To solve this problem we will apply the concept related to the lens power with which farsightedness can be corrected. Mathematically this value is given by the relationship,
Here,
f =focal length
In turn, said expression can be exposed in terms of the distance of the object and the image as:
Here,
p = Object Distance ( By convention is 25cm)
q = Image distance
Replacing we have,
Therefore the power lens that is needed to correct for farsightedness is +2.67D
The total electric force exerted by point charges -3.5 μC and 3.5 μC on a point charge 4.0 μC is zero. This is because the forces due to each of these charges on the third charge are equal in magnitude but opposite in direction, hence they cancel each other completely.
The question asks for the magnitude and direction of the total electric force exerted by point charges -3.5 μC and 3.5 μC on a point charge 4.0 μC. This is related to Coulomb's Law, which describes the force between charged objects. Specifically, Coulomb's Law states that the force (F) between two point charges is directly proportional to the product of their charges (q1*q2) and inversely proportional to the square of the distance (r) between them. It also depends on the permittivity of free space (ε₀).
First, you would determine the force between each of the point charges and the third charge separately, and then superpose these forces to find the total force. The force in each case can be calculated using the equation F = k*|q1*q2|/r², where k is Coulomb's constant (8.99 * 10^9 N.m²/C²). You would need to make sure you take into account the signs of the charges when deciding the directions of the forces and when superposing the separate forces.
Assume upwards to be the positive direction. The 3.5 uC charge forces and -3.5 uC charge forces on the 4 uC charge would be opposite in direction (one downwards and one upwards) and identical in magnitude. Therefore, they will cancel each other out, and hence, the total electric force on the third charge (4 uC) will be zero.
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Answer:
The magnitude and direction of the magnetic field is 0.009014 T in the negative y direction.
Explanation:
Given that,
Speed
Acceleration
We need to calculate the magnetic field
Using formula of magnetic field
....(I)
Using newton's second law
....(II)
From equation (I) and (II)
Put the value into the formula
We need to calculate the direction of the field
Using the right hand rule, point the right hand fingers along the velocity which is in the positive z direction.
Now, if we curl the fingers along the direction of magnetic field that is in the negative y direction, then the thumb will point in the positive x direction.
Hence, The magnitude and direction of the magnetic field is 0.009014 T in the negative y direction.
Answer:
4833J
Explanation:
Length=0.777
mass=2.67
# rods= 5
ω=573 rpm--> rad/s
I=kgm^2
K=1/2(number of rods)(I)(ω)=J
I know it's very late, but hope this helps anyone else trying to find the answer.
Given the same initial linear speed, a solid ball, solid disk, and hoop will expend energy on both rotation and translation. The solid ball, having the lowest moment of inertia, uses the most energy for translation and, therefore, will travel the highest up an incline.
In the context of this problem related to physics, the deciding factor is the distribution of mass, which influences each object's moment of inertia. Objects set to roll tend to use energy in two ways: translation (moving along the incline) and rotation (spinning about their center). Moment of inertia essentially measures how much of the object's energy goes towards rotation.
For a solid ball, solid disk, and hoop with the same mass and radius, the hoop has the highest moment of inertia with all of its mass at the maximum distance from the center. Followed by the solid disk, with its mass spread evenly from the center to its edge. Lastly, the solid ball has the lowest moment of inertia as its mass is concentrated towards the center.
This means that, given the same initial linear speed, the hoop will expend most of its energy on rotation rather than moving up the incline (translation). The solid disk will have a more balanced distribution between translation and rotation, and finally, the solid ball will use the least amount of energy on rotation and the most on translation. As such, the solid ball will go the farthest up the incline.
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Answer:
The current density is
The drift velocity is
Explanation:
From the question we are told that
The nominal diameter of the wire is
The current carried by the wire is
The power rating of the lamp is
The density of electron is
The current density is mathematically represented as
Where A is the area which is mathematically evaluated as
Substituting values
So
The drift velocity is mathematically represented as
Where e is the charge on one electron which has a value
So
Answer:
12.15°
Explanation:
Using Snell's law as:
Where,
is the angle of incidence ( 14.0° )
is the angle of refraction ( ? )
is the refractive index of the refraction medium (n=1.46)
is the refractive index of the incidence medium (n=1.27)
Hence,
Angle of refraction = = 12.15°
Answer:
M
Explanation: