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Chapter Motion in Two and Three Dimensions In this chapter we will continue to study the motion of objects without the restriction we put in chapter to move along a straight line Instead we will consider motion in a plane (two dimensional motion) and motion in space (three dimensional motion) The following vectors will be defined for two- and three- dimensional motion: Displacement Average and instantaneous velocity Average and instantaneous acceleration We will consider in detail projectile motion and uniform circular motion as examples of motion in two dimensions Finally we will consider relative motion, i.e the transformation of velocities between two reference systems which move with respect to each other with (4 -1) constant velocity Position Vector The position vector r of a particle is defined as a vector whose tail is at a reference point (usually the origin O) and its tip is at the particle at point P Example: The position vector in the figure is: ˆ ˆ r xi yj zkˆ r 3iˆ ˆj 5kˆ m P (4 -2) Displacement Vector For a particle that changes postion vector from r1 to r2 we define the displacement vector r as follows: r r2 r1 The position vectors r1 and r2 are written in terms of components as: ˆ ˆ ˆ r1 x1i y1 j z1k r2 x2iˆ y2 ˆj z2 kˆ The displacement r can then be written as: r x2 x1 iˆ y2 y1 ˆj z2 z1 kˆ xiˆ yjˆ zkˆ x x2 x1 y y2 y1 z z2 z1 t1 t2 (4 -3) Average and Instantaneous Velocity Following the same approach as in chapter we define the average velocity as: displacement average velocity = time interval r xiˆ yjˆ zkˆ xiˆ yjˆ zkˆ vavg t t t t t We define as the instantaneous velocity (or more simply the velocity) as the limit: t t + Δt r dr v lim t dt t (4 - 4) If we allow the time interval t to shrink to zero, the following things happen: Vector r2 moves towards vector r2 and r r The direction of the ratio (and thus vavg )approaches the direction t of the tangent to the path at position vavg v dx dy ˆ dz ˆ d ˆ ˆ v xi yj zkˆ iˆ j k v xiˆ v y ˆj v z kˆ dt dt dt dt The three velocity components are given by the equations: t t + Δt (4 - 5) vx dr v dt dx dt dy vy dt vz dz dt Average and Instantaneous Acceleration The average acceleration is defined as: aavg change in velocity average acceleration = time interval v v v 1 t t We define as the instantaneous acceleration as the limit: dvx ˆ dv y ˆ dvz ˆ v dv d ˆ ˆ ˆ a lim vx i v y j vz k i j k axiˆ a y ˆj a z kˆ t dt dt dt dt dt t Note: Unlike velocity, the acceleration vector does not have any specific relationship with the path The three acceleration components are given by the equations: dv ax x dt ay dv y dt dvz az dt dv a dt (4 - 6) Projectile Motion The motion of an object in a vertical plane under the influence of gravitational force is known as “projectile motion” The projectile is launched with an initial velocity vo The horizontal and vertical velocity components are: vox vo cos o g (4-7) voy vo sin o Projectile motion will be analyzed in a horizontal and a vertical motion along the x- and y-axes, respectively These two motions are independent of each other Motion along the x-axis has zero acceleration Motion along the yaxis has uniform acceleration ay = -g (4 - 7) Horizontal Motion: ax 0 v x v0 cos (eqs.1) Vertical Motion: v y v0 sin gt The velocity along the x-axis does not change x xo vo cos o t a y g (eqs.3) (eqs.2) Along the y-axis the projectile is in free fall gt y yo v0 sin t (eqs.4) If we eliminate t between equations and we get: v y2 v0 sin g y yo g Here xo and yo are the coordinates of the launching point For many problems the launching point is taken at the origin In this case xo 0 and yo 0 Note: In this analysis of projectile motion we neglect the effects of (4-8) air resistance (4 - 8) The equation of the path: gt x vo cos o t (eqs.2) y v0 sin t (eqs.4) If we eliminate t between equations and we get: g y tan o x x This equation describes the path of the motion 2 vo cos o The path equations has the form: y ax bx This is the equation of a parabola Note: The equation of the path seems too complicated to be useful Appearances can deceive: Complicated as it is, this equation can be used as a short cut in many projectile motion problems (4 - 9) v x v0 cos (eqs.1) x vo cos o t (eqs.2) sin gt v y v0 sin gt (eqs.3) y v0 sin t (eqs.4) O /2 Horizontal Range: The distance OA is defined as the horizantal range R At point A we have: y 0 From equation we have: 3/2 gt gt v sin t t v sin 0 0 This equation has two solutions: 2 Solution t 0 This solution correspond to point O and is of no interest gt 0 This solution correspond to point A 2v0 sin From solution we get: t If we substitute t in eqs.2 we get: g 2vo2 vo2 R sin o cos o sin 2 o g g t A O R has its maximum value when o 45 Solution v0 sin R 2sin A cos A sin A Rmax vo2 g (4 -10) tA g Maximum height H vo2 sin o H 2g H The y-component of the projectile velocity is: v y v0 sin gt At point A: v y 0 v0 sin gt t H y (t ) v0 sin t vo2 sin o H 2g v0 sin g gt v sin g v0 sin v0 sin g 2 g (4 -11) Maximum height H (encore) tA g vo2 sin o H 2g H We can calculate the maximum height using the third equation of kinematics 2 for motion along the y-axis: v y v yo 2 a y yo In our problem: yo 0 , y H , v yo vo sin o , v y 0 , and a g v yo 2 v sin o v yo gH H o 2g 2g (4 -12) Uniform circular Motion: A particles is in uniform circular motion it moves on a circular path of radius r with constant speed v Even though the speed is constant, the velocity is not The reason is that the direction of the velocity vector changes from point to point along the path The fact that the velocity changes means that the acceleration is not zero The acceleration in uniform circular motion has the following characteristics: Its vector points towards the center C of the circular path, thus the name “centripetal” v2 Its magnitude a is given by the equation: a r Q r C r P The time T it takes to complete a full revolution is known as the “period” It is given by the equation: r R 2 r T v (4 -13) yP xP sin cos r r Here xP and yP are the coordinates of the rotating particle y x dv v dyP ˆ v dxP P ˆ P ˆ v v i v j Acceleration a = i r r dt r dt r dt dyP dxP We note that: v y v cos and vx v sin dt dt v vxiˆ v y ˆj v sin iˆ v cos ˆj ˆ v2 ˆ v2 a cos i sin j r r tan vx v sin v y v cos ay ax v / r sin v / r cos v a ax2 a y2 r cos ˆ j sin v2 r tan a points towards C P C C A (4 -14) cos 2 sin 1 Relative Motion in One Dimension: The velocity of a particle P determined by two different observers A and B varies from observer to observer Below we derive what is known as the “transformation equation” of velocities This equation gives us the exact relationship between the velocities each observer perceives Here we assume that observer B moves with a known constant velocity vBA with respect to observer A Observer A and B determine the coordinates of particle P to be xPA and xPB , respectively xPA xPB xBA Here xBA is the coordinate of B with respect to A d d d We take derivatives of the above equation: x x PA PB xBA dt dt dt vPA vPB vBA If we take derivatives of the last equation and take into account that dvBA 0 dt aPA aPB Note: Even though observers A and B measure different velocities for P, they measure the same acceleration (4 -15) Relative Motion in Two Dimensions: Here we assume that observer B moves with a known constant velocity vBA with respect to observer A in the xy-plane Observers A and B determine the position vector of particle P to be rPA and rPB , respectively rPA rPB rBA We take the time derivative of both sides of the equation d d d rPA rPB rBA vPA vPB vBA vPA vPB vBA dt dt dt If we take the time derivative of both sides of the last equation we have: d d d dvBA vPA vPB vBA If we take into account that 0 aPA aPB dt dt dt dt (4 -16) Note: As in the one dimensional case, even though observers A and B measure different velocities for P, they measure the same acceleration ... be analyzed in a horizontal and a vertical motion along the x- and y-axes, respectively These two motions are independent of each other Motion along the x-axis has zero acceleration Motion along... in free fall gt y yo v0 sin t (eqs.4) If we eliminate t between equations and we get: v y2 v0 sin g y yo g Here xo and yo are the coordinates of the launching point... correspond to point O and is of no interest gt 0 This solution correspond to point A 2v0 sin From solution we get: t If we substitute t in eqs.2 we get: g 2vo2 vo2 R sin o cos o sin 2 o