Answer:
Time taken by the coin to reach the ground is 1.69 s
Given:
Initial speed, v = 11.8 m/s
Height of the building, h = 34.0 m
Solution:
Now, from the third eqn of motion:
Now, time taken by the coin to reach the ground is given by eqn (1):
v' = v + gt
Explanation:
The classic model of a black body made predictions of the emission at small wavelengths in open contradiction with what was observed experimentally, this led Planck to develop a heuristic model. This assumption allowed Planck to develop a formula for the entire spectrum of radiation emitted by a black body, which matched the data.
The distance the putty-block system compress the spring is 0.15 meter.
Given the following data:
To determine how far (distance) the putty-block system compress the spring:
First of all, we would solver for the initialmomentum of the putty.
Next, we would apply the law of conservation of momentum to find the final velocity of the putty-block system:
Velocity, V = 0.94 m/s
To find the compression distance, we would apply the law of conservation of energy:
x = 0.15 meter
Read more: brainly.com/question/14621920
Answer:
Explanation:
Force constant of spring K = 21 N /m
we shall find the common velocity of putty-block system from law of conservation of momentum .
Initial momentum of putty
= 5.3 x 10⁻² x 8.97
= 47.54 x 10⁻² kg m/s
If common velocity after collision be V
47.54 x 10⁻² = ( 5.3x 10⁻² + .454) x V
V = .937 m/s
If x be compression on hitting the putty
1/2 k x² = 1/2 m V²
21 x² = ( 5.3x 10⁻² + .454) x .937²
x² = .0212
x = .1456 m
14.56 cm
B. 7.9J
C. 15J
D. 20J
Answer:
D. 20J
Explanation:
Answer:
Explanation:
yes
Depending on its size, composition, and the eccentricity of its orbit, that scanty description could apply to a planet, an asteroid, a comet, a meteoroid, or another star.
Calculate BE/A, the binding energy per nucleon, for 2H in megaelecton volts per nucleon
Answer:
0.88 MeV/nucleon
Explanation:
The binding energy (B) per nucleon of deuterium can be calculated using the following equation:
Where:
Z: is the number of protons = 1
N: is the number of neutrons = 1
: is the proton's mass = 1.00730 u
: is the neutron's mass = 1.00869 u
M: is the nucleu's mass = 2.01410
A = Z + N = 1 + 1 = 2
Now, the binding energy per nucleon for ²H is:
Therefore, the binding energy per nucleon for ²H is 0.88 MeV/nucleon.
I hope it helps you!
The binding energy per nucleon for 2H (deuterium) is 1.1125 MeV per nucleon.
The binding energy per nucleon, or BE/A, can be calculated by dividing the total binding energy of the nucleus by the number of nucleons. To calculate the BE/A for 2H (deuterium), we need to know the total binding energy and the number of nucleons in deuterium. The total binding energy of deuterium is approximately 2.225 MeV (megaelectron volts) and the number of nucleons is 2. Therefore, the BE/A for 2H is 2.225 MeV / 2 = 1.1125 MeV per nucleon.
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b. both the magnitude and the direction of the centripetal acceleration depend on the location of the point on the spoke.
c. The magnitude of the centripetal acceleration is smaller for points on the spoke closer to the hub than for points closer to the rim but the direction of the acceleration is the same at all points on this spoke.
d. The magnitude and direction of the centripetal acceleration is the same at all points on this spoke.
Answer:
Option (a).
Explanation:
Let the angular velocity is w.
The centripetal acceleration is given by
where, r is the distance between the axle and the spoke.
So, more is the distance more is the centripetal acceleration.
(a) For the points on the spoke closer to the hub than for points closer to the rim is larger distance, so the centripetal force is more.
The statement is true.
(b) The direction of centripetal acceleration is always towards the center, so the statement is false.
(c) It is false.
(d) It is false.
Option (a) is correct.