Static Friction: Difference between revisions

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This page defines and describes static friction. Some of the information presented on this page is also present on the [[Friction]] or [[Rolling Motion]] page.
Short Description of Topic


==The Main Idea==
==The Main Idea==


Friction is the resistance to motion between two objects. It is proportional to the force that pushes the two surfaces together and the roughness of the surface. Static friction is the friction between two objects that are not moving. Static friction between the two objects will increase to oppose motion until it reaches a certain point in which the objects move. This point of motion is defined by the coefficient of static friction which is generally greater than the coefficient of kinetic friction.  
Static friction is a type of [[Friction]] that occurs between two touching objects that <b>are not</b> moving with respect to each other at their point of contact. When two objects touch each other and there is no sliding between their surfaces of contact, they exert static friction forces on each other. The static friction force acting on each object opposes any force that would cause it to slide relative to the other object. For example, consider a heavy dresser at rest on the floor. If a child pushes against the side of the dresser in an attempt to slide it, that exerts a force on the dresser, but the ground would exert on it an equal and opposite static friction force that balances the force exerted by the child, so the dresser stays at rest. The static friction force can take on whatever direction and magnitude necessary to balance an external net force that threatens to cause sliding motion between two surfaces. However, the magnitude of the static friction force is limited by a maximum value. If the external force becomes strong enough, the static friction force can be overcome and the surfaces can begin to slide, at which point the friction between the objects becomes [[Kinetic Friction]]. For example, now consider an adult pushing against the same heavy dresser. The adult can exert a stronger force than the child, and if it exceeds the maximum possible static friction force, the dresser can be set into motion and slid across the floor.
 
===Static Friction on Rolling Objects===
 
Friction is responsible for the rolling of round objects. When this rolling happens without slipping, the friction is static. Consider a wheel rolling without slipping across the ground. At a glance, it may seem like the friction between the wheel and the ground should be kinetic because the center of the wheel moves relative to the ground. However, to determine the type of friction acting between the wheel and the ground, one must look at the point of contact between them. The point of contact between the wheel and the ground occurs on the edge of the wheel on its lowest point, which is not moving relative to the ground. The point of contact between the wheel and the ground constantly changes but does not slide.
 
For an object rolling at a constant speed, the magnitude of the static friction force is 0 because there are no forces threatening to cause the object to slip. For an accelerating rolling object, however, such as a disk rolling down a ramp, the static friction force has a nonzero magnitude to prevent the disk from slipping. Without this friction force, a disk placed on a ramp would simply slide down without rotating. It is important to ask oneself whether the static friction force acting on an accelerating rolling object is capable of doing work. The answer depends on whether the rolling object is modeled as a [[Point Particle System]] or a [[Real System]]. If the system is treated as a point particle, the static friction force is treated as though it acts on the particle's center of mass. It is therefore exerted over a distance and does work, affecting the object's total kinetic energy. If the system is treated as a real object, the static friction force is recognized as acting on the object's stationary edge, and therefore does no work. For the real system, the object's total kinetic energy would be the same even if the static friction force at its edge were absent. The only difference is that now some of its kinetic energy is rotational rather than translational. Point particles cannot have rotational kinetic energy, so the static friction force is treated as though it does work to account for the difference in total kinetic energy.
 
For more information, see [[Rolling Motion]].


===A Mathematical Model===
===A Mathematical Model===


Friction is defined by the formula:
As described above, the magnitude of the static friction force (<math>F_s</math>) between two objects is bounded by a maximum value. This maximum static friction force is given by


::<math>{F}_{friction} = {μ}{F}_{normal}</math>
<math>F_{s, max} = \mu_s * N</math>


Where <math>{μ}</math> is the coefficient of friction between the two objects and <math>{F}_{normal}</math> is the normal force between the two surfaces.  
where <math>\mu_s</math> is the coefficient of static friction of the objects and <math>N</math> is the normal force between the objects. <math>\mu_s</math> is a property of the materials of the surfaces in contact and is usually less than 1. <math>\mu_s</math> has no units because it is a ratio of one force to another. For any given pair of surfaces, their <math>\mu_s</math> value is greater than their <math>\mu_k</math> value.


Static friction is the maximum force just before the two objects enter into motion and it is related to the coefficient of static friction. It is defined as follows:
This formula may also be written


::<math>{F}_{max,f} = {μ}_{static}{F}_{normal}</math>
<math>F_s \leq \mu_s * N</math>.


Where <math>{μ}_{static}</math> is the coefficient of static friction and <math>{F}_{normal}</math> is the normal force between the two surfaces. If the net force exerted on the objects exceeds the '''F_max''' the objects start to move.
For problems involving rolling objects, the static friction usually does not reach its maximum allowed by the formula above. In fact, you may not be told the value the coefficient of static friction, only that it is high enough to prevent the object from slipping. For more information about this type of problem, see [[Rolling Motion]].
So, the object will begin to move against the direction of the static frictional force if:


::<math>{F}_{object} > {F}_{max,f}</math>
===A Computational Model===
----


[[File:StaticThenKinetic.png]]
This is a VPython simulation of a box held in place by static friction. A steadily increasing external force, shown by the green arrow, is balanced by an equal and opposite static friction force, until the magnitude of the external force exceeds <math>\mu_s * N</math>. At this time, the box begins to move and the friction becomes kinetic.
As seen in this diagram, static friction will increase as the applied force to an object increases as well. Eventually, the maximum static frictional force will be reached if the applied force continues to increase. Once this maximum value is reached, the object will begin to move. Then, a kinetic frictional force will begin acting on the object instead which is a constant value regardless the applied force (as long as the object is moving).


===A Computational Model===
[https://www.glowscript.org/#/user/YorickAndeweg/folder/PhysicsBookFolder/program/StaticFriction Static friction simulation]


How do we visualize or predict using this topic. Consider embedding some vpython code here [https://trinket.io/glowscript/31d0f9ad9e Teach hands-on with GlowScript]
Click "View this program" on the top left corner to view the VPython code.


==Examples==
==Examples==
Line 35: Line 39:
Be sure to show all steps in your solution and include diagrams whenever possible
Be sure to show all steps in your solution and include diagrams whenever possible


===Basic Example===
===1. (Simple)===


There is a box on top of a table and is not moving. The box has a mass '''M''' and the coefficient of static friction between the box and the table is <math>{μ}_{static}</math>. What is the frictional force?
A box sits at rest on a table. The box has a mass of 3kg, the coefficient of static friction between the box and the table is .3, and the coefficient of kinetic friction between the table is .2. A horizontal external force of 7N is applied to the box. Does the box remain at rest?


[[File:Inc2.jpg]]
[[File:Staticfrictionboxontable.png]]


The way to solve this problem is to recognize that the box itself is not moving. Therefore, one can deduce that the frictional force has to be static, and the coefficient of static friction can then be used. The static friction force is calculated as follows:
Solution:


::<math>{F}_{friction} = {F}_{N}{μ}_{static}</math>
The maximum static friction force <math>F_{s, max}</math> is given by the equation


Take notice that <math>{F}_{N}</math> is equal to <math>{F}_{grav}</math> which is as follows:
<math>F_{s, max} = \mu_s * N</math>


::<math> {F}_{grav} = {M}{g}</math>     where 
Since the table is a horizontal surface and the box is not accelerating vertically, the normal force must be equal in magnitude to the block's weight, or <math>3 * 9.8 = 29.4</math> N.
::<math> {g} = {9.81 m/}{s^2}</math>


So, the static friction can be simplified to the final equation:
<math>F_{s, max} = .3 * 29.4 = 8.82</math>N
::<math> {F}_{friction} = {M}{g}{μ}_{static}</math>


This is only a very basic example to show how static friction is calculated.
The external force is only 7 N, and the static friction force can be up to 8.82N, so the static friction force is able to balance the external force and keep the block at rest.


===Incline Example===
===2. (Middling)===
There is a box resting on an incline plane with a mass '''M_b'''. The coefficient of static friction between the box and the ramp is '''μ_s'''. The box isn’t moving, what is the friction force?


[[File:Mearathu31.jpg]]
A box of mass <math>m</math> sits on an inclined plane. The coefficient of static friction between the box and the inclined plane is <math>\mu_s</math>. What is the steepest the inclined plane can be without the box slipping down the ramp?
 
[[File:staticfrictionboxonramp.png]]


Solution:
Solution:


To solve the problem the first step required is to identify the free body diagram:
Let us call the angle that the box makes with the horizontal <math>\theta</math>. This makes the gravitational force down the ramp <math>mg\sin\theta</math> and the normal force between the box and the ramp <math>mg\cos\theta</math>.
 
[[File:staticfrictionboxonrampforcediagram.png]]
 
When the ramp is as steep as it can be without slipping, the gravitational force down the ramp is balanced by the maximum possible static friction force up the ramp, so the following equation is true:
 
<math>mg\sin\theta = F_{s, max}</math>
 
<math>mg\sin\theta = \mu_s * N</math>
 
<math>mg\sin\theta = \mu_s * mg\cos\theta</math>
 
dividing both sides by <math>mg\cos\theta</math> yields


[[File:Mearathu32.jpg]]
<math>\tan\theta = \mu_s</math>


The next step is to calculate the '''Y''' component of the '''F_grav '''. That will be equal to the '''F_N '''.
<math>\theta = \tan^{-1}\mu_s</math>


::<math>{F}_{N} = {F}_{grav}{sinθ}</math>
===3. (Middling)===


::<math>With {F}_{grav} = {9.81}{M}_{b}</math>
An 80 kg person is riding a centrifuge at a carnival. The radius of the ride is 5m, and the coefficient of static friction <math>\mu_s</math> = .4. At what speed must the centrifuge spin the rider so that they don't slip when the floor is withdrawn?


The final step is to utilize the formula for static friction and the calculated '''F_N''':
[[File:staticfrictioncentrifuge.png]]


::<math>{F}_{friction} = {F}_{N}{μ}_{s}</math>
Solution:


That solves the problem.
[[File:staticfrictioncentrifugesoln.jpg|400px]]


===Difficult Example===
===4. (Difficult)===
There is a crate of mass 20 kg sitting on a 40-degree inclined ramp that must be pulled to the top of the ramp to be loaded on a truck for delivery. A worker begins applying a force <math>{F}_{T}</math> to the crate by pulling on a rope attached to the crate at a 30-degree angle above the incline. If the coefficient of static friction <math>{μ}_{s}</math> is 0.27, what tension force must the worker apply to the crate in order to begin moving the crate up the ramp?


To begin solving this problem, we must draw a free body diagram in order to easily set up our force equations in order to solve for the tension force. We are going to set the x axis as the hypotenus of the incline and the y axis as the perpendicular to the incline hypotenuse. This should make it easier to break forces up into components. So, the FBD should look something like this:
A crate of mass <math>m</math> lies at rest on a flat horizontal surface. The coefficient of static friction between it and the ground is <math>\mu_s</math>. Two people are pushing on the crate, applying forces to it. Person A applies a horizontal force in the northerly direction with a magnitude of <math>F_A</math>. Person B applies a force in the easterly direction with a magnitude of <math>F_B</math>. However, this force is not perfectly horizontal; it is directed with an angle <math>\theta</math> above the horizontal. In terms of the other variables given, what is the minimum magnitude of <math>F_A</math> that would cause the crate to move?


[[File:WikiDifficultProblem.png]]
[[File:staticfrictionpushingcrate.png]]


Now, these forces can be further broken up into x and y components for two separate force equations:
Solution:


[[File:WikiDifficultProblemFBD.png]]
To get the crate to move, the net horizontal force must exceed the maximum possible static friction force.


With this new diagram, we can set up the equations for the forces in the x direction and the y direction. We can set both of these equations equal to zero because the crate still isn't moving, so acceleration is zero based on the equation <math>{F} = {M}{a}</math>.
The net horizontal force is given by


Forces in the x direction:
<math>F_{net,horizontal} = \sqrt{F_A^2 + (F_B\cos\theta)^2}</math> by Pythagorean theorem
::<math>{F}_{T}{cos(30)} - {F}_{s} - {Mgsin(40)} = {0}</math>


Forces in the y direction:
The maximum static friction force is given by
::<math>{F}_{N} + {F}_{T}{sin(30)} - {Mgcos(40)} = {0}</math>


In order to solve for the applied tension force, we must get <math>{F}_{s}</math> in terms of known values. Therefore, we must use the coefficient of static friction to solve for this static frictional force in terms of mass, g, coefficient of friction, and the angles given. To do this, we can use the equation of the forces in the y direction to plug in a term for <math>{F}_{N}</math>:
<math>F_{s,max} = \mu_s * N</math>
::<math>{F}_{s} = {μ}_{s}({Mgcos(40)} - {F}_{T}{sin(30)})</math>


This can then be plugged back into the equation for the forces in the x direction:
<math>F_{s,max} = \mu_s * mg - F_B\sin\theta</math> since the vertical component of person B's force helps lift the box
::<math>{F}_{T}{cos(30)} - {μ}_{s}({Mgcos(40)} - {F}_{T}{sin(30)}) - {Mgsin(40)} = {0}</math>


Then just isolate <math>{F}_{T}</math> in terms of the values given in the problem:
Let us set <math>F_{net,horizontal}</math> equal to <math>F_{s,max}</math> since that is the minimum value of <math>F_{net,horizontal}</math> to get the crate to move
::<math>{F}_{T} = \frac{{μ}_{s}{Mgcos(40) + Mgsin(40)}}{cos(30) + {μ}_{s}{sin(30)}}</math>


Just plug in the values and solve for <math>{F}_{T}</math>:
<math>\sqrt{F_A^2 + (F_B\cos\theta)^2} = \mu_s * mg - F_B\sin\theta</math>
::<math>{F}_{T} = \frac{(0.27)(20)(9.8)cos(40) + (20)(9.8)sin(40)}{cos(30) + (0.27)sin(30)} = {166.36 N}</math>


So, the crate must be pulled with a tension force of 166.36 N  in order to overcome static friction and begin pulling the crate up the ramp to the truck.
<math>F_A = \sqrt{(\mu_s * mg - F_B\sin\theta)^2 - (F_B\cos\theta)^2}</math>


==Real Life Application==
==Connectedness==
Static friction is a much more important Physics concept than most people think because this static friction plays such a big roll in so many different systems. For example, wheels are able to rotate solely due to static friction because it prevents the wheel from "slipping" with the surface that it makes contact with. The ground applies a static frictional force to the wheel at the point of contact so that the wheel will "roll" over that point without truly spinning.


[[File:WheelStaticFriction.PNG]]
Static friction is present in many places in everyday life. Sometimes, it is an inconvenience, such as when trying to move heavy objects. Sometimes, it is necessary for certain machines and activities. Below are some examples of scenarios in which static friction plays an essential role.


Static friction can also be seen elsewhere such as walking and running which is achieved through the static friction between our shoe and the ground. The friction itself allows us to push forward using the static friction between our shoe and the ground as a pivot.
===Driving and walking===


Overall, static friction is a relatively basic Physic's concept that plays a big role in our everyday life without us truly noticing. Try keeping your eyes open for different systems of motion and how static friction might play a role on the movement in that system.
Static friction between the car wheels and the ground is responsible for the car's acceleration. Without static friction, pressing the accelerator would simply cause the wheels to spin in place over the ground. Similarly, static friction between our feet and the ground allows us to walk by pushing off of the ground.


==History==
===Screws, nails, and bolts===


Static friction is the answer that people gave to the question of why certain objects didn't slide down inclined planes or why when something was pushed it didn't go on forever. The basis of this is in Newton's Laws. "An object in motion will remain in motion unless an external force is exerted on it." When an object is in motion, friction is the external force that is stopping it. Leonardo da Vinci is credited as the one who discovered the basic laws of friction.
Screws, nails, and bolts fix objects together and rely on friction to do so. Screws and nails are inserted directly into a material. The fact that they have to displace that material in order to fit in compresses that material, which in turn causes a high normal force between the material and the sides of the nail or screw. This makes it difficult to pull it out, especially in the case of screws, where the twisting motion necessary increases the distance over which the friction force is exerted and therefore increases the energy required to remove it. A bolt similarly experiences a high normal force between its outer edge and the inner edge of the corresponding nut, which is manufactured to be a tight fit.


== See also ==
===Machine belts===
 
Machine belts transmit power from one spinning wheel to another in a variety of machines. Static friction between the belt and each wheel allows for this.


Look below
===Holding objects===


===Further reading===
Friction is in part what allows us to hold objects in our hands. The normal force provided by our grip creates a static friction between the hand and the object.


*The Wikipedia page on friction[https://en.wikipedia.org/wiki/Friction#Static_friction]
== See also ==
*An explanation of static friction with some diagrams[http://hyperphysics.phy-astr.gsu.edu/hbase/frict2.html]
 
*[[Friction]]
*[[Rolling Motion]]
*[[Point Particle Systems]]
*[[Real Systems]]


===External links===
===External links===
*A couple of animations[http://www.animations.physics.unsw.edu.au/jw/weight_and_friction.htm]
 
*[http://hyperphysics.phy-astr.gsu.edu/hbase/frict.html#fri Hyperphysics page on friction]
*[https://phet.colorado.edu/en/simulation/friction PHET simulation]
*[https://en.wikipedia.org/wiki/Friction#Static_friction Wikipedia page on friction]
*[http://www.animations.physics.unsw.edu.au/jw/weight_and_friction.htm A couple of animations]


==References==
==References==
The book we used in class was a reference utilized in the creation of this page:


Matter and Interactions 4th edition. Full Citation: Chabay, Ruth W., and Bruce A. Sherwood. Matter and Interactions. Hoboken, NJ: Wiley, 2011. Print.
Matter and Interactions 4th edition. Full Citation: Chabay, Ruth W., and Bruce A. Sherwood. Matter and Interactions. Hoboken, NJ: Wiley, 2011. Print.


[[Category:Which Category did you place this in?]]
[[Category: Contact Forces]]

Latest revision as of 13:26, 2 August 2019

This page defines and describes static friction. Some of the information presented on this page is also present on the Friction or Rolling Motion page.

The Main Idea

Static friction is a type of Friction that occurs between two touching objects that are not moving with respect to each other at their point of contact. When two objects touch each other and there is no sliding between their surfaces of contact, they exert static friction forces on each other. The static friction force acting on each object opposes any force that would cause it to slide relative to the other object. For example, consider a heavy dresser at rest on the floor. If a child pushes against the side of the dresser in an attempt to slide it, that exerts a force on the dresser, but the ground would exert on it an equal and opposite static friction force that balances the force exerted by the child, so the dresser stays at rest. The static friction force can take on whatever direction and magnitude necessary to balance an external net force that threatens to cause sliding motion between two surfaces. However, the magnitude of the static friction force is limited by a maximum value. If the external force becomes strong enough, the static friction force can be overcome and the surfaces can begin to slide, at which point the friction between the objects becomes Kinetic Friction. For example, now consider an adult pushing against the same heavy dresser. The adult can exert a stronger force than the child, and if it exceeds the maximum possible static friction force, the dresser can be set into motion and slid across the floor.

Static Friction on Rolling Objects

Friction is responsible for the rolling of round objects. When this rolling happens without slipping, the friction is static. Consider a wheel rolling without slipping across the ground. At a glance, it may seem like the friction between the wheel and the ground should be kinetic because the center of the wheel moves relative to the ground. However, to determine the type of friction acting between the wheel and the ground, one must look at the point of contact between them. The point of contact between the wheel and the ground occurs on the edge of the wheel on its lowest point, which is not moving relative to the ground. The point of contact between the wheel and the ground constantly changes but does not slide.

For an object rolling at a constant speed, the magnitude of the static friction force is 0 because there are no forces threatening to cause the object to slip. For an accelerating rolling object, however, such as a disk rolling down a ramp, the static friction force has a nonzero magnitude to prevent the disk from slipping. Without this friction force, a disk placed on a ramp would simply slide down without rotating. It is important to ask oneself whether the static friction force acting on an accelerating rolling object is capable of doing work. The answer depends on whether the rolling object is modeled as a Point Particle System or a Real System. If the system is treated as a point particle, the static friction force is treated as though it acts on the particle's center of mass. It is therefore exerted over a distance and does work, affecting the object's total kinetic energy. If the system is treated as a real object, the static friction force is recognized as acting on the object's stationary edge, and therefore does no work. For the real system, the object's total kinetic energy would be the same even if the static friction force at its edge were absent. The only difference is that now some of its kinetic energy is rotational rather than translational. Point particles cannot have rotational kinetic energy, so the static friction force is treated as though it does work to account for the difference in total kinetic energy.

For more information, see Rolling Motion.

A Mathematical Model

As described above, the magnitude of the static friction force ([math]\displaystyle{ F_s }[/math]) between two objects is bounded by a maximum value. This maximum static friction force is given by

[math]\displaystyle{ F_{s, max} = \mu_s * N }[/math]

where [math]\displaystyle{ \mu_s }[/math] is the coefficient of static friction of the objects and [math]\displaystyle{ N }[/math] is the normal force between the objects. [math]\displaystyle{ \mu_s }[/math] is a property of the materials of the surfaces in contact and is usually less than 1. [math]\displaystyle{ \mu_s }[/math] has no units because it is a ratio of one force to another. For any given pair of surfaces, their [math]\displaystyle{ \mu_s }[/math] value is greater than their [math]\displaystyle{ \mu_k }[/math] value.

This formula may also be written

[math]\displaystyle{ F_s \leq \mu_s * N }[/math].

For problems involving rolling objects, the static friction usually does not reach its maximum allowed by the formula above. In fact, you may not be told the value the coefficient of static friction, only that it is high enough to prevent the object from slipping. For more information about this type of problem, see Rolling Motion.

A Computational Model

This is a VPython simulation of a box held in place by static friction. A steadily increasing external force, shown by the green arrow, is balanced by an equal and opposite static friction force, until the magnitude of the external force exceeds [math]\displaystyle{ \mu_s * N }[/math]. At this time, the box begins to move and the friction becomes kinetic.

Static friction simulation

Click "View this program" on the top left corner to view the VPython code.

Examples

Be sure to show all steps in your solution and include diagrams whenever possible

1. (Simple)

A box sits at rest on a table. The box has a mass of 3kg, the coefficient of static friction between the box and the table is .3, and the coefficient of kinetic friction between the table is .2. A horizontal external force of 7N is applied to the box. Does the box remain at rest?

Solution:

The maximum static friction force [math]\displaystyle{ F_{s, max} }[/math] is given by the equation

[math]\displaystyle{ F_{s, max} = \mu_s * N }[/math]

Since the table is a horizontal surface and the box is not accelerating vertically, the normal force must be equal in magnitude to the block's weight, or [math]\displaystyle{ 3 * 9.8 = 29.4 }[/math] N.

[math]\displaystyle{ F_{s, max} = .3 * 29.4 = 8.82 }[/math]N

The external force is only 7 N, and the static friction force can be up to 8.82N, so the static friction force is able to balance the external force and keep the block at rest.

2. (Middling)

A box of mass [math]\displaystyle{ m }[/math] sits on an inclined plane. The coefficient of static friction between the box and the inclined plane is [math]\displaystyle{ \mu_s }[/math]. What is the steepest the inclined plane can be without the box slipping down the ramp?

Solution:

Let us call the angle that the box makes with the horizontal [math]\displaystyle{ \theta }[/math]. This makes the gravitational force down the ramp [math]\displaystyle{ mg\sin\theta }[/math] and the normal force between the box and the ramp [math]\displaystyle{ mg\cos\theta }[/math].

When the ramp is as steep as it can be without slipping, the gravitational force down the ramp is balanced by the maximum possible static friction force up the ramp, so the following equation is true:

[math]\displaystyle{ mg\sin\theta = F_{s, max} }[/math]

[math]\displaystyle{ mg\sin\theta = \mu_s * N }[/math]

[math]\displaystyle{ mg\sin\theta = \mu_s * mg\cos\theta }[/math]

dividing both sides by [math]\displaystyle{ mg\cos\theta }[/math] yields

[math]\displaystyle{ \tan\theta = \mu_s }[/math]

[math]\displaystyle{ \theta = \tan^{-1}\mu_s }[/math]

3. (Middling)

An 80 kg person is riding a centrifuge at a carnival. The radius of the ride is 5m, and the coefficient of static friction [math]\displaystyle{ \mu_s }[/math] = .4. At what speed must the centrifuge spin the rider so that they don't slip when the floor is withdrawn?

Solution:

4. (Difficult)

A crate of mass [math]\displaystyle{ m }[/math] lies at rest on a flat horizontal surface. The coefficient of static friction between it and the ground is [math]\displaystyle{ \mu_s }[/math]. Two people are pushing on the crate, applying forces to it. Person A applies a horizontal force in the northerly direction with a magnitude of [math]\displaystyle{ F_A }[/math]. Person B applies a force in the easterly direction with a magnitude of [math]\displaystyle{ F_B }[/math]. However, this force is not perfectly horizontal; it is directed with an angle [math]\displaystyle{ \theta }[/math] above the horizontal. In terms of the other variables given, what is the minimum magnitude of [math]\displaystyle{ F_A }[/math] that would cause the crate to move?

Solution:

To get the crate to move, the net horizontal force must exceed the maximum possible static friction force.

The net horizontal force is given by

[math]\displaystyle{ F_{net,horizontal} = \sqrt{F_A^2 + (F_B\cos\theta)^2} }[/math] by Pythagorean theorem

The maximum static friction force is given by

[math]\displaystyle{ F_{s,max} = \mu_s * N }[/math]

[math]\displaystyle{ F_{s,max} = \mu_s * mg - F_B\sin\theta }[/math] since the vertical component of person B's force helps lift the box

Let us set [math]\displaystyle{ F_{net,horizontal} }[/math] equal to [math]\displaystyle{ F_{s,max} }[/math] since that is the minimum value of [math]\displaystyle{ F_{net,horizontal} }[/math] to get the crate to move

[math]\displaystyle{ \sqrt{F_A^2 + (F_B\cos\theta)^2} = \mu_s * mg - F_B\sin\theta }[/math]

[math]\displaystyle{ F_A = \sqrt{(\mu_s * mg - F_B\sin\theta)^2 - (F_B\cos\theta)^2} }[/math]

Connectedness

Static friction is present in many places in everyday life. Sometimes, it is an inconvenience, such as when trying to move heavy objects. Sometimes, it is necessary for certain machines and activities. Below are some examples of scenarios in which static friction plays an essential role.

Driving and walking

Static friction between the car wheels and the ground is responsible for the car's acceleration. Without static friction, pressing the accelerator would simply cause the wheels to spin in place over the ground. Similarly, static friction between our feet and the ground allows us to walk by pushing off of the ground.

Screws, nails, and bolts

Screws, nails, and bolts fix objects together and rely on friction to do so. Screws and nails are inserted directly into a material. The fact that they have to displace that material in order to fit in compresses that material, which in turn causes a high normal force between the material and the sides of the nail or screw. This makes it difficult to pull it out, especially in the case of screws, where the twisting motion necessary increases the distance over which the friction force is exerted and therefore increases the energy required to remove it. A bolt similarly experiences a high normal force between its outer edge and the inner edge of the corresponding nut, which is manufactured to be a tight fit.

Machine belts

Machine belts transmit power from one spinning wheel to another in a variety of machines. Static friction between the belt and each wheel allows for this.

Holding objects

Friction is in part what allows us to hold objects in our hands. The normal force provided by our grip creates a static friction between the hand and the object.

See also

External links

References

Matter and Interactions 4th edition. Full Citation: Chabay, Ruth W., and Bruce A. Sherwood. Matter and Interactions. Hoboken, NJ: Wiley, 2011. Print.