The movement of a positively charged particle from point A to point B. the motion-induced electrostatic work done on the positively charged particle.
Whether positively or negatively charged, an object that is neutral will interact with it in a pleasing way. Both positively charged and neutral items attract one another, as do negatively charged and neutral objects. These electrons gather on the further surface of sphere B, depleting the electron supply in sphere A. Therefore, sphere A (which is closer to the rod) obtains a positive charge and sphere B acquires a negative charge when the two spheres separate in the presence of the rod. The change in the particle's electrostatic potential energy in the external field equals the work done by the external force. When a charge is pushed from point A to point B, its potential energy changes, representing the labor of an outside force.
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Answer:
The position of the arrows will not be on the target i.e. outside the bull's eye, neither will they be close to one another (widely scattered).
Explanation:
Accuracy refers to the closeness of a measurement to an actual or accepted value while precision refers to the closeness of measurements to one another.
Using archery as an illustration of precision and accuracy, measurements (arrows) that are neither accurate not precise are those arrows that will be far away or outside the bull's eye region (target) of the board and also far apart from one another.
In a nutshell, the arrows will be distant from the bull's eye or target (not accurate) and also distant from one another (not precise).
The distance between the adjacent bright fringes is : 1.7 * 10⁻³ M
Given data :
separation between slits ( d ) = 1.5 x 10⁻³ m
wavelength of light ( λ ) = 514 * 10⁻⁹ m
Distance from narrow slit ( D ) = 5.0 m
we apply the formula below
w = D * λ / d ---- ( 1 )
where : w = distance between adjacent bright fringes
Back to equation ( 1 )
w = ( 5 * 514 * 10⁻⁹ ) / 1.5 x 10⁻³
= 1.7 * 10⁻³ M
Hence we can conclude that The distance between the adjacent bright fringes is : 1.7 * 10⁻³ M
Learn more about bright fringes calculations : brainly.com/question/4449144
Answer:
m
Explanation:
d = separation between the two narrow slits = 1.5 mm = 1.5 x 10⁻³ m
λ = wavelength of the light = 514 nm = 514 x 10⁻⁹ m
D = Distance of the screen from the narrow slits = 5.0 m
w = Distance between the adjacent bright fringes on the screen
Distance between the adjacent bright fringes on the screen is given as
m
a. The total amount of energy transfer by work (kJ)
b. The total amount of energy transfer by heat (kJ)
Answer:
Part a: The total amount of energy transfer by the work done is 54.81 kJ.
Part b: The total amount of energy transfer by the heat is 54.81 kJ
Explanation:
Mass of Carbon Dioxide is given as m1=3 kg
Pressure is given as P1=3 bar =300 kPA
Volume is given as V1=0.5 m^3
Pressure in tank 2 is given as P2=2 bar=200 kPa
T=290 K
Now the Molecular weight of is given as
M=44 kg/kmol
the gas constant is given as
Volume of the tank is given as
Final mass is given as
Mass of the CO2 moved to the cylinder
The initial mass in the cylinder is given as
The mass after the process is
Now the volume 2 of the cylinder is given as
Part a:
So the Work done is given as
The total amount of energy transfer by the work done is 54.81 kJ.
Part b:
The total energy transfer by heat is given as
As the temperature is constant thus change in internal energy is 0.
The total amount of energy transfer by the heat is 54.81 kJ
Answer:
61.3 cm
Explanation:
Radial acceleration of the object in circular motion is given by formula
Given:
Plugging in the values in the formula
so length of his arm is 61.3 cm
Answer:u=42.29 m/s
Explanation:
Given
Horizontal distance=167 m
launch angle
Let u be the initial speed of ball
Range
Answer:
22.1 m
Explanation:
= initial speed of ball = 14.3 m/s
= Angle of launch = 27°
Consider the motion of the ball along the vertical direction.
= initial speed of ball =
= acceleration due to gravity = - 9.8 ms⁻²
= time of travel
= vertical displacement = - 3.50 m
Using the kinematics equation that suits the above list of data, we have
Consider the motion of the ball along the horizontal direction.
= initial speed of ball =
= Horizontal distance traveled
= time taken = 1.74 s
Since there is no acceleration along the horizontal direction, we have