FACTOID # 126: Iceland has many, many more tractors per 1000 hectares of cropland than any other nation - more than twice that of the next highest country, Slovenia.
 
 Home   Encyclopedia   Statistics   Countries A-Z   Flags   Maps   Education   Forum   FAQ   About 
 
WHAT'S NEW
RECENT ARTICLES
More Recent Articles »
 

FACTS & STATISTICS    Simple view

  1. Select countries to view: (hold down Control key and click to select several)

     

     

    Compare:

     

     

  1. Select fact or statistic: (* = graphable)

     

     

     

  2. (OPTIONAL) Compare to statistic: (both need to be graphable)

     

     

     

  3. View result as:

     

       
(OR) SEARCH ALL encyclopedia, stats & forums:   

Encyclopedia > Equations of motion

In advanced physics, equations of motion usually refer to the Euler-Lagrange equations, differential equations derived from the Lagrangian. The following article is about elementary physics only.

Contents

Linear equations of motion

In kinematics, four equations of motion (or kinematic equations) apply to bodies moving linearly (in that is, one dimension) with uniform acceleration.


The body is considered at two instants in time, one "initial" point and one "current". Often, problems in kinematics deal with more than two instants, and several applications of the equations are required.


The body's initial speed is denoted . Its current state is described by:

, the distance travelled from initial state
, the current speed
, the time between the initial and current states

The constant acceleration is denoted a, or in the case of bodies moving under the influence of gravity, g.

Classic version

The above equations are often found in the following version:

where


s = the distance travelled from the initial state to the final state


u = the initial speed


v = the final speed


a = the constant acceleration


t = the time taken to move from the initial state to the final state


Examples

Many examples in kinematics involve projectiles, for example a ball thrown upwards into the air.


Given initial speed u, one can calculate how high the ball will travel before it begins to fall.


The acceleration is normal gravity g. At this point one must remember that while these quantities appear to be scalars, the direction of displacement, speed and acceleration is important. They could in fact be considered as uni-directional vectors. Choosing s to measure up from the ground, the acceleration a must be in fact -g, since the force of gravity acts downwards and therefore also the acceleration on the ball due to it.


At the highest point, the ball will be at rest: therefore v = 0. Using the 4th equation, we have:

Substituting and cancelling minus signs gives:

Extension

More complex versions of these equations can include a quantity s0 for the initial position of the body, and v0 for u for consistency.

Note, however, that a suitable choice of origin for the one-dimensional axis on which the body moves renders this complication superfluous.


Rotational equations of motion

The analogues of the above equations can be written for rotation:

Here, α is the angular acceleration, ω is the angular velocity and φ is the angular displacement; ω0 is the initial angular velocity and φ0 is the initial angular displacement.


Derivation

All of the above equations are derived from two main, well known motion equations, these are:

Motion equation 1

Using Equation 1

Motion equation 2

Using Equation 2

Motion equation 3

Insert Motion Equation 1 into Motion Equation 2

Motion equation 4

Using Motion Equation 2, replace t with above

See also


  Results from FactBites:
 
Equation of motion - Wikipedia, the free encyclopedia (503 words)
In physics, equations of motion are equations that describe the behavior of a system (e.g., the motion of a particle under an influence of a force) as a function of time.
Sometimes the term refers to the differential equations that the system satisfies (e.g., Newton's second law or Euler-Lagrange equations), and sometimes to the solutions to those equations.
The equations that apply to bodies moving linearly (that is, one dimension) with uniform acceleration are presented below.
Equations of Motion (3750 words)
The equations of motion are valid only when acceleration is constant and motion is constrained to a straight line.
Motion along a curved path may also be effectively one-dimensional if there is only one degree of freedom for the objects involved.
The second equation of motion is a quadratic and solving it for time would introduce a lot of nastiness into the algebra.
  More results at FactBites »


 

COMMENTARY     


Share your thoughts, questions and commentary here
Your name
Your comments
Please enter the 5-letter protection code

Want to know more?
Search encyclopedia, statistics and forums:

 


Lesson Plans | Student Area | Student FAQ | Reviews | Press Releases |  Feeds | Contact
The Wikipedia article included on this page is licensed under the GFDL.
Images may be subject to relevant owners' copyright.
All other elements are (c) copyright NationMaster.com 2003-5. All Rights Reserved.
Usage implies agreement with terms.