Answer:
a) The UV-B has frequencies between and
b) The radiation with a frequency of belong to the UV-A category.
Explanation:
(a) Find the range of frequencies for UV-B radiation.
Ultraviolet light belongs to the electromagnetic spectrum, which distributes radiation along it in order of different frequencies or wavelengths.
Higher frequencies:
Lower frequencies:
That radiation is formed by electromagnetic waves, which are transverse waves formed by an electric field and a magnetic field perpendicular to it. Any of those radiations will have a speed of in vacuum.
The velocity of a wave can be determined by means of the following equation:
(1)
Where c is the speed of light, is the frequency and is the wavelength.
Then, from equation 1 the frequency can be isolated.
(2)
Before using equation 2 to determine the range of UV-B it is necessary to express in units of meters in order to match with the units from c.
⇒
⇒
Hence, the UV-B has frequencies between and
(b) In which of these three categories does radiation with a frequency of belong.
The same approach followed in part A will be used to answer part B.
Case for UV-A:
⇒
Hence, the UV-A has frequencies between and .
Therefore, the radiation with a frequency of belongs to UV-A category.
Answer:
The expression would be ω =
Explanation:
Given that ω is the angular velocity
g is the acceleration due to gravity
L is the length
θ is the angle of downward tilt
For an object we compare the horizontal and vertical component of the forces acting on the body;
For vertical component
T sinθ = mg............1
For the horizontal component
T cos θ = .............2
R is our radius and is = L cos θ
v = ωR
substituting into equation 2 we have
T cos θ = m(ωR /R
T cos θ=m(ωR ..................3
Now comparing the vertical and the horizontal component we have;
equation 1 divided by equation 3 we have
T sin θ /T cos θ = mg / m(ωR
Tan θ = g / (ωR............4
Making ω the subject formula we have;
(ω = g/ R Tan θ
But R = L cos θ and Tan θ = sin θ/ cosθ
putting into equation 4 we have;
(ω = g /[( L cos θ) x( sin θ/ cosθ)]
(ω = g/ L sinθ
ω =
Therefor the expression for the angular velocity ω in terms of g, L and angle θ would be ω =
Answer:
0.157 V
Explanation:
Parameters given:
Number of turns, N = 1207
Diameter of coil = 20 cm = 0.2 m
Radius of coil, r = 0.2/2 = 0.1 m
Magnetic field strength, B =
Time interval, t = 10 ms =
The average EMF induced in a coil due to a magnetic field is given as:
EMF =
where A = Area of coil
A = π
Therefore, EMF will be:
(a) What is the greatest wavelength of light that can be absorbed by the material?
(b) In what region of the electromagnetic spectrum is this wavelength located?
Answer:
a)
b) infrared region
Explanation:
Photon energy is the "energy carried by a single photon. This amount of energy is directly proportional to the photon's electromagnetic frequency and is inversely proportional to the wavelength. If we have higher the photon's frequency then we have higher its energy. Equivalently, with longer the photon's wavelength, we have lower energy".
Part a
Is provide that the smallest amount of energy that is needed to dissociate a molecule of a material on this case 0.42eV. We know that the energy of the photon is equal to:
Where h is the Planck's Constant. By the other hand the know that and if we solve for f we have:
If we replace the last equation into the E formula we got:
And if we solve for we got:
Using the value of the constant we have this:
Part b
If we see the figure attached, with the red arrow, the value for the wavelenght obtained from part a) is on the infrared region, since is in the order of
A scientist wants to use a model to study the solar model because its extremely large size makes it difficult to see all of its parts at the same time. Hence, option C is correct.
The Sun and all the smaller movable objects that orbit it make up the Solar System. The eight main planets are the largest objects in the Solar System, excluding the Sun. Mercury, Venus, Earth, and Mars are the four relatively tiny, rocky planets closest to the Sun.
The asteroid belt, which is home to millions of stony objects, lies beyond Mars. These are remains from the planets' creation 4.5 billion years ago.
Jupiter, Saturn, Uranus, and Neptune are the four gas giants that can be found on the opposite side of the asteroid belt. Despite being much larger than Earth, these planets are rather light. Their main components are hydrogen and helium.
To get more information about Solar systems:
#SPJ5
Answer:
63.57 kg
Explanation:
weight = 140 lbs
Let the mass is m.
1 lbs = 4.45 N
The weight of an object is defined as the force with which our earth attracts the body towards its centre.
Weight is the product of mass of the body and the acceleration due to gravity of that planet.
W = m x g
On earth surface g = 9.8 m/s^2
Now convert lbs in newton
So, 140 lbs = 140 x 4.45 = 623 N
So, m x 9.8 = 623
m = 63.57 kg
Thus, the mass is 63.57 kg.
The beat frequency heard when the two strings are played together is 2.95 Hz.
Given data:
The tuning frequency of the violin is, f = 294 Hz.
Decrement in the tension is, 2 %.
Since, tension is reduced at the rate of 2%. Then the new magnitude of tension on the string is,
T = (100 - 2 )/100
T = 0.98
Then the expression for the beat frequency heard when the two strings are played together is given as,
Solving as,
Thus, we can conclude that the beat frequency heard when the two strings are played together is 2.95 Hz.
Learn more about the beat frequency here:
Answer:
Beat frequency together = 2.95 Hz (Approx)
Explanation:
Given:
Frequency (F) = 294 H
Decrease in tension = 2%
Find:
Beat frequency together
Computation:
Tension = (100 - 2) / 100
Tension (T) = 0.98
Beat frequency together = Frequency (F) - (√T × F)
Beat frequency together = 294 - (√0.98 × 294)
Beat frequency together = 2.95 Hz (Approx)