determine velocity
Now let's look at this example. There is a red line that represents the motion of body A and there's a blue line that represents the motion of body B.
Now from this graph, we can clearly see that body A covers 16 meters in eight seconds and body B covers eight meters in eight seconds.
Displacement time graph. What is the Thirty-
Ninth statement?
Which means that body A moves with a higher velocity and body B moves with a lower velocity
The graph of body A is a steep slope whereas the graph of body B has a gentle slope
Which means that we can conclude that steep slope means a higher velocity whereas a gentle slope means a lower velocity
Now let's look at this example. There is a red line that represents the motion of body A and there's a blue line that represents the motion of body B.
Now from this graph, we can clearly see that body A covers 16 meters in eight seconds and body B covers eight meters in eight seconds.
Displacement time graph. What is the Fortieth statement?
Which means that body A moves with a higher velocity and body B moves with a lower velocity
The graph of body A is a steep slope whereas the graph of body B has a gentle slope
Which means that we can conclude that steep slope means a higher velocity whereas a gentle slope means a lower velocity
But how do we determine the absolute value of velocity from this graph
Now from this graph, we can clearly see that body A covers 16 meters in eight seconds and body B covers eight meters in eight seconds.
Displacement time graph. What is the Forty-First statement?
Which means that body A moves with a higher velocity and body B moves with a lower velocity
The graph of body A is a steep slope whereas the graph of body B has a gentle slope
Which means that we can conclude that steep slope means a higher velocity whereas a gentle slope means a lower velocity
But how do we determine the absolute value of velocity from this graph
So let's look at this example. We know that V=Displacement/time.
Displacement time graph. What is the Forty-Second statement?
So now from this graph; well let's say, we are interested in finding out the velocity of the body between 3 seconds and 7 seconds
The graph of body A is a steep slope whereas the graph of body B has a gentle slope
Which means that we can conclude that steep slope means a higher velocity whereas a gentle slope means a lower velocity
But how do we determine the absolute value of velocity from this graph
So let's look at this example. We know that V=Displacement/time.
Displacement time graph. What is the Forty-Third statement?
So now from this graph; well let's say, we are interested in finding out the velocity of the body between 3 seconds and 7 seconds
So, here’s displacement. Here's displacement and here's time. Now, displacement is also the vertical part of the slope whereas time is the horizontal part of the slope.
Which means that we can conclude that steep slope means a higher velocity whereas a gentle slope means a lower velocity
But how do we determine the absolute value of velocity from this graph
So let's look at this example. We know that V=Displacement/time.
Displacement time graph. What is the Forty-Fourth statement?
So now from this graph; well let's say, we are interested in finding out the velocity of the body between 3 seconds and 7 seconds
So, here’s displacement. Here's displacement and here's time. Now, displacement is also the vertical part of the slope whereas time is the horizontal part of the slope.
So when we are dividing displacement by time; we are also dividing the vertical by the horizontal, which happens to be the slope of the graph
But how do we determine the absolute value of velocity from this graph
So let's look at this example. We know that V=Displacement/time.
Displacement time graph. What is the Forty-Fifth statement?
So now from this graph; well let's say, we are interested in finding out the velocity of the body between 3 seconds and 7 seconds
So, here’s displacement. Here's displacement and here's time. Now, displacement is also the vertical part of the slope whereas time is the horizontal part of the slope.
So when we are dividing displacement by time; we are also dividing the vertical by the horizontal, which happens to be the slope of the graph
Which means that; the slope of a displacement time graph gives the velocity
So let's look at this example. We know that V=Displacement/time.
Displacement time graph. What is the Forty-Sixth statement?
So now from this graph; well let's say, we are interested in finding out the velocity of the body between 3 seconds and 7 seconds
So, here’s displacement. Here's displacement and here's time. Now, displacement is also the vertical part of the slope whereas time is the horizontal part of the slope.
So when we are dividing displacement by time; we are also dividing the vertical by the horizontal, which happens to be the slope of the graph
Which means that; the slope of a displacement time graph gives the velocity
So here we can take one example in order to understand how we can determine velocity
Displacement time graph. What is the Forty-Seventh statement?
So let's take this example we know that velocity is equal to slope now in order to determine slope w need two points so here are the two points now the coordinates of the points are (3, 6) and (7, 14)
So, here’s displacement. Here's displacement and here's time. Now, displacement is also the vertical part of the slope whereas time is the horizontal part of the slope.
So when we are dividing displacement by time; we are also dividing the vertical by the horizontal, which happens to be the slope of the graph
Which means that; the slope of a displacement time graph gives the velocity
So here we can take one example in order to understand how we can determine velocity
Displacement time graph. What is the Forty-Eighth statement?
So let's take this example we know that velocity is equal to slope now in order to determine slope w need two points so here are the two points now the coordinates of the points are (3, 6) and (7, 14)
Now mathematically the slope of graph is given by this formula; velocity = Slope = rise/run = (y2 - y1) / (x2 - x1).
So when we are dividing displacement by time; we are also dividing the vertical by the horizontal, which happens to be the slope of the graph
Which means that; the slope of a displacement time graph gives the velocity
So here we can take one example in order to understand how we can determine velocity
Displacement time graph. What is the Forty-Ninth statement?
So let's take this example we know that velocity is equal to slope now in order to determine slope w need two points so here are the two points now the coordinates of the points are (3, 6) and (7, 14)
Now mathematically the slope of graph is given by this formula; velocity = Slope = rise/run = (y2 - y1) / (x2 - x1).
So hence the velocity of this body is 2 meters per second
Which means that; the slope of a displacement time graph gives the velocity
So here we can take one example in order to understand how we can determine velocity
Displacement time graph. What is the Fiftieth statement?
So let's take this example we know that velocity is equal to slope now in order to determine slope w need two points so here are the two points now the coordinates of the points are (3, 6) and (7, 14)
Now mathematically the slope of graph is given by this formula; velocity = Slope = rise/run = (y2 - y1) / (x2 - x1).
So hence the velocity of this body is 2 meters per second
Now, we take another example in which the slope is slightly different it is downward sloping
So here we can take one example in order to understand how we can determine velocity
Displacement time graph. What is the Fifty-First statement?
So let's take this example we know that velocity is equal to slope now in order to determine slope w need two points so here are the two points now the coordinates of the points are (3, 6) and (7, 14)
Now mathematically the slope of graph is given by this formula; velocity = Slope = rise/run = (y2 - y1) / (x2 - x1).
So hence the velocity of this body is 2 meters per second
Now, we take another example in which the slope is slightly different it is downward sloping
Again we use the same formula that the velocity = Slope = rise/run = (y2 - y1) / (x2 - x1).
Displacement time graph. What is the Fifty-Second statement?
Which means the vertical upon horizontal and we take two points one is (3, 10) and the other is this one (7, 2).
Now mathematically the slope of graph is given by this formula; velocity = Slope = rise/run = (y2 - y1) / (x2 - x1).
So hence the velocity of this body is 2 meters per second
Now, we take another example in which the slope is slightly different it is downward sloping
Again we use the same formula that the velocity = Slope = rise/run = (y2 - y1) / (x2 - x1).
Displacement time graph. What is the Fifty-Third statement?
Which means the vertical upon horizontal and we take two points one is (3, 10) and the other is this one (7, 2).
And when we find the slope of the graph we find that Slope = rise/run = (y2 - y1) / (x2 - x1). = (2-10) / (7-3) = -8/4 = -2 m/s
So hence the velocity of this body is 2 meters per second
Now, we take another example in which the slope is slightly different it is downward sloping
Again we use the same formula that the velocity = Slope = rise/run = (y2 - y1) / (x2 - x1).
Displacement time graph. What is the Fifty-Fourth statement?
Which means the vertical upon horizontal and we take two points one is (3, 10) and the other is this one (7, 2).
And when we find the slope of the graph we find that Slope = rise/run = (y2 - y1) / (x2 - x1). = (2-10) / (7-3) = -8/4 = -2 m/s
And as a result the velocity that we get is -2 m/s
Now, we take another example in which the slope is slightly different it is downward sloping
Again we use the same formula that the velocity = Slope = rise/run = (y2 - y1) / (x2 - x1).
Displacement time graph. What is the Fifty-Fifth statement?
Which means the vertical upon horizontal and we take two points one is (3, 10) and the other is this one (7, 2).
And when we find the slope of the graph we find that Slope = rise/run = (y2 - y1) / (x2 - x1). = (2-10) / (7-3) = -8/4 = -2 m/s
And as a result the velocity that we get is -2 m/s
So that's how our displacement time graph is useful
Again we use the same formula that the velocity = Slope = rise/run = (y2 - y1) / (x2 - x1).
Displacement time graph. What is the Fifty-Sixth statement?
Which means the vertical upon horizontal and we take two points one is (3, 10) and the other is this one (7, 2).
And when we find the slope of the graph we find that Slope = rise/run = (y2 - y1) / (x2 - x1). = (2-10) / (7-3) = -8/4 = -2 m/s
And as a result the velocity that we get is -2 m/s
So that's how our displacement time graph is useful
It helps us not only in finding out displacement of a body at a given instant, it also helps us determine the velocity of the body
Displacement time graph. What is the Fifty-Seventh statement?
Now let's look at one particular problem
And when we find the slope of the graph we find that Slope = rise/run = (y2 - y1) / (x2 - x1). = (2-10) / (7-3) = -8/4 = -2 m/s
And as a result the velocity that we get is -2 m/s
So that's how our displacement time graph is useful
It helps us not only in finding out displacement of a body at a given instant, it also helps us determine the velocity of the body
Displacement time graph. What is the Fifty-Eighth statement?
Now let's look at one particular problem
In this problem; this is the graph now the graph may look a bit complicated and intimidating at first, but trust me it's not.
And as a result the velocity that we get is -2 m/s
So that's how our displacement time graph is useful
It helps us not only in finding out displacement of a body at a given instant, it also helps us determine the velocity of the body
Displacement time graph. What is the Fifty-Ninth statement?
Now let's look at one particular problem
In this problem; this is the graph now the graph may look a bit complicated and intimidating at first, but trust me it's not.
Whenever something is complicated we break it up into parts. So here in the first part; the body moves with a velocity of 2 meters per second
So that's how our displacement time graph is useful
It helps us not only in finding out displacement of a body at a given instant, it also helps us determine the velocity of the body
Displacement time graph. What is the Sixtieth statement?
Now let's look at one particular problem
In this problem; this is the graph now the graph may look a bit complicated and intimidating at first, but trust me it's not.
Whenever something is complicated we break it up into parts. So here in the first part; the body moves with a velocity of 2 meters per second
In the next part stretching from 3 meter 3 seconds till 8 seconds, the body is at rest because the displacement remains 6
It helps us not only in finding out displacement of a body at a given instant, it also helps us determine the velocity of the body
Displacement time graph. What is the Sixty-First statement?
Now let's look at one particular problem
In this problem; this is the graph now the graph may look a bit complicated and intimidating at first, but trust me it's not.
Whenever something is complicated we break it up into parts. So here in the first part; the body moves with a velocity of 2 meters per second
In the next part stretching from 3 meters in 3 seconds till 8 seconds, the body is at rest because the displacement remains 6
In the third part there's a downward slope which means that the body moves with a negative velocity of 3 meters per second
Displacement time graph. What is the Sixty-Second statement?
In the fourth part right from 11 seconds till 19 seconds, the body is at rest
In this problem; this is the graph now the graph may look a bit complicated and intimidating at first, but trust me it's not.
Whenever something is complicated we break it up into parts. So here in the first part; the body moves with a velocity of 2 meters per second
In the next part stretching from 3 meters in 3 seconds till 8 seconds, the body is at rest because the displacement remains 6
In the third part there's a downward slope which means that the body moves with a negative velocity of 3 meters per second
Displacement time graph. What is the Sixty-Third statement?
In the fourth part right from 11 seconds till 19 seconds, the body is at rest
In the last part the body moves with a velocity of 1 meters per second
Whenever something is complicated we break it up into parts. So here in the first part; the body moves with a velocity of 2 meters per second
In the next part stretching from 3 meters in 3 seconds till 8 seconds, the body is at rest because the displacement remains 6
In the third part there's a downward slope which means that the body moves with a negative velocity of 3 meters per second
Displacement time graph. What is the Sixty-Fourth statement?
In the fourth part right from 11 seconds till 19 seconds, the body is at rest
In the last part the body moves with a velocity of 1 meters per second
So here we can make these interpretations using the formulas that the velocity is equal to slope
In the next part stretching from 3 meters in 3 seconds till 8 seconds, the body is at rest because the displacement remains 6
In the third part there's a downward slope which means that the body moves with a negative velocity of 3 meters per second
Displacement time graph. What is the Sixty-Fifth statement?
In the fourth part right from 11 seconds till 19 seconds, the body is at rest
In the last part the body moves with a velocity of 1 meters per second
So here we can make these interpretations using the formulas that the velocity is equal to slope
But then what do we know about the bodies journey from this graph so here's the body and here's the path of the body on which the body walks
In the third part there's a downward slope which means that the body moves with a negative velocity of 3 meters per second
Displacement time graph. What is the Sixty-Sixth statement?
In the fourth part right from 11 seconds till 19 seconds, the body is at rest
In the last part the body moves with a velocity of 1 meters per second
So here we can make these interpretations using the formulas that the velocity is equal to slope
But then what do we know about the bodies journey from this graph so here's the body and here's the path of the body on which the body walks
It is in one dimension only.
Displacement time graph. What is the Sixty-Seventh statement?
So here let's look at how the body moves
In the last part the body moves with a velocity of 1 meters per second
So here we can make these interpretations using the formulas that the velocity is equal to slope
But then what do we know about the bodies journey from this graph so here's the body and here's the path of the body on which the body walks
It is in one dimension only.
Displacement time graph. What is the Sixty-Eighth statement?
So here let's look at how the body moves
You'll find that the color of the graph also changes as the body moves.
So here we can make these interpretations using the formulas that the velocity is equal to slope
But then what do we know about the bodies journey from this graph so here's the body and here's the path of the body on which the body walks
It is in one dimension only.
Displacement time graph. What is the Sixty-Ninth statement?
So here let's look at how the body moves
You'll find that the color of the graph also changes as the body moves.
So here in the first part, the body moves with a velocity of 2 meters per second.
But then what do we know about the bodies journey from this graph so here's the body and here's the path of the body on which the body walks
It is in one dimension only.
Displacement time graph. What is the Seventieth statement?
So here let's look at how the body moves
You'll find that the color of the graph also changes as the body moves.
So here in the first part, the body moves with a velocity of 2 meters per second.
It is at rest from 3 seconds till 8 seconds and then moves in the opposite direction with the velocity of -3 meters per second
It is in one dimension only.
Displacement time graph. What is the Seventy-First statement?
So here let's look at how the body moves
You'll find that the color of the graph also changes as the body moves.
So here in the first part, the body moves with a velocity of 2 meters per second.
It is at rest from 3 seconds till 8 seconds and then moves in the opposite direction with the velocity of -3 meters per second
The body remains there right from 11 seconds till 19 seconds and finally slowly moves back to its original position at the velocity of 1 meter per second
Displacement time graph. What is the SSeventy-Second statement?
So in this way we can make very intelligent interpretations about a person's journey also from the displacement time graph
You'll find that the color of the graph also changes as the body moves.
So here in the first part, the body moves with a velocity of 2 meters per second.
It is at rest from 3 seconds till 8 seconds and then moves in the opposite direction with the velocity of -3 meters per second
The body remains there right from 11 seconds till 19 seconds and finally slowly moves back to its original position at the velocity of 1 meter per second
Displacement time graph. What is the Seventy-Third statement?
So in this way we can make very intelligent interpretations about a person's journey also from the displacement time graph
So that's about it for the displacement time graph
So here in the first part, the body moves with a velocity of 2 meters per second.
It is at rest from 3 seconds till 8 seconds and then moves in the opposite direction with the velocity of -3 meters per second
The body remains there right from 11 seconds till 19 seconds and finally slowly moves back to its original position at the velocity of 1 meter per second
Displacement time graph. What is the Seventy-Fourth statement?
So in this way we can make very intelligent interpretations about a person's journey also from the displacement time graph
So that's about it for the displacement time graph
So here in the first part, the body moves with a velocity of 2 meters per second.
It is at rest from 3 seconds till 8 seconds and then moves in the opposite direction with the velocity of -3 meters per second
The body remains there right from 11 seconds till 19 seconds and finally slowly moves back to its original position at the velocity of 1 meter per second
Displacement time graph. What is the Seventy-Fifth statement?
So in this way we can make very intelligent interpretations about a person's journey also from the displacement time graph
So that's about it for the displacement time graph
So here in the first part, the body moves with a velocity of 2 meters per second.
It is at rest from 3 seconds till 8 seconds and then moves in the opposite direction with the velocity of -3 meters per second
The body remains there right from 11 seconds till 19 seconds and finally slowly moves back to its original position at the velocity of 1 meter per second
Displacement time graph. What is the Seventy-Sixth statement?
So in this way we can make very intelligent interpretations about a person's journey also from the displacement time graph
So that's about it for the displacement time graph
So here in the first part, the body moves with a velocity of 2 meters per second.
It is at rest from 3 seconds till 8 seconds and then moves in the opposite direction with the velocity of -3 meters per second
The body remains there right from 11 seconds till 19 seconds and finally slowly moves back to its original position at the velocity of 1 meter per second
Displacement time graph. What is the Seventy-Seventh statement?
So in this way we can make very intelligent interpretations about a person's journey also from the displacement time graph
So that's about it for the displacement time graph
So here in the first part, the body moves with a velocity of 2 meters per second.
It is at rest from 3 seconds till 8 seconds and then moves in the opposite direction with the velocity of -3 meters per second
The body remains there right from 11 seconds till 19 seconds and finally slowly moves back to its original position at the velocity of 1 meter per second
