Difference between revisions of "Forest UCM MiNF"
(45 intermediate revisions by the same user not shown) | |||
Line 27: | Line 27: | ||
taking derivative with respect to time | taking derivative with respect to time | ||
− | : <math>\Rightarrow \ddot {\vec r} = \ddot {\vec {r}_0} - \dot \vec V= \ddot {\vec {r}_0} - \vec A </math> | + | : <math>\Rightarrow \ddot {\vec r} = \ddot {\vec {r}_0} - \dot {\vec V} = \ddot {\vec {r}_0} - \vec A </math> |
: <math>\Rightarrow m\ddot {\vec r} = m\ddot {\vec {r}_0} - m \vec A= \vec F - m\vec A= \vec F - \vec {F}_{\mbox {inertial}}</math> | : <math>\Rightarrow m\ddot {\vec r} = m\ddot {\vec {r}_0} - m \vec A= \vec F - m\vec A= \vec F - \vec {F}_{\mbox {inertial}}</math> | ||
Line 77: | Line 77: | ||
:<math>\vec{r} = (l \sin \theta + \frac{1}{2} a t^2) \hat i + l \cos \theta \hat j</math> | :<math>\vec{r} = (l \sin \theta + \frac{1}{2} a t^2) \hat i + l \cos \theta \hat j</math> | ||
− | :<math>\dot \vec{r} = (l \cos \theta \dot \theta + a t) \hat i + \sin \theta \dot \theta \hat j</math> | + | :<math>\dot {\vec{r}} = (l \cos \theta \dot {\theta} + a t ) \hat i + \sin \theta \dot {\theta} \hat j</math> |
:<math> T = \frac{1}{2} mv^2 = \frac{1}{2} m \left ( (l \cos \theta \dot \theta + a t)^2 + \sin^2 \theta \dot \theta^2 \right )</math> | :<math> T = \frac{1}{2} mv^2 = \frac{1}{2} m \left ( (l \cos \theta \dot \theta + a t)^2 + \sin^2 \theta \dot \theta^2 \right )</math> | ||
Line 114: | Line 114: | ||
As seen in the Earth non-inertial reference frame | As seen in the Earth non-inertial reference frame | ||
− | :<math>M_o \ddot \vec r = \sum \vec F - M_o \vec A</math> | + | :<math>M_o \ddot {\vec r} = \sum \vec F - M_o \vec A</math> |
:: <math>= \left ( M_o \vec g + \vec F_N + G \frac{M_m M_o}{d^3}\vec d \right ) - G \frac{M_m }{d_0^3}\vec d_0 </math> | :: <math>= \left ( M_o \vec g + \vec F_N + G \frac{M_m M_o}{d^3}\vec d \right ) - G \frac{M_m }{d_0^3}\vec d_0 </math> | ||
where | where | ||
− | :<math>\vec F_N =</math> a net non-graviational force hold the mass M_o in top of the ocean (Bouyant force) | + | :<math>\vec F_N =</math> a net non-graviational force hold the mass M_o in top of the ocean (Bouyant force)= M(displaced water)*g = constant force independent of position |
− | :<math>M_o \ddot \vec r = \left ( M_o \vec g + \vec | + | :<math> M_o \ddot \vec r = \left ( M_o \vec g + {\vec F}_N + G \frac{M_m M_o}{d^3} \vec d \right ) - G \frac{M_m }{d_0^3}\vec d_0 </math> |
:: <math>= M_o \vec g + \vec F_N + \vec{F}_{\mbox{tide}}</math> | :: <math>= M_o \vec g + \vec F_N + \vec{F}_{\mbox{tide}}</math> | ||
Line 161: | Line 161: | ||
− | :<math>\vec{F}_{\mbox{tide}} = G \frac{M_m M_o}{d^3}\vec d - G \frac{M_m }{d_0^3}\vec d_0 \equiv - \nabla U_{\mbox{tide-1}}- \nabla U_{\mbox{tide-2}}</math> | + | :<math>\vec{F}_{\mbox{tide}} = G \frac{M_m M_o}{d^3}\vec d - G \frac{M_m }{d_0^3}\vec d_0 \equiv - \nabla U_{\mbox{tide-1}}- (-\nabla U_{\mbox{tide-2}})</math> |
:<math>G \frac{M_m M_o}{d^3}\vec d \equiv - \nabla U_{\mbox{tide-1}}</math> | :<math>G \frac{M_m M_o}{d^3}\vec d \equiv - \nabla U_{\mbox{tide-1}}</math> | ||
Line 167: | Line 167: | ||
− | :<math> G \frac{M_m M_o}{d_0^3}\vec d_0 \equiv | + | :<math> G \frac{M_m M_o}{d_0^3}\vec d_0 \equiv - \nabla U_{\mbox{tide-2}}</math> |
− | :<math> U_{\mbox{tide-2}} = - \int \vec F_o \cdot d \hat x= \int G \frac{M_m M_o }{d_0^2}\hat {d}_0 \cdot d \hat x</math> | + | :-<math> U_{\mbox{tide-2}} = -(- \int \vec F_o \cdot d \hat x)= \int G \frac{M_m M_o }{d_0^2}\hat {d}_0 \cdot d \hat x</math> |
::<math> = G \frac{M_m M_o}{d_0^2}\int\hat {d}_0 \cdot d \hat x</math> Since <math>d_0</math> is at fixed distance | ::<math> = G \frac{M_m M_o}{d_0^2}\int\hat {d}_0 \cdot d \hat x</math> Since <math>d_0</math> is at fixed distance | ||
::<math> = G \frac{M_mM_o }{d_0^2}\int\ d x</math> Since <math>d_0</math> is parallel to x | ::<math> = G \frac{M_mM_o }{d_0^2}\int\ d x</math> Since <math>d_0</math> is parallel to x | ||
Line 691: | Line 691: | ||
left | left | ||
− | :\vec v = \dot x \hat i + \dot y \hat j + \dot z \hat k | + | :<math>\vec v = \dot x \hat i + \dot y \hat j + \dot z \hat k</math> |
:<math>\vec v \times \vec \Omega =\left( \begin{array}{ccc} \hat i & \hat j & \hat k \\ \dot x & \dot y & \dot z \\0 & \Omega \sin \theta & \Omega \cos \theta \end{array} \right) = \Omega \left ( (\dot y \cos \theta - \dot z \sin \theta) \hat i - \dot x \cos \theta \hat j + \dot x \sin \theta \hat k \right ) </math> | :<math>\vec v \times \vec \Omega =\left( \begin{array}{ccc} \hat i & \hat j & \hat k \\ \dot x & \dot y & \dot z \\0 & \Omega \sin \theta & \Omega \cos \theta \end{array} \right) = \Omega \left ( (\dot y \cos \theta - \dot z \sin \theta) \hat i - \dot x \cos \theta \hat j + \dot x \sin \theta \hat k \right ) </math> | ||
Line 707: | Line 707: | ||
==== 0th order Approx==== | ==== 0th order Approx==== | ||
+ | |||
+ | let | ||
+ | :<math>\Omega \equiv 0</math> | ||
+ | |||
+ | Then | ||
+ | |||
+ | x-directions | ||
+ | |||
+ | :<math>\ddot x = 0</math> | ||
+ | :<math>\int_{\dot x_0}^{\dot x} d\dot x = \int_{t_0}^{t} 0 dt</math> | ||
+ | ::<math>\Rightarrow \dot x =\dot x_0</math> : integrate and the constant is the initial velocity of the projectile | ||
+ | :<math> \int_{x_0}^{x} d x = \int_{t_0}^{ t} \dot x_0 dt</math> : integrate again | ||
+ | ::<math> \Rightarrow x = \dot x_0 t + x_0</math> : | ||
+ | |||
+ | similarly in the y-direction | ||
+ | |||
+ | :<math>y = \dot y_0 t + y_0</math> | ||
+ | |||
+ | z-direction | ||
+ | |||
+ | :<math>\ddot z = -g</math> | ||
+ | :<math>\int_{\dot z_0}^{\dot z} d\dot z = \int_{t_0}^{t} -g dt</math> | ||
+ | ::<math>\Rightarrow \dot z = -gt + \dot z_0</math> | ||
+ | :<math> \int_{z_0}^{z} d z = \int_{t_0}^{ t} (-gt + \dot z_0) dt</math> | ||
+ | ::<math> \Rightarrow z = \dot z_0 t + z_0 - \frac{1}{2}gt^2</math> | ||
==== 1st order Approx==== | ==== 1st order Approx==== | ||
+ | Return to the original system of the equations of motion | ||
+ | |||
+ | :: <math>\ddot x =2\Omega (\dot y \cos \theta - \dot z \sin \theta)</math> | ||
+ | :: <math>\ddot y =- 2 \Omega \dot x \cos \theta</math> | ||
+ | :: <math>\ddot z =2 \Omega \dot x \sin \theta -g</math> | ||
+ | |||
+ | substitute the 0th order solutions and integrate again | ||
+ | |||
+ | x-direction | ||
+ | |||
+ | :<math>\ddot x =2\Omega (\dot y \cos \theta - \dot z \sin \theta)</math> | ||
+ | ::<math> =2\Omega (\dot y_0 \cos \theta - ( -gt + \dot z_0) \sin \theta)</math> | ||
+ | :<math>\int_{\dot x_0}^{\dot x} d\dot x =\int_{t_0}^{t} \left [ 2\Omega (\dot y_0 \cos \theta - ( -gt + \dot z_0) \sin \theta)\right ] dt</math> | ||
+ | :: <math>\Rightarrow \dot x = 2\Omega \left [ \dot y_0 \cos \theta t + \left ( \frac{1}{2} gt^2 - \dot z_0 t \right ) \sin \theta \right ] + \dot x_0</math> | ||
+ | : <math>\int_{\dot x_0}^{\dot x} dx = \int_{t_0}^{t} \left [ 2\Omega \dot y_0 \cos \theta t + 2\Omega \left ( \frac{1}{2} gt^2 - \dot z_0 t \right ) \sin \theta + \dot x_0 \right ] dt</math> | ||
+ | :: <math>\Rightarrow x = \Omega \dot y_0 \cos \theta t^2 + \Omega \frac{1}{3} g\sin \theta t^3 - \Omega \dot z_0\sin \theta t^2 + \dot x_0 t</math> | ||
+ | :::: <math> = \Omega \left ( \dot y_0 \cos \theta - \dot z_0 \sin \theta \right )t^2 + \Omega \frac{1}{3} g\sin \theta t^3 + \dot x_0 t</math> | ||
+ | |||
+ | y-direction | ||
+ | |||
+ | : <math>\ddot y =- 2 \Omega \dot x \cos \theta</math> | ||
+ | :: <math> =- 2 \Omega \left ( 2\Omega \dot y_0 \cos \theta t + 2\Omega \left ( \frac{1}{2} gt^2 - \dot z_0 t \right ) \sin \theta + \dot x_0 \right ) \cos \theta</math> | ||
+ | :: <math> =- 2 \Omega \dot x_0 \cos \theta</math> : ignoring <math> \Omega^2</math> higher order terms | ||
+ | : <math>\int_{\dot y_0}^{\dot y} d \dot y =- \int_{t_0}^{t} 2 \Omega \dot x_0 \cos \theta dt</math> | ||
+ | :: <math>\Rightarrow \dot y =- 2 \Omega \dot x_0 \cos \theta t + \dot y_0</math> | ||
+ | :<math>\int_{y_0}^{y} d y =- \int_{t_0}^{t} 2 \Omega \dot x_0 \cos \theta t dt + \int_{t_0}^{t} \dot y_0 dt</math> | ||
+ | ::<math>\Rightarrow y =- \Omega \dot x_0 \cos \theta t^2 + \dot y_0 t</math> | ||
+ | |||
+ | z-direction | ||
+ | |||
+ | : <math>\ddot z =2 \Omega \dot x \sin \theta -g</math> | ||
+ | :: <math>=\ddot 2 \Omega \left ( 2\Omega \dot y_0 \cos \theta t + 2\Omega \left ( \frac{1}{2} gt^2 - \dot z_0 t \right ) \sin \theta + \dot x_0 \right ) \sin \theta -g</math> | ||
+ | :: <math>=2 \Omega \dot x_0 \sin \theta -g</math> : ignoring <math> \Omega^2</math> higher order terms | ||
+ | : <math>\int_{\dot z_0}^{\dot z} d\dot z = \int_{t_0}^{t} \left ( 2 \Omega \dot x_0 \sin \theta -g \right ) dt</math> | ||
+ | ::<math>\Rightarrow \dot z = \left ( 2 \Omega \dot x_0 \sin \theta -g \right ) t + \dot z_0</math> : ignoring <math> | ||
+ | :<math>\int_{z_0}^{z}d z = \int_{t_0}^{t} 2 \left [ \left ( 2 \Omega \dot x_0 \sin \theta -g \right ) t + \dot z_0\right ]</math> | ||
+ | ::<math>\Rightarrow z = \Omega \dot x_0 \sin \theta t^2 - \frac{1}{2} gt^2 + \dot z_0 t</math> | ||
+ | |||
+ | |||
+ | General equations of motion | ||
+ | |||
+ | ::<math>x = \Omega \left ( \dot y_0 \cos \theta - \dot z_0 \sin \theta \right )t^2 + \Omega \frac{1}{3} g\sin \theta t^3 + \dot x_0 t</math> | ||
+ | ::<math>y =- \Omega \dot x_0 \cos \theta t^2 + 2 \dot y_0 t</math> | ||
+ | ::<math> z = \Omega \dot x_0 \sin \theta t^2 - \frac{1}{2} gt^2 + \dot z_0 t</math> | ||
+ | |||
+ | |||
+ | If the object is dropped from a height h | ||
+ | |||
+ | :<math>\Rightarrow \dot x_0 = \dot y_0 = \dot z_0 = 0</math> | ||
+ | |||
+ | :<math>x = \Omega \frac{1}{3} g\sin \theta t^3 </math> | ||
+ | :<math>y =0</math> | ||
+ | :<math>z = -h = - \frac{1}{2} gt^2 </math> | ||
+ | |||
+ | :: <math>\Rightarrow t = \sqrt{\frac{2h}{g}} \;\;\;\;\; x = \Omega \frac{1}{3} g\sin \theta \left ( \frac{2h}{g} \right )^{\frac{3}{2}}</math> | ||
+ | |||
+ | |||
+ | If I drop an object down an evacuated 100 m deep hole at the equator | ||
+ | |||
+ | :<math> x = \Omega \frac{g}{3} \left ( \frac{2h}{g} \right )^{\frac{3}{2}}</math> | ||
+ | ::<math> x = (7.3 \times 10^{-5} \frac{1}{\mbox{s}}) \frac{10\mbox{m}}{3\mbox{s}^2} \left ( \frac{200}{10\mbox{s}^2} \right )^{\frac{3}{2}} = 2.2 cm</math> | ||
+ | |||
+ | === Foucault Pendulum === | ||
+ | |||
+ | The equation of motion may be written as | ||
+ | |||
+ | :<math> \vec \ddot r = \sum \vec F + 2\vec \dot r \times \vec \mathbf \Omega + \left (\vec \mathbf \Omega \times \vec r\right ) \times \vec \mathbf \Omega </math> | ||
+ | ::<math> = \vec g_0 + \vec T + 2\vec \dot r \times \vec \mathbf \Omega + \left (\vec \mathbf \Omega \times \vec r\right ) \times \vec \mathbf \Omega </math> | ||
+ | ::<math> = \vec {g} + \vec T + 2\vec \dot r \times \vec \mathbf \Omega </math> | ||
+ | |||
+ | == Interpretation of rotating reference frame== | ||
+ | |||
+ | |||
+ | ===Polar=== | ||
+ | [[File:TF_UCM_PolarCoordSys.png| 200 px]] | ||
+ | Vector Notation convention: | ||
+ | |||
+ | Position: | ||
+ | |||
+ | Because <math>\hat{r}</math> points in a unique direction given by <math>\hat{r} = \frac{\vec{r}}{|r|}</math> we can write the position vector as | ||
+ | |||
+ | :<math>\vec{r} = r \hat{r}</math> | ||
+ | |||
+ | :<math>\vec{r} \ne r \hat{r} +\phi \hat{\phi} </math>: <math>\phi</math> does not have the units of length | ||
+ | |||
+ | |||
+ | The unit vectors (<math>\hat{r}</math> and <math>\hat{\phi}</math> ) are changing in time. You could express the position vector in terms of the cartesian unit vectors in order to avoid this | ||
+ | |||
+ | :<math>\vec{r} = r \cos(\phi) \hat{i} + r \sin(\phi)\hat{j}</math> | ||
+ | |||
+ | The dependence of position with <math>\phi</math> can be seen if you look at how the position changes with time. | ||
+ | |||
+ | ====Velocity in Polar Coordinates ==== | ||
+ | |||
+ | Consider the motion of a particle in a circle. At time <math>t_1</math> the particle is at <math>\vec{r}(t_1)</math> and at time <math>t_2</math> the particle is at <math>\vec{r}(t_2)</math> | ||
+ | |||
+ | |||
+ | [[File:TF_UCM_PolarVectDiff.png| 200 px]] | ||
+ | |||
+ | |||
+ | |||
+ | If we take the limit <math>t_2 \rightarrow t_1</math> ( or <math>\Delta t \rightarrow 0</math>) then we can write the velocity of this particle traveling in a circle as | ||
+ | |||
+ | :<math>\hat{r} (t_2)-\hat{r}(t_1) \equiv \Delta \hat{r} = \Delta \phi \hat{\phi}</math> | ||
+ | |||
+ | ::or | ||
+ | |||
+ | :<math>\frac{ d \hat{r}}{dt} = \frac{d \phi}{dt} \hat{\phi}</math> | ||
+ | |||
+ | Thus for circular motion at a constraint radius we get the familiar expression | ||
+ | |||
+ | :<math>\vec{v} = \lim_{\Delta t \rightarrow 0} \frac{\vec{r}(t_2)-\vec{r}(t_1)}{\Delta t}= \lim_{\Delta t \rightarrow 0} \frac{r\left( \hat{r}(t_2) - \hat{r}(t_1)\right)}{\Delta t} = r \frac{\Delta \phi}{\Delta t} \hat{\phi} = r \omega \hat{\phi}</math> | ||
+ | |||
+ | :<math>\vec{v} = r \frac{d \phi}{dt} \hat{\phi}</math> | ||
+ | |||
+ | |||
+ | |||
+ | If the particle is not constrained to circular motion ( i.e.: <math>r</math> can change with time) then the velocity vector in polar coordinates is | ||
+ | |||
+ | |||
+ | |||
+ | |||
+ | :<math>\vec{v}</math> = <math>\frac{d r}{dt}\hat{r} + r\frac{d \phi}{dt} \hat{\phi}</math> | ||
+ | |||
+ | :: or in more compact form | ||
+ | |||
+ | :<math>\vec{v}=\vec{\dot{r}} = \dot{r} \hat{r} + r \dot{\phi} \hat{\phi}= v_r \hat{r} + v_{\phi} \hat{\phi}</math> | ||
+ | |||
+ | |||
+ | |||
+ | :linear velocity <math>\equiv v_r </math> Angular velocity <math>\equiv v_{\phi} </math> | ||
+ | |||
+ | |||
+ | ;Finding the derivative directly | ||
+ | |||
+ | Cast the unit vector in terms of cartesian coordinates and take the derivative. | ||
+ | |||
+ | :<math>\hat r = \cos \phi \hat{i} + \sin \phi \hat{j}</math> | ||
+ | |||
+ | :<math>\hat \dot{r} = \frac{d \hat{r}}{d \phi} \frac{d \phi}{d t} =\left( \sin \phi \hat{i} - \cos \phi \hat{j} \right ) \dot{\phi}</math> | ||
+ | :: <math>= \left ( \hat{\phi} \right ) \dot{\phi} </math> | ||
+ | |||
+ | ====Acceleration in Polar Coordinates ==== | ||
+ | |||
+ | Taking the derivative of velocity with time gives the acceleration | ||
+ | |||
+ | |||
+ | :<math>\vec{a} = \frac{d \vec{v}}{dt} =\vec{\ddot{r}} </math> | ||
+ | ::<math>= \frac{ d \left (\dot{r} \hat{r} + r \dot{\phi} \hat{\phi}= v_r \hat{r} + v_{\phi} \hat{\phi}\right)}{dt}</math> | ||
+ | ::<math>= \left ( \frac{ d \dot{r}}{dt} \hat{r} + \dot{r} \frac{ d\hat{r}}{dt} \right) + \left ( \frac{d r}{dt} \dot{\phi} \hat{\phi} +r \frac{d \dot{\phi}}{dt} \hat{\phi} +r \dot{\phi} \frac{d \hat{\phi}}{dt} \right )</math> | ||
+ | ::<math>= \left ( \ddot{r} \hat{r} + \dot{r} \dot{\phi}\hat{\phi} \right) + \left ( \dot{r} \dot{\phi} \hat{\phi} +r \ddot{\phi} \hat{\phi} +r \dot{\phi} \frac{d \hat{\phi}}{dt} \right )</math> | ||
+ | |||
+ | |||
+ | We need to find the derivative of the unit vector <math>\hat{\phi}</math> with time. | ||
+ | |||
+ | Consider the position change below in terms of only the unit vector <math>\hat{\phi}</math> | ||
+ | |||
+ | |||
+ | [[File:TF_UCM_PolarPhiUnitVectDiff.png| 400 px]] | ||
+ | |||
+ | |||
+ | Using the same arguments used to calculate the rate of change in <math>\hat{r}</math>: | ||
+ | |||
+ | If we take the limit <math>t_2 \rightarrow t_1</math> ( or <math>\Delta t \rightarrow 0</math>) then we can write the velocity of this particle traveling in a circle as | ||
+ | |||
+ | :<math>\hat{\phi} (t_2)-\hat{\phi}(t_1) \equiv \Delta \hat{\phi} = \Delta \phi (- \hat{r})</math> | ||
+ | |||
+ | ::or | ||
+ | |||
+ | :<math>\frac{ d \hat{\phi}}{dt} = -\frac{d \phi}{dt} \hat{r}</math> | ||
+ | |||
+ | :<math>\frac{d \hat{\phi}}{dt}= -\dot{\phi} \hat{r}</math> | ||
+ | |||
+ | |||
+ | ;Finding the derivative of <math>\hat{\phi}</math> directly: | ||
+ | |||
+ | Cast the unit vector in terms of cartesian coordinates and take the derivative. | ||
+ | |||
+ | : <math> \hat{\phi} = \sin \phi \hat{i} - \cos \phi \hat{j} </math> | ||
+ | |||
+ | :<math>\hat \dot{\phi} = \frac{d \hat{\phi}}{d \phi} \frac{d \phi}{d t} =\left( -\cos \phi \hat{i} - \sin \phi \hat{j} \right ) \dot{\phi}</math> | ||
+ | :: <math>= \left (- \hat{r} \right ) \dot{\phi} </math> | ||
+ | |||
+ | |||
+ | |||
+ | Substuting the above into our calculation for acceleration: | ||
+ | |||
+ | |||
+ | :<math>\vec{a} = \left ( \ddot{r} \hat{r} + \dot{r} \dot{\phi}\hat{\phi} \right) + \left ( \dot{r} \dot{\phi} \hat{\phi} +r \ddot{\phi} \hat{\phi} +r \dot{\phi} \frac{d \hat{\phi}}{dt} \right )</math> | ||
+ | ::<math>= \left ( \ddot{r} \hat{r} + \dot{r} \dot{\phi}\hat{\phi} \right) + \left ( \dot{r} \dot{\phi} \hat{\phi} +r \ddot{\phi} \hat{\phi} +r \dot{\phi} \left( -\dot{\phi} \hat{r}\right) \right )</math> | ||
+ | ::<math>= \left ( \ddot{r} -r\dot{\phi}^2 \right) \hat{r} + \left ( 2\dot{r} \dot{\phi} +r \ddot{\phi} \right ) \hat{\phi} </math> | ||
+ | |||
+ | |||
+ | : F_r = m \ddot r \hat r = m \left ( \ddot{r} -r\dot{\phi}^2 \right) \hat{r} = | ||
[[Forest_Ugrad_ClassicalMechanics]] | [[Forest_Ugrad_ClassicalMechanics]] |
Latest revision as of 02:15, 6 December 2021
Mechanics in Noninertial Reference Frames
Linearly accelerating reference frames
Let
represent an inertial reference frame and represent an noninertial reference frame with acceleration relative to .Ball thrown straight up
Consider the motion of a ball thrown straight up as viewed from
.
Using a Galilean transformation (not a relativistic Lorentz transformation)
At some instant in time the velocities add like
where
- = velocity of moving frame with respect to at some instant in time
taking derivative with respect to time
where
- inertial force
- in your noninertial frame, the ball appears to have a force causing it to accelerate in the direction.
The inertial force may also be referred to as a fictional force
an example is the "fictional" centrifugal force for rotational acceleration.
The observer in a noninertial reference frame will feel these frictional forces as if they are real but they are really a consequence of your accelerating reference frame
example
- A force pushes you back into your seat when your Jet airplane takes off
- you slam on the brakes and hit your head on the car's dashboard
Pedulum in an accelerating car
Consider a pendulum mounted inside a car that is accelerating to the right with a constant acceleration
.What is the pendulums equilibrium angle
In frame
In frame
If the pendulum is at rest and not oscillating then
is the vector sum of and which are orthogonal to each other in this problem thus
The pendulum oscillation frequency as seen in the accelerating car is
- Using lagrangian mechanics in the inertial frame
The tides view by a ref frame accelerating towards the moon
The gravitational force between the moon and the earth accelerates the earth towards the moon.
- This makes the earth an accelerated reference frame
The moon of mass
pulls on the earth of mass such thatwhere
is the earth-moon distance of separation.- Earth's acceleration towards the moon that makes the earth a non-inertial reference frame
The moon of mass pulls on a test mass of water on the surface of the earth's ocean such that
As seen in the Earth non-inertial reference frame
where
- a net non-graviational force hold the mass M_o in top of the ocean (Bouyant force)= M(displaced water)*g = constant force independent of position
Let's consider two cases, one where M_o is directly between the moon and the earth and the other when the mass is directly on the opposite side of the earth from the moon.
- Case 1
- The mass is directly between the moon and the earth
- In this case and making pull towards the moon
- Case 2
- The mass is directly on the other side of the earth with respect to the moon
- In this case BUT making pull away from the moon
Magnitude of the Tides
Consider a drop of water of mass
on the surface of the ocean.The three forces influencing this drop from the previous sections are
- Archimedes Principle
- An object in a fluid is buoyed up with a force equal to the weight of the water displaced by the object.
All of the above forces act normal to the surface of the water.
are the result of a gravitational force which is conservative.
A potential may be defined for the two forces above such that
- : is NOT always pointed along the x-axis towards the moon
- -
- Since is at fixed distance
- Since is parallel to x
Since
are forces that are exerted such that the are always perpendicular to the surface of the ocean ( they are normal to the surface) then the sum of the two potential's,
, is constant on the surface- The ocean's surface is an equipotential surface ( all points on the surface of the ocean are have the same gravitational potential energy
If you consider two points on the surface of the earth where one point is high tide (HT) and the other point is low tide (LT) then
The change in the gravitational potential energy between the earth and the ocean for high tide and low tide is
but
At HT
At LT
- : geometric series when
Height of Tides due to Moon and Sun
- kg = mass of moon
- kg = mass of earth
- kg = mass of sun
- m
- m = earth-moon distance
- height of tides due to the moon
- m = earth-sun distance
- height of tides due to sun
- spring tides
- The case when the moon, earth and sun are aligned to give maximum height tide (moon can be either full or new doesn't matter because the bulge is on both sides of the earth)
- neap tides
- This is the case then the sun, earth, and sun are aligned to form a right triangle. The tide effect should cancel so the height is only 54-25=29 cm.
Euler's Theorem of rotation
Original form:
- Any displacement of a rigid body in three dimensional space such that a point on the rigid body, say O, remains fixed, is equivalent to a rotation about a fixed axis through the point O.
Expressed using Modern mathematical terms
- Euler's theorem on the axis of a three dimensional rotation
- If is a 3x3 orthogonal matrix and is proper , then there is a non-zero vector such that
The matrix R above represents a spatial rotation that is a linear one-to-one mapping that transforms the coordinate vector P into p.
The above theorem can be proven by treating it as a matrix algebra problem where you want to prove. ie
First let's find the eigenvalues and eigenvectors of the matrix
A consequence of Euler's theorem is that a single rotation may be represented as a combination of rotation.
Angular velocity vector
If we denote the angular velocity vector describing the angular velocity of a rotating body as
the the magnitude and direction of this vector may be expressed asmagnitude of the rate of rotation (angular speed)
direction of the rotation axis which is given by the right-hand rule and may is expressed using the components of a right handed coordinate system ( ie or )
- the angular velocity vector describing the angular velocity of a rotating body
- The angular velocity vector describing the angular velocity of a rotating non-inertial reference frame.
Linear velocity from angular velocity
- = linear velocity of a point located at the position on a body rotating about the origin of the coordinate system used to specify .
Angular velocity addition
Consider two coordinate systems where
represent an inertial reference frame and represent a frame with a velocity relative to .
Using a Galilean transformation (not a relativistic Lorentz transformation)
the velocity
in the moving frame may be expressed in terms of the velocity in the rest frame and the velocity of the moving frame as.Now consider the situation when an object is rotating. The relationship between angular and linear motion should still satisfy the general express
A point on this rotating body located by the position vector
from the inertial reference frame will have the linear velocity
If we fix a moving reference frame
so its origin coincides with then the position of the same point on the object is given by the same position vector . The angular velocity of this point is given by
If the moving reference frame
is rotating with an angular velocity then the point on the object located by the vector is moving with a linear velocity as viewed by ofBoth the linear and the angular velocities add
Time derivative in Rotating Frame
Nomenclature
The following variables are used to describe the kinematics of a rotating frame
- linear velocity of the rotating frame
- linear acceleration of the rotating frame
- angular velocity of the rotating frame
For example; a reference frame fixed to the earth with its origin at the center of the earth would be rotating with respect to an inertial frame with its origin at the same location with an angular velocity of one revolution every 24 hours.
Rate of change of a general vector Q
let
- an arbitrary vector representing position
Let's write the vector in terms of three orthonormal unit vectors representing an arbitrary right-handed coordinate system
- = rate of change of as described by (relative to ) the rotating frame
Using unit vectors that are attached to the rotating frame
In a cartesian coordinate system
From the inertial reference frame
the above unit vectors used by are changing their direction with time
- The expansion coefficients (vector components) of the vector are the same in both frames as the moving frames is not moving fast enough to be relativistic
- as seen earlier
The time derivative of a vector as measured in the inertial frame is related to the derivative in the non-inertial frame by
Newton's second law in a rotating frame
Newton's 2nd law in an inertial reference fram
To determine the second derivative in a non-inertial frame we can take the derivative of the velocity relationship
let
then
returning to Newton's second law
- : changing order of cross products introduces negative sign
Alternative derivation using Lagrangian
Hamilton's principle is defined for an inertial reference frame, therefor the lgrangian is written from that perspective.
- kinetic energy in the inertial reference frame
As seen before
where
- = velocity of moving frame with respect to inertial frame at some instant in time
If we consider a non-inertial reference frame that is only rotating with an angular velocity with an origin fixed to the origin of the inertial reference frame.
Then
substituting this Gallilean transformation into the expression for the kinetic energy in the inertial reference fram
- : scalar triple product is invariant under cyclic permutation
- this is a scaler so ignore the unit vector time derivative
psuedo Force names
- Coriolis Force
- Centrifugal Force
where
- velocity of object in the rotating frame
- velocity of the rotating frame
For the rotating earth
- m/s
- mi/hr
- For objects with velocity v < 500 mph you can neglect the coriolis force.
- Also note that the coriolis force depends on the velocity of the object while the centrifugal does not.
Centrifugal Force
The direction of this fictional force on the earth's non-inertial reference frame is radially outward from the axis of rotation.
Insert picture
Free fall example
The force of gravity between two objects with mass M and m is
In a non-inertial reference frame attached to the rotating earth the effective gravitational force is
If we assume the objects velocity v < 500 mph then you can neglect the coriolis force.
The coriolis force decreases the pull of gravity and is a function of the lattitude (
) The larger the stronger the effective gravitational force.- Launch rockets from Florida not Alaska
Free fall tangential component
The tangential component of the centrifugal force is directed along the surface of the sphere such that
This has a maximum at
= 45 degrees
Coriolis Force
Coriolis Force in Earth's reference frame
The Earth rotates from west to east.
Consider a reference frame fixed to the earth in the Northern Hemisphere at the latitude angle 90 -
. In a standard spherical coordinate system the "z-axis" is directed towards the north pole and is the polar angle measures from this fixed zenith direction, is the azimuthal angle corresponding to longitudinal (east-west). Lines of latitude represent the angle measured from the equator to one of the Earth's poles (90 - )
Media:TF_UCM_MiNF_CoriolisRefFrame1.xfig.txt
The non-inertial frame shown above has the
axis pointing to the west and the axis pointing upward along the radial direction from the Earth's center.The rotation vector
as described in the non-inertial frame isI you launch a projectile in the Northern Hemisphere so its velocity tangential to the Earth's surface and moving from the equator towards the north pole, the projectile will be deflected towards the east (right).
- East
If you launch the projectile towards the equator from the Northern hemisphere.
- West
In both cases the projectile is deflected to the right of its velocity direction.
How about a projectile launched to the West (East)
A projectile moving West (East) will deflected down(up) and to the right of its trajectory
- What happens in the Southern Hemisphere?
The rotation vector
as described in the non-inertial frame in the Southern Hemisphere isNow if
Projectile directed from South to North
- west
In the Northern hemisphere a projectile would swerve East if you directed it to the North
Projectile directed from South to North
- East
How about a projectile launched to the West (East)
A projectile moving West (East) in the Souther Hemisphere will deflected down(up) and to the left of its trajectory
Coriolis effect on storm systems
The Earth (and a non-inertial reference frame attached to it) has a rotational velocity
Weather systems involve a large mass of air moving at speeds up to 100 miles per hour in the case of a tropical storms.
Over large distances this acceleration can have an effect on the course of a storm but not the short distances involved in tornados.
Tropical storms (cyclones) are examples of how the coriolis force determine the rotational direction of an air mass that is quickly moving towards a low pressure area. As the air mass moves along the pressure gradient is is deflected to the right. This results in a clockwise (counter-clockwise) rotation in teh Northern (Southern) hemisphere. The radius of the cyclone can be estimated as
Free fall
Consider an object of mass m close to the surface of the earth and falling in a vacuum.
As viewed from a non-inertial reference frame attached to the rotating earth Newton's second law is
The equation of motion may be written as
where
- the acceleration due to a non-rotating earth
- the acceleration observed
- Note
- by expressing the equation of motion in terms of \vec g you remove the dependence of leaving only a dependence on and
If I use a coordinate system where the x-axis if pointing East then the z-axis will be pointing radially upward such that
left
writing out the individual components
0th order Approx
let
Then
x-directions
- : integrate and the constant is the initial velocity of the projectile
- :
: integrate again
similarly in the y-direction
z-direction
1st order Approx
Return to the original system of the equations of motion
substitute the 0th order solutions and integrate again
x-direction
y-direction
- : ignoring higher order terms
z-direction
- : ignoring higher order terms
- : ignoring
General equations of motion
If the object is dropped from a height h
If I drop an object down an evacuated 100 m deep hole at the equator
Foucault Pendulum
The equation of motion may be written as
Interpretation of rotating reference frame
Polar
Position:
Because
points in a unique direction given by we can write the position vector as- : does not have the units of length
The unit vectors ( and ) are changing in time. You could express the position vector in terms of the cartesian unit vectors in order to avoid this
The dependence of position with
can be seen if you look at how the position changes with time.Velocity in Polar Coordinates
Consider the motion of a particle in a circle. At time
the particle is at and at time the particle is at
If we take the limit
( or ) then we can write the velocity of this particle traveling in a circle as- or
Thus for circular motion at a constraint radius we get the familiar expression
If the particle is not constrained to circular motion ( i.e.:
can change with time) then the velocity vector in polar coordinates is
- =
- or in more compact form
- linear velocity Angular velocity
- Finding the derivative directly
Cast the unit vector in terms of cartesian coordinates and take the derivative.
Acceleration in Polar Coordinates
Taking the derivative of velocity with time gives the acceleration
We need to find the derivative of the unit vector with time.
Consider the position change below in terms of only the unit vector
Using the same arguments used to calculate the rate of change in :
If we take the limit
( or ) then we can write the velocity of this particle traveling in a circle as- or
- Finding the derivative of directly
Cast the unit vector in terms of cartesian coordinates and take the derivative.
Substuting the above into our calculation for acceleration:
- F_r = m \ddot r \hat r = m \left ( \ddot{r} -r\dot{\phi}^2 \right) \hat{r} =