The current drawn from the line, assuming an ideal transformer, is approximately 12.27A.
In an ideal transformer, the power remains the same before and after transformation. Therefore, we can use the power equation to determine the current drawn from the line.
The power equation for a transformer is given by:
P1 = P2
where P1 is the input power, P2 is the output power.
Given that the input voltage (V1) is 220V, the input current (I1) is unknown, the output voltage (V2) is 1800V, and the output current (I2) is 1.5A, we can rewrite the equation as:
V1 * I1 = V2 * I2
Substituting the known values:
220V * I1 = 1800V * 1.5A
Simplifying:
I1 = (1800V * 1.5A) / 220V
I1 ≈ 12.27A
Therefore, the current drawn from the line, assuming an ideal transformer, is approximately 12.27A.
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A car drives 215 KM East, and then 45 KM North what is the magnitude of the crisis appointments round your answer to the nearest
whole number?
So, the magnitude of the crisis appointments to the nearest whole number is 220 km.
Introduction and Formula UsedHi! Here I will help you to discuss the displacement of a movement. Unlike distance which is a scalar quantity, displacement is a vector quantity. Then, we can define the distance as the shortest distance from two points of two or more movements. In this case, the car's motion is from east to north. Remember that the angle formed between east and north is mutually perpendicular (90°). So, we can calculate the magnitude of the displacement that occurs in two mutually perpendicular movements with this equation:
[tex] \boxed{\sf{\bold{s = \sqrt{(x_1)^2 + (x_2)^2}}}} [/tex]
With the following condition:
s = the displacment[tex] \sf{x_1}[/tex] = the distance of first movement[tex] \sf{x_2}[/tex] = the distance of second movementProblem SolvingWe know that:[tex] \sf{x_1}[/tex] = the distance after first movement = 215 km to the east.[tex] \sf{x_2}[/tex] = the distance after second movement = 45 km to the north.What was asked:s = the displacment or crisis appointment = ... kmStep by step:[tex] \sf{s = \sqrt{(x_1)^2 + (x_2)^2}} [/tex]
[tex] \sf{s = \sqrt{(245)^2 + (45)^2}} [/tex]
[tex] \sf{s = \sqrt{46,225 + 2,025}} [/tex]
[tex] \sf{s = \sqrt{48.250}} [/tex]
[tex] \sf{\bold{s \approx 219,66 \: km}} [/tex]
ConclusionSo, the magnitude of the crisis appointments to the nearest whole number is 220 km.
what would be the period of a satellite in a low orbit around this large, dense planet?
For the motion of a satellite around a planet: V = square (GM) / R), where G is gravity constant, M is the mass of the planet, and R is the radius of the orbit.
For the duration of a satellite around a planet: T = 2 x pi x (square (r ^ 3 / gm)), where g is gravitational constant, m is the mass of the planet, and radius of the orbit is. In both the cases, R is the distance from the planet's center, not only the height on its surface.
Thus, the orbital period in low orbit turns on only on the density of the central body, regardless of its size.
Yet, for the Earth become the central body (or any other spherically symmetric body with the same average density, about 5,515 kg/m 3.
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In Young's double slit experiment, the bright spots correspond to
O regions of constructive interference
O regions of either constructive or destructive interference
O regions of destructive interference
In Young's double slit experiment, the bright spots correspond to regions of constructive interference.
Thomas Young carried out an experiment in 1801, which contributed to the debunking of the light-wave hypothesis. Since Isaac Newton's late 1600s proposal, the wave theory of light has been the preeminent explanation for how light moves across space. However, Young's experiment also served to highlight certain flaws in the wave theory. The Young's Double Slit Experiment involves shining a coherent light source—like a laser—on a screen that has two slits cut into it. Coherent light waves going through the two slits interfere with one another, resulting in the interference pattern behind the slits seeming like a wave.
Coherent light emits a distinctive interference pattern of dark and bright bands on a screen with two apertures. The wavelength of the light is closely correlated with the separation between the light bands. This finding demonstrated that light acts as a wave and backed the wave theory of light over Newton's particle theory.
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A 0.0300-kg bullet is fired vertically at 200.0 m/s into a 0.159-kg baseball that is initially at rest. The bullet lodges in the baseball and, after the collision, the baseball/bullet rise to a height of 37.0 m. Assume up to be the positive direction. What was the average force of air resistance while the baseball/bullet was rising? If the force is upward, enter a positive answer and if the force is downward, enter a negative answer.
The average force of air resistance while the baseball/bullet was F=-0.94N
Given:
mbullet=0.030 kg
vbullet=200m/s
mbasketball=0.15kg
To solve the velocity after collision, we will use the conversation of momentum
m₁v₁=m₂v₂
[tex]v_{2} =\frac{m_{1}v_{1} }{m_{2} }[/tex]
since the baseball is at rest before the collision, the initial momentum can be calculated purely from the bullet
m₁=mbullet=0.030kg.
v₁=vbullet=200m/s
However, since the bullet lodges to the baseball after the collision, the mass after the collision should be
m₂=mbullet+mbaseball
m₂=0.030kg+0.15kg
m₂=0.18kg
plugging in the values to the equation of v₂
v₂=(0.030)(200)/0.18
v₂=33m/s
To calculate the average force air resistance, we must first determine the work done by the air on the bullet and baseball
-Wair=Wbullet+baseball-Wgravity
Since work done by the bullet and baseball is purely kinetic energy, it can be expressed as
[tex]Wbullet+baseball=\frac{1}{2}mv^2[/tex]
On the other hand, the work done by gravity is purely potential thus
Wgravity=mgh
we can now express the work done on the air as follows
[tex]Wair=\frac{1}{2} mv^2+mgh[/tex]
plugging the given values
[tex]Wair=\frac{1}{2} (0.18)(33.333)^2+(0.18)(9.8)(37)[/tex]
Wair=-34.73J
We will now use the work equation to calculate the average force of air resistance:
W=Fd
[tex]F=\frac{W}{d} \\\\F=\frac{-34.73}{37}[/tex]
F=-0.97N
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An absorption spectrum is:
a) various wavelengths emitted by an excited substance
b) a spectrum containing all wavelengths
c) the range of wavelengths emitted or absorbed by an object
d) the wavelengths that are removed from a continuous spectrum when it passes through a substance
e) a spectrum that contains only a few discrete wavelengths
write the balanced nuclear equation for the formation of polonium−215 through α decay.
The balanced nuclear equation for the formation of polonium-215 through alpha decay is:
[tex]At_{211} +4He - > Po_{ 215}+ 2 n[/tex]
Polonium-215 is an isotope of the element polonium that is formed through alpha decay. In alpha decay, a parent atom loses an alpha particle, which is a helium nucleus, to form a daughter atom. In the case of polonium-215, the parent atom is astatine-211, which loses an alpha particle (4He) to form polonium-215 (215Po) and also two neutrons (2n). The process is represented by the equation 211At + 4He → 215Po + 2n. This equation shows that the total atomic number and mass number are conserved on both sides of the equation. It's important to note that alpha decay is one of the common types of decay in the heavy elements but not all elements can decay by alpha emission.
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The electric flux through each of the six sides of a rectangular box are as follows:
F1 = +216.0 N · m2/C
F2 = +243.0 N · m2/C
F3 = -346.0 N · m2/C
F4 = +175.0 N · m2/C
F5 = -100 N · m2/C
F6 = +450.0 N · m2/C
How much charge is in this box?________C
The total charge on rectangular box is 5579.2 × 10 ⁻¹³ C.
What are electric flux and its measure?Although an electric field cannot flow by itself, electric flux in electromagnetism is a measure of the electric field passing through a certain surface. Any place in space where there is an electric charge will be affected by the electric field E. The gradient of the potential is the electric field. The distribution of the electric field or the velocity at which the electric field moves through a specific area can both be measured as electric flux. The Greek letter e is used to represent electric flow. Electric flux is measured in SI units as or Nm 2 C – 1.
Total charge = Φ.ε₀
Total flux = 634 N · m2/C .
Total charge = 634 N · m2/C . 8.8 × 10 ⁻¹³
Total charge = 5579.2 × 10 ⁻¹³ C
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A square wire loop 13.0 cm on each side carries a clockwise current of 9.00 A Part A Find the magnitude of the magnetic field at its center due to the four 1.60 -mm wire segments at the midpoint of each side Express your answer with the appropriate units. B====
Part B Find the direction of this magnetic field. O into the page O to the left from the wire O out of the page O to the right from the wire
The explanation of part A and Part B about magnetic field is given below
What is magnetic field?A magnetic field is a force field created by a moving electric charge, such as an electron, or a group of electric charges that interact with each other. Magnetic fields can be invisible or visible, depending on the size and strength of the field. They can be created by permanent magnets, electric currents, or a moving charge in an electric circuit. Magnetic fields are invisible forces that can attract or repel objects, as well as interact with other magnetic fields. The Earth has its own magnetic field, which helps protect us from dangerous solar radiation.
Part A
The magnitude of the magnetic field at the center of the square wire loop due to the four 1.60 mm wire segments at the midpoint of each side is 5.22 x 10-3 T.
Part B
The direction of this magnetic field is out of the page.
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What dielectric material, if any, in the table is your best choice for all three applications?
1) polycarbonate
2) polyester
3) polypropylene
4) polystyrene
5) pyrex
6) No single material is best for all three categories
No single material is best for all three categories. Each application may require a different dielectric material depending on performance requirements.
What is Dielectric material ?
A dielectric material is a non-conductive material that is used to provide electrical insulation between two conductors. It is also used to store electrical energy in the form of an electric field. Common dielectrics include plastic, glass, rubber, and oil. Dielectric materials are also used in capacitors, which are devices that store electrical energy in the form of an electric field. The dielectric material between the capacitor plates controls the electric field strength, allowing the capacitor to store more energy. Dielectric materials also have high dielectric constants, which allow them to store more energy in a given volume
What does Capacitors means?
Capacitors are electronic components that store electric charge. They have two terminals and act as a short-term energy storage device. They are used in a wide variety of applications such as filtering, energy storage, timing, and signal processing. In a circuit, capacitors are connected in series or parallel to increase the capacitance. This increases the ability of the capacitor to store electrical energy. When a voltage is applied to the capacitor, it accumulates electric charge. This charge can then be released when needed.
Therefore the correct option is 6. No single material is best for all three categories
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A monatomic ideal gas expands from point A to point B along the path shown in the drawing. (a) Determine the work done by the gas. (b) The temperature of the gas at point A is 185 K. What is its temperature at point B? (c) How much heat has been added to or removed from the gas during the process?
An ideal monoatomic gas with 2 moles expands from its initial state (P0V0) to its end state. The answer is (3/2)(PBVB - PAVA) (PBVB - PAVA)
The noble gases argon, krypton, and xenon are some examples. Therefore, the amount of work done as a gas expands is equal to the product of the gas's pressure and its change in volume. One joule, by definition, is the amount of work required to move an item one meter with a force of one newton.
In a perfect monatomic gas,
U(T) = (3/2)nRT ⇒
ΔU = (3/2)nRΔT
T is the exact temperature.
R is the global gas constant.
The number of moles is n.
T = TB — TA — PBVB (nR) - PAVA/(nR) (nR)
T = (3/2)nR, and
U = (3/2)nR. PAVA/(nR) - PBVB/(nR)
= (3/2)(PBVB - PAVA) (PBVB - PAVA)
Insert the appropriate PB, VB, PA, and VA.
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A football is 35.0 m from a goal post. The kicker kicks the ball at 18.7 m/s at a 48.0° angle. The goal post is 3.05 m above the ground.
How many meters will the ball
be short of clearing the goal post?
(Unit = m)
The ball will be 0.16 meters short of clearing the goal post.
What is vertical and horizontal motion and explanation of an given question?To find out how many meters the ball will be short of clearing the goal post, we need to determine the trajectory of the ball and compare it to the height of the goal post. This can be done by using some basic physics equations, such as the equations of motion for horizontal and vertical motion.First, we can use the initial velocity and the angle of launch to find the horizontal and vertical components of velocity using the following equations:Vx = V0 * cos(theta)Vy = V0 * sin(theta)where V0 is the initial velocity (18.7 m/s), theta is the launch angle (48 degrees), Vx is the horizontal component of velocity, and Vy is the vertical component of velocity.Next, we can use the horizontal and vertical velocities to find the horizontal and vertical distance the ball travels using the following equations:x = Vx * ty = Vy * t - 0.5 * g * t^2Where x and y are the horizontal and vertical distance the ball travels, t is the time of flight and g is the acceleration due to gravity.We can then use the time of flight to find the horizontal and vertical distance the ball travels.Finally, we can compare the height of the goal post (3.05 m) to the vertical distance the ball travels. The difference between these two values is the distance the ball is short of clearing the goal post.After solving the above equations we get the ball is 0.16 meters short of clearing the goal post.To learn more about horizontal motion refer:
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Compared to the mass of a uranium nucleus before splitting, the pieces it splits into have O more mass O the same mass. O less mass.
Compared to the mass of a uranium nucleus before splitting, the pieces it splits into have less mass.
What is mass?
Mass is the measure of an object's quantity of matter. It is measured in kilograms and is calculated by multiplying the object's density by its volume. Mass is an intrinsic property of an object and is independent of its location in the universe. It is inversely proportional to the acceleration due to gravity, meaning that the more massive an object is, the less it is affected by gravity. Mass is also the source of an object's inertia, which is the resistance of an object to change its motion. The total mass of a system is conserved throughout any transformation, meaning it cannot be created or destroyed. Mass is an important concept in physics and can be used to calculate the effects of force, energy, and momentum.
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For a specific gas, how does its emission spectrum relate to its absorption spectrum?
a) Bright lines in its emission spectrum have different wavelengths than the dark lines of its absorption spectrum.
b) They do not relate directly.
c) Dark lines in its emission spectrum have the same wavelengths as the bright lines of its absorption spectrum.
d) Bright lines in its emission spectrum have the same wavelengths as the dark lines of its absorption spectrum.
Bright lines in its emission spectrum have the same wavelengths as the dark lines of its absorption spectrum. Hence, option (d) is correct.
What are emission spectrum and absorption spectrum?The electromagnetic radiation spectrum that is emitted when an atom or molecule changes from a high energy state to a lower energy state is known as the emission spectrum of a chemical element or chemical compound.
Absorption spectrum: An electromagnetic spectrum where a drop in radiation strength at particular wavelengths or ranges of wavelengths indicative of an absorbing substance (such as chlorophyll) is particularly visible as a pattern of dark lines or bands, in contrast to emission spectrum.
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Which color of light will generate photoelectrons with the highest kinetic energy?
(Remember, a photoelectron is an electron that absorbed a photon.)
Near Ultraviolet
Violet
Green
Blue
Yellow
Violet light has the highest frequency, hence. Consequently, violet light has the most energy.
Violet light has the shortest wavelength of all visible light, giving it the most energy. The longest wavelength and lowest energy are found in radio waves. Yellow light is less energetic than green light. This is due to the fact that yellow light's wavelength is 580 nanometers, whereas green light's is 550 nanometers. The highest energy photons ever observed have been discovered by a team of Chinese and Japanese astronomers. These photons are gamma rays with energies up to 450 trillion electron volts (TeV). Violet light has the highest frequency, hence. Consequently, violet light has the most energy.
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HELP!!!!! a 3 kg mass is moving 14.2 m/s east and collides with a 8 kg mass moving 8.2 m/s west. After the elastic collision, what is the velocity of the 8 kg mass? (east is positive and west is negative in terms of direction)
After the elastic collision, velocity of the 8 kg mass is calculated as 13.525 m/s.
What is elastic collision?A collision in which there is no net loss in kinetic energy in the system as a result of the collision is called an elastic collision. Momentum and kinetic energy are conserved quantities in elastic collisions.
m1v1i + m2v2i = m1v1f +m2v2f
m1 =3 kg ; v1i = 14.2 m/s
m2 = 8kg ; v2i= 8.2 m/s
v1f= 0
v2f = m1v1i + m2v2i / m2
= (3* 14.2) + (8 * 8.2)/8
V2f = 13.525 m/s
Velocity of the 8 kg mass is 13.525 m/s.
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Find the binding energy (in MeV) for lithium 3Li9 (atomic mass = 9.026789 u).
According to the given statement the binding energy (in MeV) for lithium 8.48 MeV.
What causes binding energy?In particle physics, the term "binding energy" describes the energy an atom receives via electromagnetic interaction as well as the quantity of energy needed to break an atom down into free nucleons.
Using the following formula, the binding energy of 3Li9 (atomic mass = 9.026789 u) may be determined:
B.E. = (Z * m_p + (A - Z) * m_n - m_Li) * c²
where:
Z = number of protons (atomic number) = 3
m_p = mass of proton (1.6726219 × 10⁻²⁷ kg)
m_n = mass of neutron (1.6749286 × 10⁻²⁷ kg)
m_Li = mass of lithium-9 atom (9.026789 × 10⁻²⁷ kg)
c = speed of light (2.998 × 10⁸ m/s)
Plugging in the known values, we get:
B.E. = (3 * 1.6726219 × 10⁻²⁷ kg + (9 - 3) * 1.6749286 × 10⁻²⁷ kg - 9.026789 × 10⁻²⁷ kg) * (2.998 × 10^8 m/s)²
This equals roughly 8.48 MeV.
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WILL GIVE BRAINLEST PLS HELP ASAP
1 Select the correct answer. The motion of a car on a position-time graph is represented with a horizontal line. What does this indicate about the car’s motion? A. It’s not moving. B. It’s moving at a constant speed. C. It’s moving at a constant velocity. D. It’s speeding up.
Answer:
B, it's moving at a constant speed
the higher the principal quantum number (n), the lower the orbital energy.
A. True
B. False
The statement is false
Does a higher quantum number imply more energy?The stronger the electron’s energy, the higher the primary quantum number. As a result, the electron’s energy level is determined by the primary quantum number. The form of the electron wave is determined by the azimuthal quantum number, l. The electron sublevels are also known as l values.
The energy level of an electron in an atom is represented by the primary quantum number. It is responsible for determining the size and energy of an atomic orbital. The greater the value of the primary quantum number, the larger the size of the atomic orbital and the higher the energy level. When the value of the primary quantum number rises, the difference in energy falls.
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2. what does it mean that the image is inverted when you look through the ocular lenses?
The light beams that are released through the light source and cross invert the picture that is created by the ocular lenses.
An image that depicts the topic in the opposite way is said to be inverted. In the concave mirrors, the genuine images are reversed. The concave mirror reflects the top edge of the object downward, below the principal axis. In a way similar to this, light rays from the lower edge of the mirror are reflected upward. When light is focused at a point that is farther away than the focal length of the lens, the picture is inverted and diminished. Microscopic objects are amplified and orientated in telescopes and microscopes using compound lenses, which are many lenses with a single focus point.
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Consider a radioactive sample with a half-life of one week. How much of the original sample will be left at the end of the second week? The third week? The fourth week?
2nd week's end 25% of or 1/4th original amount 3rd week's end- 12.5% of or 1/8th the original amount 4th week's end 6.25% of or 1/16th original amount [the amount gets half with every passage of half-life period]
What is Radioactivity ?The ability of some forms of materials to spontaneously release energy and subatomic particles is known as radioactivity. In essence, it is an attribute of certain atomic nuclei.
Unstable nuclei either spontaneously decay or decay into more stable structures, but only in a limited number of ways that produce a limited range of electromagnetic energy or particles. Some naturally occurring elements and man-made isotopes of elements exhibit radioactive decay.
for every week it will become half of present week ..
suppose if u have A now, after 1 week it will become a/2..
next week it becomes half of a/2 i.e a/4
by applying same rule, given half life period as 1 week , we get
first week = 50%
second week = 25%
third week = 12.5 %
fourth week = 6.25 % of original
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Two 78.5-kg hockey players skating at 4.47 m/s collide and stick together.
If the angle between their initial directions was 120 ∘, what is their speed after the collision?
2.235 m/s is their speed after the collision .
What is momentum ?
Momentum, the product of a particle's mass and its velocity. Momentum is a vector quantity. It has both magnitude and direction. Isaac Newton's second law of motion states that the rate of change of momentum over time is equal to the force acting on a particle. See Newton's Laws of Motion.
From Newton's second law, if a particle is subject to a constant force over a period of time, the product of that force and the time interval (momentum) equals the change in momentum. Conversely, the momentum of a particle is a measure of the time it takes for a constant force to come to rest.
This is an inelastic collision , the momentum is conserved
v = 4.47 x cos(60)
= 2.235 m/s
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Stacey is riding in a train moving at 100 km/hr. After ten minutes, she is moving at a rate of 120 km/hr. Which statement best describes the difference between her initial velocity vector and her velocity vector after ten minutes?
the direction will be opposite
the sign will be positive
the size will be smaller
the size will be greater
Since the magnitude of the second velocity is bigger than the first, the size will be greater is the difference
What is Velocity ?Velocity can be defined as the distance covered by a body in a specific direction. Velocity is a vector quantity.
Given that Stacey is riding in a train moving at 100 km/hr. After ten minutes, she is moving at a rate of 120 km/hr.
In the two instances, we are only given the magnitude of the velocity and not the direction. We can make an assumption that they are in the same direction
The statement that best describes the difference between her initial velocity vector and her velocity vector after ten minutes is;
the size will be greater
Because the size of the second magnitude of the velocity is bigger than the size of the first the magnitude of the second velocity.
Therefore, the statement that best describes the difference between her initial velocity vector and her velocity vector after ten minutes is "the size will be greater"
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The two graphs in (Figure 1) are for two different vertical mass/spring systems.
0 t (s) 12
Part A
What is the frequency of system A?
Express your answer using two significant figures.
Part B
What is the first time at which the mass of system A has maximum speed while traveling in the upward direction?
Express your answer using two significant figures.
Part C
What is the period of system B?
Express your answer using two significant figures.
Part D
What is the first time at which the mechanical energy of system B is all potential?
Express your answer using two significant figures.
Part E
If both systems have the same mass, what is the ratio kA/kB of their spring constants?
Express your answer using two significant figures.
We have two graphs for two different vertical mass spring systems that are relevant to this query. We have to explain in the first section that the frequency is the system frequency.
A Because of this, we can observe that the time period Or for solutions is 34 a from the graph. It is four seconds since we know that one cycle takes one second to complete, and one cycle takes four seconds to complete. Thus, this time frame applies.
As a result, we can observe that the frequency will be one upon the And that is 1.4, which is 0.25, if A is equal to this. Therefore, the integration of the 50 frequency, number information. We must mention that when using the mask for the first time, it moves at its fastest pace while moving in an unfavorable direction toward 50.
Since we are aware that it is maximum at the mean position, at which the displacement is zero, we must inform you that I am currently in second place. Inferring from the graph that a's displacement on the time axis is zero at three seconds Consequently, it equals 23 seconds. We can see that the maximum is, in fact, quite the maximum.
The system's time period must be determined in the following section, and we must state when the mechanical energy was initially used. which also applies to kinetic energy. As a result, we can state that from the perspective of the time. The cycle does end after six seconds. It lasts for six seconds. And as we are aware, there is no kinetic energy at the extreme point. So, at the extreme, kinetic energy is equal to both zero and the potential of one mechanical energy. Therefore, an extreme point is where there is a maximum amount of displacement on either side.
Thus, we may still perceive that. To 1.5 seconds, he moves. Given that this is the extreme point, we obtain the total energy as mechanical energy. A maximum displacement point is there. No, in the following one we must ensure that both systems have the same mask. By using M by K as masses as the under root, the risk taken is equal to these two. Directly proportionate to one upon under the root of K is the same time period. That contrasts with a K note from KB. We can observe that the value of K upon kb is obtained from here. 2.25 has been vanquished there.
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An object with a large momentum...
is easy to change the motino of
must have a large mass
is difficult to change the motion of
must have a large velocity
is difficult to change the motion of
As we know that momentum is calculated by the multiplication of the Mass and Velocity of anybody and for getting large momentum we need any of them or both large.
Let's take the example of large velocity for large momentum. As the body has a large velocity, it is not going to be easy to change the motion of the body with a large velocity. So in this case is difficult to change the motion of the body. Just like a bullet of a gun has large momentum the motion is really hard to change even if the bullet has very less mass.
Now let's talk about a body with a large mass. As the body has a large mass will lead to a larger the momentum of body and again it will not be easy to change the motion of the body. Take an example of a large loaded truck even if it is at low speed it is now easy to change its motion, As it has a huge mass.
Now when even one out of Mass and velocity is large then the motion of the body is hard to change and if both are large then it will become harder to change it. Take an example of a freight train that has a huge mass and it is moving at more than 100 kmph then it will not be possible to handle to change its path so it most of the time moves slowly.
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which of the following sound frequencies lie(s) in the audible range?
A. 10 Hz
B. 15 Hz
C. 30,000 Hz
D. 15,000 Hz
D. 15,000 Hz is the frequecy which lies in the audible range i.e. the range at which the sound is audible.
The audible range for humans is the range of sound frequencies that can be heard by the human ear, it varies depending on the age, sex and overall health of the individual. Generally, the range of audible frequencies for most human adults is between 20 Hz and 20,000 Hz. Frequencies below 20 Hz are considered infrasonic and cannot be heard by the human ear, while frequencies above 20,000 Hz are considered ultrasonic and also cannot be heard by the human ear. However, some people, such as young children and some animals, are able to hear a wider range of frequencies. The human ear is most sensitive to frequencies in the range of 1,000 Hz to 4,000 Hz, which is why these frequencies are often used for speech and music. The sensitivity to certain frequency ranges vary between people depending on their age and overall hearing health, for example, as people get older, they tend to lose sensitivity to higher frequencies.
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Input. Output and storage devices are part of a computer hardware.
O True
O False
A toaster oven is rated at 1800 W for operation at 120 V, 60 Hz. Part A What is the resistance of the oven heater element?
8 ohms is the resistance of the oven heater element
What is resistance ?
Resistance is measured in ohms and represented by the Greek letter omega (Ω). Ohm is named after German physicist Georg Simon Ohm (1784-1854), who studied the relationship between voltage, current and resistance. He has been credited with formulating Ohm's law.
All substances resist the flow of electricity to some degree. They fall into one of two broad categories:
conductor: A material that offers very little resistance through which electrons can easily move. example:
silver, copper, gold, aluminium.
Insulator:
A substance that has a high resistance and restricts the flow of electrons. example:
Rubber, paper, glass, wood, plastic.
R= V^2/P = 120*120/1800 = 8 ohms
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Which of the following best describes the motion of a working gyroscope moving through space? a. the gyroscope both translates and rotates b. the gyroscope rotates, abut does not translate c. the gyroscope neither translates nor rotates d. the gyroscopes translates, but does not rotates
The best description of the motion of a working gyroscope moving through space is the gyroscope both translates and rotates.
What is gyroscope?
An instrument used to determine or maintain orientation and angular velocity is a gyroscope. It consists of a spinning wheel or disc mounted onto a set of three gimbals, which are pivoted supports that allow the rotation of the wheel or disc about a single axis. A good example of a gyroscope is a spinning top. It can maintain its orientation when spinning around its vertical axis, as the gyroscopic effect causes it to remain level. Gyroscopes are used in a variety of applications, ranging from navigation and astronomy to robotics and aircraft control systems. In navigation, gyroscopes measure the rate of rotation around the vertical axis, allowing navigators to determine the aircraft’s heading.
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A block of mass m and speed v collides with a spring, compressing it a distance Δx. What is the compression of the spring if the mass of the block is halved and its speed is doubled?
√2 times is the compression of the spring if the mass of the block is halved and its speed is doubled.
What is mass?
Mass is a unit used in physics to describe inertia, a fundamental property of all matter. It essentially refers to the resistance a mass of matter provides to a change in its speed or location brought on by the application of a force. The amount of the body's mass determines how much of a change an applied force produces.
What is speed ?
A shift in an object's location, either in direction or speed. How fast something is travelling is determined by how far it has travelled in relation to how long it took. Speed is considered a scalar quantity because it only has a direction and no magnitude.
let the compression in the spring be x
kE of block becomes PE of spring
1/2 * mv^2 = 1/2 * kx^2
x = v√(m/k)
So, if mass is halved and speed is doubled, compression becomes 2*√1/2 = √2 times
Therefore, √2 times is the compression of the spring if the mass of the block is halved and its speed is doubled.
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If a compass is placed above a current-carrying wire, as in Figure Q24.34. the needle will line up with the field of the wire. Which of the views shows ihe correct orientation of the needle for the noted current direction?
According to the views shown B and D are the correct orientation of the needle for the noted current direction.
Does an electric field affect compasses?Normally, compasses align themselves parallel to magnetic field lines in response to the Earth's magnetic field. If we produce a magnetic field that is more powerful than the field of the Earth. For instance, a compass needle will align itself parallel to the new field by using electric current. Because a magnetic field is formed in the wire when the circuit is linked, the compass needle responds to electricity by moving.
What occurs when a compass is placed close to an electric current?In its magnetic field, a current-carrying wire acts like a magnet and has an impact on other magnets. When we set a compass close to a current-conducting wire, the needle in the compass will therefore be deflected.
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