Concept explainers
Videos
BIO Power lines—do their magnetic fields pose a risk? Power lines produce both electric and magnetic fields The interior of the human body is an electrical conductor, and as a result, electric fields are greatly reduced in magnitude within the body The electric fields inside the body from power lines are much smaller than electric fields normally existing in the body.
However, magnetic fields are not reduced in the body Earth's magnetic field, approximately
T, is very small and not regarded as a health threat Thus, it is interesting to compare Earth's magnetic field to fields produced by high power lines The magnetic field B produced at a distance r from a straight wire with an
The magnetic field from a high-voltage power line located 40 m above the ground carrying a 100-A current is much smaller than Earth's
Wires that provide electric power for household appliances also produce electric and magnetic fields The current in the wire for a 500-W space heater is about 5 A. With the wire located several meters from your body the magnetic field of such an appliance is somewhat smaller than Earth s magnetic field By comparison laboratory mice lived for several generations in 0.0010-T magnetic fields (20 times Earth s magnetic field) without any adverse effects.
During the last three decades, electric power use has increased the magnitudes of the
Which answer below is closest to the ratio of the power line
a. 0.001
b. 0.01
c. 0.1
d. 10
e. 100
Want to see the full answer?
Check out a sample textbook solution
Chapter 20 Solutions
Pearson eText for College Physics: Explore and Apply -- Instant Access (Pearson+)
Additional Science Textbook Solutions
Human Anatomy & Physiology (2nd Edition)
Introductory Chemistry (6th Edition)
Microbiology: An Introduction
Biology: Life on Earth (11th Edition)
Applications and Investigations in Earth Science (9th Edition)
Anatomy & Physiology (6th Edition)
- Consider the situation in the figure below; a neutral conducting ball hangs from the ceiling by an insulating string, and a charged insulating rod is going to be placed nearby. A. First, if the rod was not there, what statement best describes the charge distribution of the ball? 1) Since it is a conductor, all the charges are on the outside of the ball. 2) The ball is neutral, so it has no positive or negative charges anywhere. 3) The positive and negative charges are separated from each other, but we don't know what direction the ball is polarized. 4) The positive and negative charges are evenly distributed everywhere in the ball. B. Now, when the rod is moved close to the ball, what happens to the charges on the ball? 1) There is a separation of charges in the ball; the side closer to the rod becomes positively charged, and the opposite side becomes negatively charged. 2) Negative charge is drawn from the ground (via the string), so the ball acquires a net negative charge. 3)…arrow_forwardanswer question 5-9arrow_forwardAMPS VOLTS OHMS 5) 50 A 110 V 6) .08 A 39 V 7) 0.5 A 60 8) 2.5 A 110 Varrow_forward
- The drawing shows an edge-on view of two planar surfaces that intersect and are mutually perpendicular. Surface (1) has an area of 1.90 m², while surface (2) has an area of 3.90 m². The electric field in the drawing is uniform and has a magnitude of 215 N/C. Find the magnitude of the electric flux through surface (1 and 2 combined) if the angle 8 made between the electric field with surface (2) is 30.0°. Solve in Nm²/C 1 Ө Surface 2 Surface 1arrow_forwardPROBLEM 5 What is the magnitude and direction of the resultant force acting on the connection support shown here? F₁ = 700 lbs F2 = 250 lbs 70° 60° F3 = 700 lbs 45° F4 = 300 lbs 40° Fs = 800 lbs 18° Free Body Diagram F₁ = 700 lbs 70° 250 lbs 60° F3= = 700 lbs 45° F₁ = 300 lbs 40° = Fs 800 lbs 18°arrow_forwardPROBLEM 3 Cables A and B are Supporting a 185-lb wooden crate. What is the magnitude of the tension force in each cable? A 20° 35° 185 lbsarrow_forward
- The determined Wile E. Coyote is out once more to try to capture the elusive Road Runner of Loony Tunes fame. The coyote is strapped to a rocket, which provide a constant horizontal acceleration of 15.0 m/s2. The coyote starts off at rest 79.2 m from the edge of a cliff at the instant the roadrunner zips by in the direction of the cliff. If the roadrunner moves with constant speed, find the minimum velocity the roadrunner must have to reach the cliff before the coyote. (proper sig fig in answer)arrow_forwardPROBLEM 4 What is the resultant of the force system acting on the connection shown? 25 F₁ = 80 lbs IK 65° F2 = 60 lbsarrow_forwardThree point-like charges in the attached image are placed at the corners of an equilateral triangle as shown in the figure. Each side of the triangle has a length of 38.0 cm, and the point (C) is located half way between q1 and q3 along the side. Find the magnitude of the electric field at point (C). Let q1 = −2.80 µC, q2 = −3.40 µC, and q3 = −4.50 µC. Thank you.arrow_forward
- STRUCTURES I Homework #1: Force Systems Name: TA: PROBLEM 1 Determine the horizontal and vertical components of the force in the cable shown. PROBLEM 2 The horizontal component of force F is 30 lb. What is the magnitude of force F? 6 10 4 4 F = 600lbs F = ?arrow_forwardThe determined Wile E. Coyote is out once more to try to capture the elusive Road Runner of Loony Tunes fame. The coyote is strapped to a rocket, which provide a constant horizontal acceleration of 15.0 m/s2. The coyote starts off at rest 79.2 m from the edge of a cliff at the instant the roadrunner zips by in the direction of the cliff. If the roadrunner moves with constant speed, find the minimum velocity the roadrunner must have to reach the cliff before the coyote. (proper sig fig)arrow_forwardHello, I need some help with calculations for a lab, it is Kinematics: Finding Acceleration Due to Gravity. Equations: s=s0+v0t+1/2at2 and a=gsinθ. The hypotenuse,r, is 100cm (given) and a height, y, is 3.5 cm (given). How do I find the Angle θ1? And, for distance traveled, s, would all be 100cm? For my first observations I recorded four trials in seconds: 1 - 2.13s, 2 - 2.60s, 3 - 2.08s, & 4 - 1.95s. This would all go in the coloumn for time right? How do I solve for the experimental approximation of the acceleration? Help with trial 1 would be great so I can use that as a model for the other trials. Thanks!arrow_forward
College PhysicsPhysicsISBN:9781938168000Author:Paul Peter Urone, Roger HinrichsPublisher:OpenStax College
Physics for Scientists and Engineers, Technology ...PhysicsISBN:9781305116399Author:Raymond A. Serway, John W. JewettPublisher:Cengage Learning
Physics for Scientists and Engineers: Foundations...PhysicsISBN:9781133939146Author:Katz, Debora M.Publisher:Cengage Learning
College PhysicsPhysicsISBN:9781305952300Author:Raymond A. Serway, Chris VuillePublisher:Cengage Learning
College PhysicsPhysicsISBN:9781285737027Author:Raymond A. Serway, Chris VuillePublisher:Cengage Learning