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Kinetics of a particle

Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

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Page 1: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Kinetics of a particle

Page 2: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Objectives

• To analyze the accelerated motion of a particle using the equation of motion with different coordinate systems.

10/06/54 ME212 ดร. พิภัทร 2

Page 3: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Newton’s Laws of Motions (1687)

First Law

A particle originally at rest, or moving in a straight line with a constant velocity, will remain in this state provided the particle is not subjected to an unbalanced force.

10/06/54 ME212 ดร. พิภัทร 3

Page 4: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Newton’s Laws of Motions (1687)

First Law

A particle originally at rest, or moving in a straight line with a constant velocity, will remain in this state provided the particle is not subjected to an unbalanced force.

10/06/54 ME212 ดร. พิภัทร 4

Page 5: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Newton’s Laws of Motions (1687)

Second Law

The unbalanced force acting on the particle is proportional to the time rate of change of the particle’s linear momentum.

10/06/54 ME212 ดร. พิภัทร 5

Page 6: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Newton’s Laws of Motions (1687)

Third Law

The mutual forces of action and reaction between two particles are equal, opposite, and collinear.

10/06/54 ME212 ดร. พิภัทร 6

Page 7: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Equation of MotionRectangular Coordinates

10/06/54 ME212 ดร. พิภัทร 7

amF

zz

yy

xx

maF

maF

maF

Page 8: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Procedure for Analysis

• Select the inertial coordinate system

• Draw FBD

• Establish direction and sense of acceleration

• Solve for unknowns

10/06/54 ME212 ดร. พิภัทร 8

Page 9: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Problem 13-12

• Determine the normal force the 10-kg crate A exerts on the smooth cart if the cart is given an acceleration of a = 2 m/s2 down the plane. Also, what is the acceleration of the crate?

(θ=30⁰)

10/06/54 ME212 ดร. พิภัทร 9

Page 10: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Problem 13-23

A force F = 150 N is applied to the cord.

Determine how high the 300-N (~ 30 kg)

block A rises in 2 s starting

from rest. Neglect the weight

of the pulleys and cord.

10/06/54 ME212 ดร. พิภัทร 10

Page 11: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Equation of MotionNormal and Tangential Coordinates

10/06/54 ME212 ดร. พิภัทร 11

bb

nn

tt

maF

maF

maF

Page 12: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Problem 13-67

10/06/54 ME212 ดร. พิภัทร 12

Determine the constant speed of the passengers on the amusement-park ride if it is observed that the supporting cables are directed at θ=30⁰ from the vertical. Each chair including its passenger has a mass of 80 kg. Also, what are the components of force in the n, t and b directions which the chair exerts on a 50-kg passenger during the motion?

Page 13: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Equation of MotionCylindrical Coordinates

10/06/54 ME212 ดร. พิภัทร 13

zz

rr

maF

maF

maF

Page 14: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Useful Formulas

10/06/54 ME212 ดร. พิภัทร 14

2 rrar rra 2 zaz

ddr

r

/tan

Page 15: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Problem 13-88

10/06/54 ME212 ดร. พิภัทร 15

The boy of mass 40-kg is sliding down the spiral slide at a constant speed such that his position, measured from the top of the chute, has components r=1.5 m, θ=0.7t rad, and z=-0.5t m, where t is in seconds. Determine the components of force Fr, Fθ and Fz

which the slide exerts on him at the instant t=2 s. Neglect the size of the boy.

Page 16: Kinetics of a particle - Phiphat Phruksarojanakun · Kinetics of a particle. Objectives ... The unbalanced force acting on the particle is proportional to the time rate of change

Example 1

10/06/54 ME212 ดร. พิภัทร 16

A can C, having mass 0.5-kg, moves along a grooved horizontal slot. The slot is in a form of spiral defined by equation r = (0.1θ) m, where θis in radians. If the arm OA is rotating at a constant rate in the horizontal plane, determine the force it exerts on the can at the instant θ = π rad.