Difference between revisions of "The Anatomy of a Physical Expression"
From S.H.O.
(Created page with "'''The Anatomy of a Physical Expression''', is simply put, a product of factors. More specifically, a physical expression is a product of factors, each with their own distinc...") |
|||
(37 intermediate revisions by the same user not shown) | |||
Line 1: | Line 1: | ||
− | '''The Anatomy of a Physical Expression''', | + | {{#seo: |
+ | |title=The Anatomy of a Physical Expression @ The Function Conjunction [Sho Drives Wiki] | ||
+ | |titlemode=replace | ||
+ | |keywords=electricity,magnetism,motor,generator | ||
+ | |description=Our own way to chop down a physical equation into building blocks. | ||
+ | }} | ||
+ | {{DISPLAYTITLE:Function Conjunction → The Anatomy of a Physical Expression}} | ||
+ | Factors serve as '''The Anatomy of a Physical Expression'''. They come in several types as listed below, each characterized as having a distinct role in defining a property of a physical system. The following list items are partially underlined to make memorization easy: | ||
− | + | # <u>Co</u>nsta<u>nts</u> | |
− | + | # <u>Co</u>efficie<u>nts</u> | |
− | # | + | # Quant<u>ities</u> |
− | # | + | # Proxim<u>ities</u> |
− | # | + | # <u>Di</u>sloca<u>tions</u> |
− | # | + | # <u>Di</u>rec<u>tions</u> |
− | # | + | |
− | # | + | |
Line 16: | Line 21: | ||
|- | |- | ||
! Constant (or 1) | ! Constant (or 1) | ||
− | + | | <math>\times</math> | |
+ | |- | ||
! Coefficient (or 1) | ! Coefficient (or 1) | ||
− | + | | <math>\times</math> | |
+ | |- | ||
! Quantity (or 1) | ! Quantity (or 1) | ||
− | + | | <math>\times</math> | |
+ | |- | ||
! Proximity (or 1) | ! Proximity (or 1) | ||
− | + | | <math>\times</math> | |
+ | |- | ||
! Dislocation (or 1) | ! Dislocation (or 1) | ||
− | + | | <math>\times</math> | |
+ | |- | ||
! Direction (or 1) | ! Direction (or 1) | ||
− | </ | + | | <math>=</math> |
+ | |- | ||
+ | !colspan=2| A Physical Expression | ||
|} | |} | ||
+ | </div> | ||
===Constants=== | ===Constants=== | ||
+ | * <math>c</math> = Speed of Light | ||
+ | * <math>G</math> = Gravitational constant | ||
+ | * <math>k_B</math> = Boltzmann's constant | ||
+ | * <math>\alpha</math> = Fine Structure constant | ||
* <math>\mu_0</math> = Magnetic Permeability of Free Space | * <math>\mu_0</math> = Magnetic Permeability of Free Space | ||
* <math>\epsilon_0</math> = Electric Permittivity of Free Space | * <math>\epsilon_0</math> = Electric Permittivity of Free Space | ||
− | |||
− | |||
− | |||
− | |||
===Coefficients=== | ===Coefficients=== | ||
− | * <math>\mu_r</math> = Relative Magnetic Permeability | + | * <math>\mu_r</math> = Relative Magnetic Permeability |
− | * <math>\epsilon_r</math> = Relative Electric Permittivity | + | * <math>\epsilon_r</math> = Relative Electric Permittivity |
===Quantities=== | ===Quantities=== | ||
* <math>q</math> = point charge | * <math>q</math> = point charge | ||
− | * <math>\lambda_q</math> = linear charge density (for continuous charge) | + | * <math>\lambda_q</math> = linear charge density {{nobr|(for continuous charge)}} |
− | * <math>\sigma_q</math> = surface charge density (for continuous charge) | + | * <math>\sigma_q</math> = surface charge density {{nobr|(for continuous charge)}} |
− | * <math>\rho_q</math> = volume charge density (for continuous charge) | + | * <math>\rho_q</math> = volume charge density {{nobr|(for continuous charge)}} |
* <math>m</math> = mass | * <math>m</math> = mass | ||
* <math>\rho</math> = volume mass density | * <math>\rho</math> = volume mass density | ||
Line 54: | Line 67: | ||
===Dislocations=== | ===Dislocations=== | ||
− | * <math>\mathbf | + | * <math>\mathbf{x}</math> = position |
− | * <math>\mathbf | + | * <math>\mathbf{v}</math> = velocity |
− | * <math>\mathbf | + | * <math>\mathbf{a}</math> = acceleration |
− | * <math>\mathbf{r}</math> = position of a charge <math>q</math> at time <math>t</math>, when it receives a light signal from <math>q'</math> that was emitted earlier at time <math>t' = t - |\mathbf{r}-\mathbf{r'}|/c</math> | + | ====Dislocations according to an inertial observer at time <math>t</math>==== |
− | * <math>\frac{ | + | * <math>\mathbf{r}</math> = position of a charge <math>q</math> at time <math>t</math>, when it receives a light signal from <math>q'</math> that was emitted earlier at the retarded time <math>t' = t - |\mathbf{r}-\mathbf{r'}|/c</math> |
− | * <math>\frac{ | + | * <math>\frac{∂\mathbf{r}}{∂t}</math> = <math>\mathbf{\dot{r}}</math> = velocity of a charge <math>q</math> at time <math>t</math>, when it receives a light signal from <math>q'</math> that was emitted earlier at the retarded time <math>t' = t - |\mathbf{r}-\mathbf{r'}|/c</math> |
− | * <math>\mathbf{r'}</math> = position a charge <math>q'</math> | + | * <math>\frac{∂^2\mathbf{r}}{∂t^2}</math> = <math>\mathbf{\ddot{r}}</math> = acceleration of a charge <math>q</math> at time <math>t</math>, when it receives a light signal from <math>q'</math> that was emitted earlier at the retarded time <math>t' = t - |\mathbf{r}-\mathbf{r'}|/c</math> |
− | * <math>\frac{ | + | * <math>\mathbf{r'}</math> = position a charge <math>q'</math> had at the retarded time <math>t' = t - |\mathbf{r}-\mathbf{r'}|/c</math>, when it emitted a light signal which has now reached <math>q</math> at position <math>\mathbf{r}</math> and time <math>t</math> |
− | * <math>\frac{ | + | * <math>\frac{∂\mathbf{r'}}{∂t}</math> = <math>\mathbf{\dot{r}'}</math> = velocity a charge <math>q'</math> had at the retarded time <math>t' = t - |\mathbf{r}-\mathbf{r'}|/c</math>, when it emitted a light signal which has now reached <math>q</math> at position <math>\mathbf{r}</math> and time <math>t</math> |
+ | * <math>\frac{∂^2\mathbf{r'}}{∂t^2}</math> = <math>\mathbf{\ddot{r}'}</math> = acceleration a charge <math>q'</math> had at the retarded time <math>t' = t - |\mathbf{r}-\mathbf{r'}|/c</math>, when it emitted a light signal which has now reached <math>q</math> at position <math>\mathbf{r}</math> and time <math>t</math> | ||
===Directions=== | ===Directions=== | ||
Line 68: | Line 82: | ||
* <math>\mathbf{\hat{v}}</math> = velocity unit vector | * <math>\mathbf{\hat{v}}</math> = velocity unit vector | ||
* <math>\mathbf{\hat{a}}</math> = acceleration unit vector | * <math>\mathbf{\hat{a}}</math> = acceleration unit vector | ||
− | * <math>\mathbf{\hat{r}}</math> = position unit vector of <math>q</math> | + | ====Directions according to an inertial observer at time <math>t</math>==== |
− | * <math>\mathbf{\hat{\dot{r}}}</math> = velocity unit vector of <math>q</math> | + | * <math>\mathbf{\hat{r}}</math> = position unit vector of <math>q</math> at time <math>t</math> |
− | * <math>\mathbf{\hat{\ddot{r}}}</math> = acceleration unit vector of <math>q</math> | + | * <math>\mathbf{\hat{\dot{r}}}</math> = velocity unit vector of <math>q</math> at time <math>t</math> |
− | * <math>\mathbf{\hat{r'}}</math> = position unit vector of <math>q'</math> | + | * <math>\mathbf{\hat{\ddot{r}}}</math> = acceleration unit vector of <math>q</math> at time <math>t</math> |
− | * <math>\mathbf{\hat{\dot{r'}}}</math> = velocity unit vector of <math>q'</math> | + | * <math>\mathbf{\hat{r'}}</math> = position unit vector of <math>q'</math> at retarded time <math>t'</math> |
− | * <math>\mathbf{\hat{\ddot{r'}}}</math> = acceleration unit vector of <math>q'</math> | + | * <math>\mathbf{\hat{\dot{r'}}}</math> = velocity unit vector of <math>q'</math> at retarded time <math>t'</math> |
+ | * <math>\mathbf{\hat{\ddot{r'}}}</math> = acceleration unit vector of <math>q'</math> at retarded time <math>t'</math> | ||
+ | |||
+ | ==See also== | ||
+ | |||
+ | * [[Magnetic Energy]] | ||
+ | * [[Functions composed of Physical Expressions]] | ||
+ | * [[Electromagnetic Potentials]] | ||
{{Site map}} | {{Site map}} | ||
+ | |||
+ | [[Category:Function Conjunction]] |
Latest revision as of 20:18, 4 July 2016
Factors serve as The Anatomy of a Physical Expression. They come in several types as listed below, each characterized as having a distinct role in defining a property of a physical system. The following list items are partially underlined to make memorization easy:
- Constants
- Coefficients
- Quantities
- Proximities
- Dislocations
- Directions
Contents
Definition
Constant (or 1) | |
---|---|
Coefficient (or 1) | |
Quantity (or 1) | |
Proximity (or 1) | |
Dislocation (or 1) | |
Direction (or 1) | |
A Physical Expression |
Constants
- = Speed of Light
- = Gravitational constant
- = Boltzmann's constant
- = Fine Structure constant
- = Magnetic Permeability of Free Space
- = Electric Permittivity of Free Space
Coefficients
- = Relative Magnetic Permeability
- = Relative Electric Permittivity
Quantities
- = point charge
- (for continuous charge) = linear charge density
- (for continuous charge) = surface charge density
- (for continuous charge) = volume charge density
- = mass
- = volume mass density
Proximities
- = inverse of the magnitude of the separation between positions and
- = inverse square of the magnitude of the separation between positions and
Dislocations
- = position
- = velocity
- = acceleration
Dislocations according to an inertial observer at time
- = position of a charge at time , when it receives a light signal from that was emitted earlier at the retarded time
- = = velocity of a charge at time , when it receives a light signal from that was emitted earlier at the retarded time
- = = acceleration of a charge at time , when it receives a light signal from that was emitted earlier at the retarded time
- = position a charge had at the retarded time , when it emitted a light signal which has now reached at position and time
- = = velocity a charge had at the retarded time , when it emitted a light signal which has now reached at position and time
- = = acceleration a charge had at the retarded time , when it emitted a light signal which has now reached at position and time
Directions
- = position unit vector
- = velocity unit vector
- = acceleration unit vector
Directions according to an inertial observer at time
- = position unit vector of at time
- = velocity unit vector of at time
- = acceleration unit vector of at time
- = position unit vector of at retarded time
- = velocity unit vector of at retarded time
- = acceleration unit vector of at retarded time
See also
Site map
HQ ● Glossary ● April 2016 Presentation
|