Presentation is loading. Please wait.

Presentation is loading. Please wait.

Physics ch 6 answers. #30 F = 30NIf flat W = F N so W = 117.6 N constant velocity  F f = F app = 30N 12 kg.

Published byWillis Jonas Weaver Modified over 8 years ago

Similar presentations

Presentation on theme: "Physics ch 6 answers. #30 F = 30NIf flat W = F N so W = 117.6 N constant velocity  F f = F app = 30N 12 kg."— Presentation transcript:

1 Physics ch 6 answers

2 #30 F = 30NIf flat W = F N so W = 117.6 N constant velocity  F f = F app = 30N 12 kg

3 #31so W = 44,100 N *To keep at constant height Lift Force = Weight = 44,100 N *To lift at 2 m/s 2 F = ma F acc = (4500 kg) (2 m/s 2 ) = 9000N F app = F g + F acc = 44,1000 N + 9000 N = 53,100N 4500 kg

4 #32so W = 196 N So 196 needed to simply overcome g *To lift at 5 m/s 2 F = ma F acc = (20 kg) (5 m/s 2 ) = 100N Total F = F g + F acc = 196 N + 100 N = 296 N Since our max was 250 the bag will burst 20 kg

5 #33 F app = 40Nso W = 49 N F acc = (5 kg) (6 m/s 2 ) = 30 N F app = F f + F acc 40 N = F f + 30 N So F f = 10 N 5 kg

6 #34 so W = 2205 N If flat W = F N F f =441N to push at constant velocity F app = F f If pushing at 710N, 441N is for F f so F acc = 710 N – 441 N = 269 N = ma 269 N = (225 kg) a so a = 1.196 m/s 2 255 kg

7 #35v f = 0,v i = 14 m/s, d = 25m v f 2 = v i 2 + 2ad 0 = (14 m/s) 2 + 2(a)(25m) 0 = 196 m 2 /s 2 + 50m (a) -196 m 2 /s 2 = 50m (a) -3.92 m/s 2 = a

8 #36a so W =F g = 836 N Moving up F app = 936N F app = F g + F acc 936 N = 836 N + F acc 100 N = F acc F acc = ma 100 N = (85.3 kg)(a) a = 1.17 m/s 2 85.3 kg

9 #36b so W =F g = 836 N F app = 782 N F app = F g + F acc 782 N = 836 N + F acc -54 N = F acc F acc = ma -54 N = (85.3 kg)(a) a = -.633 m/s 2 85.3 kg

10 #36 c & d c) Stopping because magnitude of acceleration is less d) Initial acc (neg) downwardscale < 836 N At Constant velocityscale = 836 N elevator goes to stop (acc is +)scale > 836 N

11 #37 a) W = mg = 490 N b) To start sled moving must overcome Static Friction F f static = 147N c) To keep constant velocity must overcome kinetic friction F f kinetic = 49 N d) To accelerate must overcome Kinetic Friction & have F acc so F app =F f + F acc 49 N + ma = 49 N + (50 kg)(3m/s 2 ) = 199 N 50 kg

Download ppt "Physics ch 6 answers. #30 F = 30NIf flat W = F N so W = 117.6 N constant velocity  F f = F app = 30N 12 kg."

Similar presentations

Unbalanced Forces.

Unbalanced Forces.
Friction. Friction - the force needed to drag one object across another. (at a constant velocity) Depends on: How hard the surfaces are held together.

Friction. Friction - the force needed to drag one object across another. (at a constant velocity) Depends on: How hard the surfaces are held together.
2. What is the coefficient of static friction if it takes 34 N of force to move a box that weighs 67 N? .51.

2. What is the coefficient of static friction if it takes 34 N of force to move a box that weighs 67 N? .51.
Unit 03 “Horizontal Motion” Problem Solving Hard Level.

Unit 03 “Horizontal Motion” Problem Solving Hard Level.
Net Force Problems There are 2 basic types of net force problems

Net Force Problems There are 2 basic types of net force problems
Newton's First Law of Motion

Newton's First Law of Motion
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 10.

Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 10.
Newton’s 3rd Law of Motion By: Heather Britton. Newton’s 3rd Law of Motion Newton’s 3rd Law of Motion states Whenever one object exerts a force on a second.

Newton’s 3rd Law of Motion By: Heather Britton. Newton’s 3rd Law of Motion Newton’s 3rd Law of Motion states Whenever one object exerts a force on a second.
ELEVATOR PHYSICS.

ELEVATOR PHYSICS.
Happyphysics.com Physics Lecture Resources Prof. Mineesh Gulati Head-Physics Wing Happy Model Hr. Sec. School, Udhampur, J&K Website: happyphysics.com.

Happyphysics.com Physics Lecture Resources Prof. Mineesh Gulati Head-Physics Wing Happy Model Hr. Sec. School, Udhampur, J&K Website: happyphysics.com.
Do Now: A 40 N chair is pushed across a room with an acceleration of 2 m/s 2. Steven pushes with a force of 15N. What is the force of friction acting on.

Do Now: A 40 N chair is pushed across a room with an acceleration of 2 m/s 2. Steven pushes with a force of 15N. What is the force of friction acting on.
+ Make a Prediction!!! “Two objects of the exact same material are placed on a ramp. Object B is heavier than object A. Which object will slide down a.

+ Make a Prediction!!! “Two objects of the exact same material are placed on a ramp. Object B is heavier than object A. Which object will slide down a.
Friction is a force that opposes the motion between two surfaces that are in contact  is a force that opposes the motion between two surfaces that are.

Friction is a force that opposes the motion between two surfaces that are in contact  is a force that opposes the motion between two surfaces that are.
Aim: How can we explain the motion of elevators using Newton’s 2 nd law? Do Now: What is the acceleration of this object? m = 20 kg F = 150 N F = 100 N.

Aim: How can we explain the motion of elevators using Newton’s 2 nd law? Do Now: What is the acceleration of this object? m = 20 kg F = 150 N F = 100 N.
Friction. Newton’s Second Law W = mg W = mg Gives us F = ma Gives us F = ma.

Friction. Newton’s Second Law W = mg W = mg Gives us F = ma Gives us F = ma.
Warm Up The coefficient of static friction between a duck and some grass is 0.2. The weight of the duck is 30 N. 1) What is the maximum force of static.

Warm Up The coefficient of static friction between a duck and some grass is 0.2. The weight of the duck is 30 N. 1) What is the maximum force of static.
Resistance in Mechanical and Fluid System

Resistance in Mechanical and Fluid System
Year 12 Physics Gradstart. 2.1 Basic Vector Revision/ Progress Test You have 20 minutes to work in a group to answer the questions on the Basic Vector.

Year 12 Physics Gradstart. 2.1 Basic Vector Revision/ Progress Test You have 20 minutes to work in a group to answer the questions on the Basic Vector.
Forces. Force: A push or a pull on an object. A vector quantity. Two Types of Forces: Contact Forces: When the object is directly pushed or pulled. Field.

Forces. Force: A push or a pull on an object. A vector quantity. Two Types of Forces: Contact Forces: When the object is directly pushed or pulled. Field.
Exploring Frictional Forces Friction Friction and Newton’s Laws Static and Kinetic Friction Coefficient of Friction Practice.

Exploring Frictional Forces Friction Friction and Newton’s Laws Static and Kinetic Friction Coefficient of Friction Practice.

Similar presentations

Ads by Google