Category II electric meters are safe for working on low voltage circuits that have a current of less than or equal to 10A. The low voltage circuits with currents less than or equal to 10A are the types of circuits that Category II electric meters are safe for working on.
Category II electric meters are considered safe for low-voltage circuits with currents up to 10 amps. The 10-ampere maximum rating ensures that the electric meter's internal components are secure and the electric meter is not damaged by higher currents.
Since low-voltage circuits are commonly utilized for electronic devices, measuring and testing these circuits frequently need a category II electric meter.
Therefore, category II electric meters are safe for use in low-voltage circuits with currents of less than or equal to 10A.
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what outcomes are in the event e, that the number of batteries examined is an even number?
The set of outcomes that is included in the event E, that the number of batteries examined is an even number, are as follows: {0, 2, 4, 6, 8, 10}.An event refers to a subset of the entire sample space of a random experiment that constitutes the collection of all possible outcomes. In this case, n(E) = 6 and n(S) = 11. Therefore, P(E) = 6 / 11
The event E indicates that the number of batteries examined is an even number. Therefore, only even numbers that are less than or equal to ten and greater than or equal to zero are a part of the event E, which includes 0, 2, 4, 6, 8, and 10. The sample space of this random experiment is the set of all possible outcomes.
If we assume that a total of 10 batteries are tested, the sample space is {0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10}.
So, the event E is a proper subset of the sample space, and the probability of E can be computed as:
P(E) = n(E) / n(S)
where n(E) is the number of outcomes in E, and n(S) is the number of outcomes in the sample space.
In this case, n(E) = 6 and n(S) = 11.
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if red light of wavelength 700 nmnm in air enters glass with index of refraction 1.5, what is the wavelength λλlambda of the light in the glass?
The wavelength of red light in the glass would be 466.67 nm. The following is an explanation of how to get there:
We know that the wavelength of light changes as it moves from one medium to another. This change in the wavelength of light is described by the equation:
λ1/λ2 = n2/n1
where λ1 is the wavelength of light in the first medium, λ2 is the wavelength of light in the second medium, n1 is the refractive index of the first medium and n2 is the refractive index of the second medium.
In this case, the red light of wavelength 700 nm is moving from air (where its refractive index is 1.0) to glass (where its refractive index is 1.5). So, we can use the above equation to calculate the wavelength of light in the glass.
λ1/λ2
= n2/n1700/λ2
= 1.5/1.0λ2
= (700 nm x 1.0) / 1.5
λ2 = 466.67 nm
Therefore, the wavelength of the red light in the glass is 466.67 nm.
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Which of the following is NOT an NGO? a) CARE b) Red Cross c) UNICEF d) World Vision e) Oxfam
Option c) UNICEF is not an NGO, while options a) CARE, b) Red Cross, d) World Vision, and e) Oxfam are all NGOs.
Which of the following is NOT an NGO?The paragraph presents a question regarding non-governmental organizations (NGOs) and requires the identification of the option that is not an NGO.
NGOs are typically independent organizations that operate on a non-profit basis to address social, humanitarian, and environmental issues. They often work alongside governments and other entities to provide assistance and advocate for various causes.
Among the options provided, the United Nations International Children's Emergency Fund (UNICEF) is not considered an NGO.
UNICEF is a specialized agency of the United Nations (UN) and operates as a program within the UN system. It focuses specifically on child rights and well-being worldwide, collaborating with governments and other partners to fulfill its mandate.
On the other hand, CARE, Red Cross, World Vision, and Oxfam are all recognized NGOs that work on a range of issues such as poverty alleviation, disaster response, healthcare, and advocacy.
Therefore, option c) UNICEF is not an NGO, while options a) CARE, b) Red Cross, d) World Vision, and e) Oxfam are all NGOs.
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A 5.0-m-wide swimming pool is filled to the top. The bottom of the pool becomes completely shaded in the afternoon when the sun is 23Â degrees above the horizon. How deep is the pool? (in meters)
the depth of the pool is 3.08 meters.
Given:
Width of the swimming pool = 5.0 mThe pool is filled to the top.
The bottom of the pool becomes completely shaded in the afternoon when the sun is 23° above the horizon
We can solve the given question using Trigonometry.
ABC,cot 23° = AB/BCEquation (1)
But, AB + BC = 5.0 m
Equation (2)Also, AB^2 + BC^2 = AC^2
[Applying Pythagoras theorem in triangle ABC] Equation (3)
From equation (2), we have BC = 5 - AB
Substituting it in equation (3),
we get:
AB^2 + (5 - AB)^2 = AC^2
Expanding and simplifying the above equation:
2AB^2 - 10AB + 25 = AC^2But, we know that AB/BC
Equation (1) => AB = BC × cot 23° => AB = (5 - AB) × cot 23°
Solving the above equation, we get AB = 1.92 m
Hence, the depth of the pool is BC = 5 - AB = 5 - 1.92 = 3.08 meters.
So, the depth of the pool is 3.08 meters.
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suppose the voltage in an electrical circuit varies with time according to the formula v(t) = 90 sin(t) for t in the interval [0,]. the numerical value of the mean voltage in the circuit is
The numerical value of the mean voltage in the circuit is 57.27.
Suppose the voltage in an electrical circuit varies with time according to the formula v(t) = 90 sin(t) for t in the interval [0,].
The numerical value of the mean voltage in the circuit is 0.
The voltage is given by v(t) = 90 sin(t).To find the mean voltage, we need to find the average value of the voltage over the interval [0,].
The formula for the mean value of the voltage over an interval is:
Mean value of v(t) = (1/b-a) ∫aᵇv(t)dt
Where a and b are the limits of the interval.
In our case, a = 0 and b = π.
The integral is: ∫₀ᴨ 90sin(t) dt = -90 cos(t) between the limits 0 and π.
∴ Mean value of v(t) = (1/π-0) ∫₀ᴨ 90sin(t)dt
= (1/π) x [-90 cos(t)]₀ᴨ
= (1/π) x (-90 cos(π) - (-90 cos(0)))
= (1/π) x (90 + 90)
= 180/π
= 57.27 approx
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Vmax 14. Is the particle ever stopped and if so, when? 15. Does the particle ever turn around and reverse direction at any point and if so, when? 16. Describe the complete motion of the particle in ea
The complete motion of the particle is linear in all the quadrants of the coordinate plane.
Given Vmax is the maximum speed, the particle is never stopped. A particle is said to have changed its direction when its velocity vector changes direction. Hence, the particle can reverse direction if the velocity vector becomes negative.
Let's discuss the particle's motion in each quadrant of a coordinate plane.
1. Quadrant I: In this quadrant, the x-component of the velocity vector is positive, and the y-component is also positive. Hence, the velocity vector lies in this quadrant. Therefore, the particle moves in this direction. Hence, the particle's motion is linear in this quadrant.
2. Quadrant II: In this quadrant, the x-component of the velocity vector is negative, but the y-component is positive. The velocity vector lies in this quadrant. Therefore, the particle moves in this direction. Hence, the particle's motion is linear in this quadrant.
3. Quadrant III: In this quadrant, the x-component of the velocity vector is negative, and the y-component is also negative. The velocity vector lies in this quadrant. Therefore, the particle moves in this direction. Hence, the particle's motion is linear in this quadrant.
4. Quadrant IV: In this quadrant, the x-component of the velocity vector is positive, but the y-component is negative. The velocity vector lies in this quadrant. Therefore, the particle moves in this direction. Hence, the particle's motion is linear in this quadrant.
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A box with a mass of 25 kg rests on a horizontal surface. The coefficient of static friction between the box and the surface is 0.20. What horizontal force must be applied to the box for it to start s
To start the box sliding along the surface in the positive x direction, a horizontal force greater than 49 N in the positive x direction must be applied.
The maximum static friction force can be calculated using the equation:
f_static_max = μ_static * N
where μ_static is the coefficient of static friction and N is the normal force acting on the box. In this case, since the box is on a horizontal surface, the normal force is equal to the weight of the box:
N = m * g
Substituting the given values:
N = 25 kg * 9.8 m/s² = 245 N
Now, we can determine the maximum static friction force:
f_static_max = 0.20 * 245 N = 49 N
This is the maximum force that can be exerted before the box starts sliding. Therefore, to overcome the static friction and initiate sliding in the positive x direction, a horizontal force greater than 49 N in the positive x direction must be applied. The exact value of the force will depend on the magnitude of the static friction and the force applied.
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Complete Question:
A box with a mass of 25 kg rests on a horizontal surface. The coefficient of static friction between the box and the surface is 0.20. What horizontal force must be applied to the box for it to start sliding along the surface in the positive x direction? Use g = 9.8 m/s². O A horizontal force greater than 49 N in the positive x direction. O A horizontal force equal to 49 N in the positive x direction. O A horizontal force less than 49 N in the positive x direction. O A horizontal force that is either equal to or greater than 49 N in the positive x direction. O None of the other answers
calculate the concentrations of all species in a 0.100 m h3p04 solution.
The concentration of all species in a 0.100 M H₃PO₄ solution is as follows: [H₃PO₄] = 0.100 M, [H₂PO₄⁻] = 0.045 M, [HPO₄²⁻] = 0.0049 M, and [PO₄³⁻] = 1.0 x 10^-7 M.
Phosphoric acid, also known as orthophosphoric acid, is a triprotic acid with the chemical formula H₃PO₄. In water, the acid disassociates into H⁺ and H₂PO₄⁻. The second dissociation of H₂PO₄⁻⁻ results in the formation of H⁺ and HPO₄²⁻. Finally, the dissociation of HPO₄²⁻ produces H⁺ and PO₄³⁻. The following equations show the dissociation of H₃PO₄:
H₃PO₄ → H⁺ + H₂PO₄⁻
H₂PO₄⁻ → H⁺ + HPO₄²⁻
HPO₄²⁻ → H⁺ + PO₄³⁻
Using the dissociation constants of phosphoric acid, one can calculate the concentrations of all species in a 0.100 M H₃PO₄ solution. [H₃PO₄] = 0.100 M, [H₂PO₄⁻] = 0.045 M, [HPO₄²⁻] = 0.0049 M, and [PO₄³⁻] = 1.0 x 10^-7 M.
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A fluorescent mineral absorbs "black light" from a mercury lamp. It then emits visible light with a wavelength 520 nm. The energy not converted to light is converted into heat. If the mineral has absorbed energy with a wavelength of 320 nm, how much energy (in kJ/mole) was converted to heat?
The amount of energy (in kJ/mole) that was converted to heat is 345 kJ/mol (rounded to three significant figures).
To find the energy that is converted to heat, we need to compare the energy of the absorbed light to the energy of the emitted light. The absorbed light has a wavelength of 320 nm = 320 × 10⁻⁹ m.
So:
E = hc/λ E = (6.626 × 10⁻³⁴ J·s) (3.00 × 10⁸ m/s) / (320 × 10⁻⁹ m) E = 1.85 × 10⁻¹⁸ J
The absorbed light has less energy than the emitted light. The difference in energy is converted to heat.
So:
ΔE = 3.81 × 10⁻¹⁷ J – 1.85 × 10⁻¹⁸ J
ΔE = 3.63 × 10⁻¹⁷ J
This is the energy that is converted to light. To convert this to energy per mole, we need to know the number of photons in one mole of the mineral. This can be calculated using Avogadro’s number:
N = 6.02 × 10²³ photons/mol
So the energy per mole is:
ΔE/mol = (3.63 × 10⁻¹⁷ J) (6.02 × 10²³ photons/mol) ΔE/mol = 2.19 × 10⁷ J/mol
To convert this to kJ/mol, we divide by 1000:
ΔE/mol = 2.19 × 10⁴ kJ/mol
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The energy that was not converted to light is converted to heat. If the mineral has absorbed energy with a wavelength of 320 nm, the amount of energy (in kJ/mole) that was converted to heat is 109 kJ/mole.
A fluorescent mineral absorbs "black light" from a mercury lamp. It then emits visible light with a wavelength 520 nm.
The energy not converted to light is converted into heat.
The energy absorbed by the mineral = 320 nm
We know that the frequency of the energy absorbed by the mineral is given by the formula: c = λv
Where:
c = speed of light (3.0 × 10⁸ m/s)
λ = wavelength of energy (in meters)
v = frequency of energy (in Hertz)
Therefore:
v = c/λ = 3.0 × 10⁸ m/s / 320 × 10⁻⁹ m = 9.375 × 10¹⁴ Hz
Now, the energy absorbed by the mineral (E) is given by the formula: E = hv
Where:
h = Planck's constant (6.626 × 10⁻³⁴ J s)v = frequency of energy (in Hertz)
Therefore:
E = hv = 6.626 × 10⁻³⁴ J s × 9.375 × 10¹⁴ Hz = 6.22 × 10⁻¹⁸ J/molecule
The mineral then emits visible light with a wavelength of 520 nm. The frequency of the emitted light is given by the formula: v = c/λ = 3.0 × 10⁸ m/s / 520 × 10⁻⁹ m = 5.769 × 10¹⁴ Hz
The energy emitted as light is given by the formula: E = hv = 6.626 × 10⁻³⁴ J s × 5.769 × 10¹⁴ Hz = 3.82 × 10⁻¹⁸ J/molecule
Therefore, the energy converted to heat is:ΔE = Energy absorbed - Energy emitted
ΔE = (6.22 - 3.82) × 10⁻¹⁸ J/moleculeΔE = 2.4 × 10⁻¹⁸ J/molecule
Now, to calculate the energy converted to heat in kJ/mol:2.4 × 10⁻¹⁸ J/molecule × (6.02 × 10²³ molecules/mol) / (1000 J/kJ) = 1.44 × 10⁻⁴ kJ/mole
Therefore, the amount of energy (in kJ/mole) that was converted to heat is 109 kJ/mole.
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How much work does the electric field do in moving a -6.4x10-6 charge from ground to a point whose potential is 92 V higher?
The work done by the electric field in moving a -6.4x10^-6 charge from ground to a point 92 V higher is -5.888x10^-4 J.
The work done by an electric field in moving a charge can be calculated using the formula:
Work = q * ΔV
Where:
Work is the work done (in joules)
q is the charge (in coulombs)
ΔV is the change in potential (in volts)
q = -6.4x10^-6 C
ΔV = 92 V
Substituting these values into the formula, we get:
Work = (-6.4x10^-6 C) * (92 V)
= -5.888x10^-4 J
The work done by the electric field in moving a -6.4x10^-6 charge from ground to a point whose potential is 92 V higher is -5.888x10^-4 J. The negative sign indicates that the electric field does work against the motion of the charge, as the charge is moving to a higher potential.
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The Salem Witch Trials were the consequence of
1.
religious disputes within the Puritan community
2.
widespread anxiety over wars with Indians
3.
fear and hatred of women who were diffe
The Salem Witch Trials were the consequence of religious disputes within the Puritan community, widespread anxiety over wars with Indians, and fear and hatred of women who were perceived as different or challenging societal norms.
What were the factors that led to the Salem Witch Trials?The Salem Witch Trials were influenced by religious disputes, anxiety over wars with Indians, and fear and prejudice towards women who deviated from societal norms.
The Salem Witch Trials of 1692 in colonial Massachusetts were primarily fueled by religious tensions within the Puritan community. Puritan beliefs and practices were deeply ingrained in the society, and any deviation from their strict religious doctrines was seen as a threat. The trials were fueled by a fear of witchcraft and the belief that Satan was actively working to corrupt the community.
Additionally, the ongoing conflicts between English colonists and Native American tribes during the time created a climate of widespread anxiety and fear. The fear of Indian attacks and the uncertainty of the frontier amplified the existing anxieties within the community, leading to a heightened sense of paranoia and the scapegoating of individuals as witches.
Furthermore, the trials were marked by a pervasive fear and prejudice against women who were seen as different or challenging the established norms. Many of the accused were women who didn't conform to the traditional roles and expectations placed upon them. Women who displayed independence, assertiveness, or unconventional behavior were viewed with suspicion and often targeted as witches.
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calculate the amount of work done to move 1 kg mass from the surface of the earth to a point 10⁵ km from the centre of the earth.
The amount of work done to move 1 kg mass from the surface of the earth to a point 10⁵ km from the center of the earth is -3.748 × 10^9 J.
The mass of the object is 1 kg, and the distance to move is 10⁵ km from the surface of the earth.
We must first determine the amount of work done by gravity as the object is moved from the surface of the earth to an altitude of 10⁵ km, which is the distance to be covered.
The formula for work done by gravity is given by;
Work done by gravity = -GmM/rwhere G = 6.674 × 10^-11 N.m^2/kg^2 is the gravitational constant, M = 5.974 × 10^24 kg is the mass of the earth, and r = 10⁵ km + R, where R is the radius of the earth, is the distance between the center of the earth and the object's new position.
Therefore,r = 10^5 km + 6.37 × 10^3 km = 1.06 × 10^8 m
The work done is given by the formula above.
Substituting the values,
Work done by gravity = -6.674 × 10^-11 × 1 × 5.974 × 10^24 / 1.06 × 10^8= -3.748 × 10^9 J
Therefore, the amount of work done to move 1 kg mass from the surface of the earth to a point 10⁵ km from the center of the earth is -3.748 × 10^9 J.
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In your own words, fully describe the primary differences in stellar evolution of a high-mass star and a star like the Sun. Be sure to fully describe the steps in complete thoughts. Listing out the steps for each type of star is a good way to answer this question. Be sure you are not doing a copy/paste from the lecture material. I want to know if you can describe the stages. Bullet pointing the steps might be useful and easy to organize thoughts.
High-mass stars, like the Sun, undergo stellar evolution in a different manner compared to lower-mass stars. Here are the primary differences in the stages of stellar evolution between a high-mass star and a star like the Sun:
Sun-like Star:
Nebula: A cloud of gas and dust collapses under its gravity, forming a protostar.
Main Sequence: The protostar reaches equilibrium, and nuclear fusion begins in its core, converting hydrogen into helium. This phase lasts for about 10 billion years.
Red Giant: As hydrogen fuel depletes, the star expands and becomes a red giant, burning helium in its core while outer layers expand.
Planetary Nebula: The red giant sheds its outer layers, creating an expanding shell of gas and exposing the core.
White Dwarf: The remaining core, composed of a dense, hot, degenerate gas, becomes a white dwarf, gradually cooling over billions of years.
High-Mass Star:
Nebula: Similar to the Sun-like star, a nebula collapses to form a protostar.
Main Sequence: The protostar becomes a high-mass main sequence star, undergoing nuclear fusion at a higher rate due to its higher mass.
Red Supergiant: The high-mass star exhausts its hydrogen quickly and expands to become a red supergiant, fusing heavier elements in its core.
Supernova: Once fusion ceases, the core collapses, resulting in a catastrophic explosion called a supernova, releasing an enormous amount of energy and creating heavy elements.
Neutron Star or Black Hole: The core of the high-mass star collapses further, forming either a neutron star or a black hole, depending on its mass.
In summary, the primary differences in stellar evolution between a high-mass star and a star like the Sun lie in their mass-dependent stages. High-mass stars burn through their fuel more rapidly, leading to shorter lifetimes and more energetic events such as supernovae. The remnants of high-mass stars can form neutron stars or black holes, while lower-mass stars like the Sun end their lives as white dwarfs. These differences highlight the profound influence of stellar mass on the evolutionary path of stars.
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A car and a motorbike are having a race. The car has an acceleration from rest of 5.6 m/s2 until it reaches its maximum speed of 106 m/s whilst the motorbike has an acceleration of 8.4 m/s2 until it reaches it maximum speed of 58.8 m/s. Then they continue to race until the car reaches the motorcycle. (a) Find the time it takes the car and the motorbike to reach their maximum speeds
(b) What distance after starting from rest do the car and the motorbike travel when they reach their respective maximum speeds?
(c) How long does it take the car to reach the motorbike? Hint: To help solve this, note that the car will still be accelerating when it catches the motorbike. Your solution will contain two times. Justify which of the times is the correct one and which is the unphysical one. (
The car reaches its maximum speed of 106 m/s in 18.93 seconds and travels approximately 3366.26 meters. The motorbike reaches its maximum speed of 58.8 m/s in 7 seconds and travels 2058 meters. The car never catches up with the motorbike.
(a) To find the time it takes for the car and the motorbike to reach their maximum speeds, we can use the formula:
Time = (Final Speed - Initial Speed) / Acceleration
For the car:
Initial Speed = 0 m/s (rest)
Final Speed = 106 m/s
Acceleration = 5.6 m/s²
Time = (106 m/s - 0 m/s) / 5.6 m/s² = 18.93 seconds
For the motorbike:
Initial Speed = 0 m/s (rest)
Final Speed = 58.8 m/s
Acceleration = 8.4 m/s²
Time = (58.8 m/s - 0 m/s) / 8.4 m/s² = 7 seconds
(b) To find the distance traveled by the car and the motorbike when they reach their respective maximum speeds, we can use the formula:
Distance = (Initial Speed × Time) + (0.5 × Acceleration × Time²)
For the car:
Initial Speed = 0 m/s (rest)
Time = 18.93 seconds
Acceleration = 5.6 m/s²
Distance = (0 m/s × 18.93 seconds) + (0.5 × 5.6 m/s² × (18.93 seconds)²)
Distance = 0 + 0.5 × 5.6 m/s² × 357.2049 seconds²
Distance ≈ 3366.26 meters
For the motorbike:
Initial Speed = 0 m/s (rest)
Time = 7 seconds
Acceleration = 8.4 m/s²
Distance = (0 m/s × 7 seconds) + (0.5 × 8.4 m/s² × (7 seconds)²)
Distance = 0 + 0.5 × 8.4 m/s² × 49 seconds²
Distance = 2058 meters
(c) To find how long it takes the car to catch up with the motorbike, we need to determine the time at which their positions are equal. Since the car continues to accelerate while catching up, we can use the equation:
Distance = (Initial Speed × Time) + (0.5 × Acceleration × Time²)
Let's assume the time it takes for the car to catch the motorbike is t.
For the car:
Initial Speed = 0 m/s (rest)
Acceleration = 5.6 m/s²
For the motorbike:
Initial Speed = 0 m/s (rest)
Acceleration = 8.4 m/s²
Setting the distances equal to each other:
(0 m/s × t) + (0.5 × 5.6 m/s² × t²) = (0 m/s × t) + (0.5 × 8.4 m/s² × t²) + (58.8 m/s × t)
Simplifying the equation:
(0.5 × 5.6 m/s² × t²) = (0.5 × 8.4 m/s² × t²) + (58.8 m/s × t)
Since the term (0.5 × 5.6 m/s² × t²) equals (0.5 × 8.4 m/s² × t²), they cancel out, and we are left with:
0 = 58.8 m/s × t
This implies that t = 0, which is the unphysical solution since it means the car catches up with the motorbike instantaneously. Therefore, there is no valid solution for the car catching up with the motorbike.
In conclusion, the car and motorbike reach their maximum.
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A man loads 120kg appliance onto a truck across a ramp (sloped
surface). The side opposite the ramps angle is 4.0 m in height. How
much work does the man do while loading the appliance across the
ramp
The man does 480 J of work while loading the appliance across the ramp from bottom to top.
To solve this problem, we can use the equation for work:
Work = Force * Distance
We know that the force is equal to the weight of the appliance, which is 120 kg * 9.8 m/s² = 1176 N.
We also know that the distance is equal to the length of the ramp, which we can calculate using the Pythagorean theorem:
Length of ramp = √(4.0 m² + 4.0 m²) = 4.24 m
Plugging these values into the equation for work, we get:
Work = 1176 N * 4.24 m = 480 J
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Complete question :
A man loads 120kg appliance onto a truck across a ramp (sloped surface). The side opposite the ramps angle is 4.0 m in height. How much work does the man do while loading the appliance across the ramp from bottom to top
determine the amplitude a and the phase angle γ (in radians), and express the displacement in the form x(t)=acos(ωt−γ), with x in meters.
The displacement function is x(t) = 0.4 cos(3πt - 0.93) m, expressed in the given form. Determination of amplitude: In the given form of the displacement function x(t), the amplitude 'a' is given by the coefficient of the cosine function. Therefore, a = 0.4 m.
Determination of phase angle: The phase angle 'γ' can be determined by comparing the given function with the standard cosine function in the form of [tex]x(t) = a cos(ωt + γ).[/tex]
Here, we need to note that in the given function, the argument of the cosine function is (ωt - γ).
Therefore, [tex]γ = (ωt - arc cos (x/a))[/tex]
We know that [tex]cos(γ) = x/a[/tex]
∴ arc cos(x/a)
= γ= arc cos(0.4/0.6)
= 0.93 rad (approx)
Hence, the phase angle is γ = 0.93 rad.
Expressing displacement in the given form: Given that the displacement function is
x(t) = 0.4 cos(3πt - 0.93)
The angular frequency is ω = 3π rad/s and the phase angle is γ = 0.93 rad. Thus, the displacement function is x(t) = 0.4 cos(3πt - 0.93) m, expressed in the given form.
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for the following exothermic reaction at equilibrium: h2o (g) co (g) co2(g) h2(g) decide if each of the following changes will increase the value of k (t = temperature)
For the given exothermic reaction at equilibrium:H2O(g) + CO(g) ⇌ CO2(g) + H2(g)Changes in pressure, temperature, or concentration may shift the equilibrium position, but they do not affect the value of Kc, which is constant for a given reaction at a given temperature. Hence, Kc is independent of any changes in the concentrations of reactants and products, as well as changes in the reaction conditions, as long as the temperature remains constant.To assess the effect of each change on the equilibrium constant, we must use Le Chatelier's principle to predict which direction the reaction will proceed to reestablish equilibrium. The shift in the equilibrium can cause Kc to vary when the system comes to equilibrium at the new conditions.A change in pressure will influence the equilibrium position of a gaseous reaction since gases are extremely responsive to pressure. If the pressure is increased on one side of an equilibrium reaction, the reaction will shift to the opposite side of the equation to balance the pressure. The equilibrium constant (Kc) will not change, but the pressure will influence the mole fractions of reactants and products, which will have an impact on the direction of the equilibrium shift and the rate at which it occurs. Increasing the pressure by decreasing the volume of the container in which the equilibrium reaction is occurring will result in a shift towards the side of the equation with fewer gas molecules, and the system will attempt to balance the pressure. Therefore, the reaction will shift to the left, resulting in a decrease in Kc. Since the reverse reaction, which is exothermic, is favored at lower temperatures, an increase in the value of Kc is not expected as the temperature is lowered. This means that the first option will not result in an increase in Kc. If the volume is increased, the reaction will shift towards the side with more gas molecules to compensate, resulting in an increase in Kc. This means that the second option will lead to an increase in Kc.
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Exothermic reactions at equilibrium: In an exothermic reaction, the energy is released to the surrounding as heat. An exothermic reaction always has a negative sign for ΔH. An exothermic reaction at equilibrium means that the reactants and products are still reacting, but at the same rate. The reaction quotient, Qc, is equal to the equilibrium constant, Kc. The given exothermic reaction is: H2O (g) + CO (g) ⇌ CO2(g) + H2(g)The balanced equation is as follows: H2O(g) + CO(g) ⇌ CO2(g) + H2(g)Decide if each of the following changes will increase the value of K (T = temperature): Increasing the temperature The given reaction is exothermic.
An increase in temperature will favor the backward reaction and oppose the forward reaction to attain equilibrium. According to Le Chatelier’s principle, if stress is applied to an equilibrium system, it will react to counteract the effect of that stress. Hence, an increase in temperature will cause the equilibrium to shift towards the reactants, as it is an endothermic process. Therefore, the value of Kc will decrease. Decreasing the pressure CO and H2 are gaseous reactants, whereas CO2 and H2O are gaseous products. A decrease in pressure will favor the side of the reaction with more number of gaseous molecules to oppose the change. Therefore, the equilibrium will shift towards the reactants to balance the pressure. Hence, the value of Kc will increase. Adding a catalyst A catalyst is a substance that increases the rate of a chemical reaction by providing an alternative pathway for the reaction with a lower activation energy. A catalyst does not affect the equilibrium position of the reaction, but it helps in achieving the equilibrium state at a faster rate. Hence, adding a catalyst will not affect the value of Kc, as it is independent of the rate of the reaction. The following changes will increase the value of K (T = temperature): Decreasing the temperature Increasing the pressure Therefore, the decrease in temperature and increase in pressure will increase the value of Kc.
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A billiard ball of mass 0.28 kg hits a second, identical ball at a speed of 5.8 m/s and comes to rest as the second ball flies off. The collision takes 250 μs.
A.) What is the average force on the first ball?
B.) What is the average force on the second ball?
The average force on the first ball is 0 N. The average force on the second ball is 0 N.
To solve this problem, we can use the principles of conservation of momentum and energy. Let's start by calculating the velocity of the second ball after the collision using the conservation of momentum:
Initial momentum = Final momentum
(mass_1 * velocity_1) + (mass_2 * velocity_2) = 0
(0.28 kg * 5.8 m/s) + (0.28 kg * velocity_2) = 0
velocity_2 = -(0.28 kg * 5.8 m/s) / 0.28 kg
velocity_2 = -5.8 m/s. The negative sign indicates that the second ball is moving in the opposite direction to the first ball. Now, we can calculate the change in kinetic energy of the first ball using the conservation of energy: Initial kinetic energy - Final kinetic energy = Work done by the force
(0.5 * mass_1 * velocity_1^2) - 0 = Average force * distance.
0.5 * 0.28 kg * (5.8 m/s)^2 = Average force * 0.
Average force on the first ball = 0 N
Since the first ball comes to rest, there is no change in kinetic energy, and therefore, no average force is exerted on it.
Next, we can calculate the change in kinetic energy of the second ball:
Initial kinetic energy - Final kinetic energy = Work done by the force
(0.5 * mass_2 * velocity_2^2) - 0 = Average force * distance
0.5 * 0.28 kg * (-5.8 m/s)^2 = Average force * 0
Average force on the second ball = 0 N.
Similarly, since the second ball flies off, there is no change in kinetic energy, and therefore, no average force is exerted on it. In conclusion:
A) The average force on the first ball is 0 N.
B) The average force on the second ball is 0 N.
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The plates have (20%) Problem 3: Two metal plates form a capacitor. Both plates have the dimensions L a distance between them of d 0.1 m, and are parallel to each other. 0.19 m and W 33% Part a) The plates are connected to a battery and charged such that the first plate has a charge of q Write an expression or the magnitude edof the electric field. E, halfway between the plates. ted ted ted 33% Part (b) Input an expression for the magnitude of the electric field E-q21 WEo X Attempts Remain E2 Just in front of plate two 33% Part (c) If plate two has a total charge of q-l mic, what is its charge density, ơ. n Cim2? Grade Summary ơ-1-0.023 Potential 96% cos) cotan)asin acos(O atan acotan sinh cosh)tan cotanh) . Degrees Radians sint) tan) ( 78 9 HOME Submissions Attempts remaining: (u per attemp) detailed view HACKSPACE CLEAR Submitint give up! deduction per hint.
a) The expression and magnitude of the plates halfway between the plates is -0.594 × 10⁶ V/m. b) The expression and magnitude of the plates, just in front of the plate, is E = q/(L×W)∈₀. c) the charge density is
-0.052×10⁻⁶ C/m².
Given information,
Distance between the plates, d = 0.1 m
Area, L×W = 0.19 m
Q = -1μC
a) The expression for the electric field,
E = q/(L×W)∈₀
E = -1×10⁻⁶/(0.19)8.85× 10⁻¹²
E = -0.594 × 10⁶ V/m
Hence, the electric field is -0.594 × 10⁶ V/m.
b) The expression for the magnitude of the electric field, in front of the plates,
E = q/(L×W)∈₀
Hence, the expression for the magnitude of the electric field, in front of the plates is E = q/(L×W)∈₀.
c) The charge density σ,
σ = Q/A
σ = -1×10⁻⁶/0.19
σ = -0.052×10⁻⁶ C/m²
Hence, the charge density is -0.052×10⁻⁶ C/m².
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How
many joules of energy are there in one photo. of orange light whose
wavelength is 630x10^9m?
3.15 x [tex]10^-^3^4[/tex] J of energy are there in one photo. of orange light whose
wavelength is 630x[tex]10^9[/tex]m.
To calculate the energy of a photon, we can use the equation:
E = hc / λ
where E is the energy of the photon, h is Planck's constant (6.626 x [tex]10^-^3^4[/tex] J*s), c is the speed of light (3.0 x [tex]10^8[/tex] m/s), and λ is the wavelength of the light in meters.
Given the wavelength of the orange light as 630 x [tex]10^9[/tex]m, we can substitute the values into the equation to calculate the energy of one photon:
E = (6.626 x [tex]10^-^3^4[/tex]J*s * 3.0 x [tex]10^8[/tex] m/s) / (630 x [tex]10^9[/tex] m)
Simplifying the equation:
E = (1.988 x [tex]10^-^2^5[/tex]J*m) / (630 x[tex]10^9[/tex]m)
E = 3.15 x 10[tex]10^-^3^4[/tex] J
It's important to note that the energy of a single photon is very small due to its quantum nature. In practical applications, the energy of photons is often measured in terms of the number of photons rather than individual photon energy.
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Two external forces are applied to a particle: F1→=11 N i^+-5 N
j^ and F2→=18 N i^+-2.5 N j^.
A) Find the force F3→ that will keep the particle in
equilibrium.
Enter the x and y components separ
The force F3→ that will keep the particle in equilibrium is: F3→ = -29 N i^ + 7.5 N j^.
By summing the forces in the x and y directions and taking the negative of their sum, we can determine the force F3→ that will balance the applied forces and keep the particle in equilibrium.
To keep the particle in equilibrium, the net force acting on it must be zero. This means that the sum of the forces in the x-direction and the sum of the forces in the y-direction must both be zero.
F1→ = 11 N i^ - 5 N j^
F2→ = 18 N i^ - 2.5 N j^
To find the force F3→ that will keep the particle in equilibrium, we need to find the negative of the vector sum of F1→ and F2→.
Summing the forces in the x-direction:
F1x = 11 N
F2x = 18 N
F3x = -(F1x + F2x) = -(11 N + 18 N) = -29 N
Summing the forces in the y-direction:
F1y = -5 N
F2y = -2.5 N
F3y = -(F1y + F2y) = -(-5 N + (-2.5 N)) = 7.5 N
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1. (a) In reaching equilibrium, how much heat transfer occurs from 1.1 kg of water at 40°C when it is placed in contact with 1.1 kg of 20°C water? Specific heat of water c=4186 J/(kg°C) Hint: If th
The heat transfer that occurs from 1.1 kg of water at 40°C to 1.1 kg of water at 20°C is 92,270 J.
To calculate the heat transfer that occurs when two substances reach thermal equilibrium, we can use the equation Q = mcΔT, where Q is the heat transfer, m is the mass, c is the specific heat, and ΔT is the change in temperature.
In this case, we have two equal masses of water, each weighing 1.1 kg. The specific heat of water, c, is given as 4186 J/(kg°C).
First, we need to calculate the change in temperature, ΔT, which is the difference between the final equilibrium temperature and the initial temperature. Since the masses are equal, the equilibrium temperature will be the average of the initial temperatures, which is (40°C + 20°C) / 2 = 30°C.
Next, we can calculate the heat transfer for each mass of water using the equation Q = mcΔT. For the water at 40°C, the heat transfer is Q₁ = (1.1 kg) * (4186 J/(kg°C)) * (30°C - 40°C) = -45,530 J (negative because heat is transferred out of the water). Similarly, for the water at 20°C, the heat transfer is Q₂ = (1.1 kg) * (4186 J/(kg°C)) * (30°C - 20°C) = 137,800 J.
The total heat transfer is the sum of the individual heat transfers: Q_total = Q₁ + Q₂ = -45,530 J + 137,800 J = 92,270 J.
Therefore, the heat transfer that occurs from 1.1 kg of water at 40°C to 1.1 kg of water at 20°C is 92,270 J.
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Complete Question:
(a) In reaching equilibrium, how much heat transfer occurs from 1.1 kg of water at 40€ when it is placed in contact with 1.1 kg of 20€ water? Specific heat of water c=4186 J/(kg) Hint: If the masses of water are equal, what is the equilirium temperature of the water mixture?
i
need the answer to the upper control limit and lower control limit
for the r-chart. i know the x-chart answers are correct
Ross Hopkins is attempting to monitor a filling process that has an overall average of 725 mL. The average range R is 4 mL. For a sample size of 10, the control limits for 3-sigma x chart are: Upper C
The control limits for 3-sigma x chart are 718.5 mL and 731.5 mL.
An x-chart is a graph that shows a collection of data points on a line that corresponds to the sample mean. It's created by calculating the mean of the data and plotting it on a chart in the middle. The upper and lower control limits, or UCL and LCL, are also represented on the graph. The control limits show when a process is out of control or exceeding its predicted performance limits. The x-chart is used to monitor variables data, such as the sample mean, to detect changes in a process. The average range R is a measure of process variability. The average range R is a measure of process variability. It is calculated by taking the average of the ranges from several samples.
The X-bar chart is a type of Shewhart control chart used in industrial statistics to monitor the arithmetic means of successive samples of the same size, n. This control chart is used for characteristics like weight, temperature, thickness, and so on that can be measured on a continuous scale.
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Two parallel plates are held 10cm from one another. The potential difference between the plates is held at 100V. In this problem, ignore edge effects. (a) Find the electric field between the plates. (
The electric field between the plates is 1,000 V/m.
The electric field between parallel plates is given by the equation E = V/d, where E is the electric field, V is the potential difference, and d is the distance between the plates.
In this problem, the potential difference between the plates is 100V, and the distance between the plates is 10cm, which is equal to 0.1m.
Substituting these values into the equation, we have E = 100V / 0.1m = 1,000 V/m.
The electric field represents the force experienced by a unit positive charge placed between the plates. In this case, the electric field is constant and uniform between the plates since edge effects are ignored.
The electric field lines are directed from the positive plate to the negative plate.
The magnitude of the electric field is directly proportional to the potential difference between the plates and inversely proportional to the distance between the plates.
Therefore, increasing the potential difference or decreasing the distance between the plates will result in a stronger electric field.
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Footprints on the Moon (Adapted from Bennett, Donahue, Schneider, and Voit)
It has been estimated that about 25 million micrometeorites impact the surface of the Moon daily. (This estimate comes from observing the number of micrometeorites that impact the Earth’s atmosphere daily.) Assuming that these impacts are distributed randomly across the surface of the Moon, estimate the length of time which a footprint left on the Moon by the Apollo astronauts will remain intact, given that it takes approximately 20 micrometeorite impacts to destroy a footprint. (Hint: this is an order of magnitude type calculation, and requires you to make some estimates. Be sure to clearly explain what you are doing at each step of your calculation, and determine if the resulting answer is reasonable!)
Escape Velocity
a) Gravitational Potential energy V = -GMm/r, Kinetic Energy K = 1/2 mv2 Derive the escape velocity for a planet of mass M and radius R. Calculate this value for the surfaces of Earth and Jupiter.
b) Temperature is the average kinetic energy of a group of particles. For an idea gas, K = 3/2 kBT, where K is the kinetic energy, kB is Boltzmann’s constant, and T is temperature. Derive the average velocity of a gas molecule as a function of its mass and Temperature. Calculate this value for a molecule of Oxygen (O2) and Hydrogen (H2).
c) Why does the Earth’s atmosphere have so little Hydrogen, while Jupiter’s atmosphere is full of it?
25 million micrometeorites hit the surface of the moon daily. The Apollo astronauts' footprint will stay on the surface of the moon if it takes around 20 micrometeorites to damage it.
So, to calculate the duration, we'll need to find the number of footprints that have been damaged. We don't know how many footprints there are, so let's estimate that. Assume the average person walks at a rate of 1 step per second. Assume that each step is one foot in length. Assume the average person walks for 2 hours. Then, each person walks for 7200 seconds. The number of footprints per individual is 7200 x 1 = 7200. If we presume 12 people in total, the total number of footprints is 7200 x 12 = 86400.
Therefore, assuming that the footprints are uniformly distributed on the surface of the moon and that 25 million micrometeorites hit the moon's surface daily, the footprints are destroyed at a rate of 25,000,000/20 = 1,250,000 footprints per day.
The duration for the Apollo astronaut's footprints on the moon to remain intact:86400/1,250,000 = 0.06912 days, or roughly 1 hour and 40 minutes.
To calculate how long an Apollo astronaut's footprint would stay on the surface of the Moon, given that it takes around 20 micrometeorites to destroy a footprint, and given that 25 million micrometeorites hit the Moon's surface every day, we'll need to do some calculations. We'll begin by assuming that the footprints were uniformly distributed on the surface of the moon. We'll also assume that each person took 1 step per second, that each step is one foot in length, and that the average person walked for 2 hours. That means each person walked for 7200 seconds, or took 7200 steps. If we assume that there were 12 people on the Apollo mission, then the total number of footprints left by the astronauts would be 12 x 7200 = 86400.
Now, we need to figure out how quickly these footprints are being destroyed. Given that it takes around 20 micrometeorites to destroy a footprint, and given that 25 million micrometeorites hit the Moon's surface every day, we can calculate that the footprints are being destroyed at a rate of 25,000,000/20 = 1,250,000 footprints per day.
So, to find out how long it would take for the footprints to be destroyed, we divide the total number of footprints by the rate at which they are being destroyed:86400/1,250,000 = 0.06912 days, or roughly 1 hour and 40 minutes. Therefore, the length of time for the footprint to remain intact is approximately 1 hour and 40 minutes.
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for an electromagnetic wave the direction of the vector e x b gives
The speed of an electromagnetic wave is 299,792,458 meters per second (m/s) or the speed of light.
The direction of the vector product of E (electric field) and B (magnetic field) indicates the direction of energy transfer in an electromagnetic wave. This direction is perpendicular to both the E and B fields. The wave propagates in this direction as well. The direction of the vector product is referred to as the Poynting vector.
The Poynting vector, S, provides information about the direction and intensity of the electromagnetic energy flux or radiation pressure density. Its SI unit is watt per square meter (W/m²). It can be mathematically expressed as:S = E × BIn an electromagnetic wave, the E and B fields oscillate in mutually perpendicular planes. The direction of energy transfer is also perpendicular to both the E and B fields. An electromagnetic wave propagates perpendicular to both E and B fields and the direction of energy transfer. It has both electric and magnetic properties and carries energy. Therefore, an electromagnetic wave can be defined as a wave of energy produced by the acceleration of an electric charge and propagated through a vacuum or a medium.
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Show Attempt History Current Attempt in Progress A proton initially has = (18.0)i + (-490) + (-18.0) and then 5.20 s later has = (7.50)i + (-4.90)j + (13.0) (in meters per second). (a) For that 5.20 s, what is the proton's average acceleration av in unit vector notation, (b) in magnitude, and (c) the angle between ag and the positive direction of the xaxis? (a) Number Units (b) Number Units (c) Number Units eTextbook and Media,
(a) The proton's average acceleration av in unit vector notation is (-2.50)i + (197)j + (6.70)k m/s^2.
(b) The magnitude of the proton's average acceleration av is 198 m/s^2.
(c) The angle between the average acceleration av and the positive direction of the x-axis is approximately 95.4 degrees.
Explanation to the above given short answers are written below,
(a) To find the average acceleration av, we need to calculate the change in velocity and divide it by the time interval. The change in velocity is given by
Δv = v_f - v_i,
where v_f is the final velocity and
v_i is the initial velocity.
Subtracting the initial velocity from the final velocity, we get
Δv = (7.50 - 18.0)i + (-4.90 - (-490))j + (13.0 - (-18.0))k = (-10.5)i + (485.1)j + (31.0)k.
Dividing Δv by the time interval of 5.20 s, we get the average acceleration av = (-2.50)i + (197)j + (6.70)k m/s^2.
(b) The magnitude of the average acceleration av can be calculated using the formula
|av| = √(avx^2 + avy^2 + avz^2),
where avx, avy, and avz are the components of av in the x, y, and z directions, respectively.
Substituting the values, we get |av| = √((-2.50)^2 + (197)^2 + (6.70)^2) = 198 m/s^2.
(c) The angle between the average acceleration av and the positive direction of the x-axis can be determined using the formula
θ = arctan(avy / avx).
Substituting the values, we get θ = arctan(197 / (-2.50)) ≈ 95.4 degrees.
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"
Which of the following statements are TRUE about a body moving in
circular motion?
A. For a body moving in a circular motion at constant speed,
the direction of the velocity vector is the same as the
10 1 point A Which of the following statements are TRUE about a body moving in circular motion? A. For a body moving in a circular motion at constant speed, the direction of the velocity vector is the same as the direction of
the acceleration
B. At constant speed and radius, increasing the mass of an object moving in a circular path will increase the net force.
C. If an object moves in a circle at a constant speed, its velocity vector will be constant in magnitude but changing in direction
a.) A and B
b.) A, B and C
c.) A and C
d.) B and C
Option c) A and C statements are TRUE about a body moving in circular motion.
a) For a body moving in circular motion at a constant speed, the direction of the velocity vector is the same as the direction of the acceleration. This is true because in circular motion, the velocity vector is always tangential to the circular path, and the acceleration vector is directed towards the center of the circle, perpendicular to the velocity vector.
b) Increasing the mass of an object moving in a circular path will not directly affect the net force. The net force is determined by the centripetal force required to keep the object in circular motion, which is determined by the object's mass, speed, and radius of the circular path. Increasing the mass alone does not change the net force.
c) If an object moves in a circle at a constant speed, its velocity vector will be constant in magnitude but changing in direction. This is because the object is constantly changing its direction while maintaining the same speed. Velocity is a vector quantity that includes both magnitude (speed) and direction, so if the direction is changing, the velocity vector is also changing.
Therefore, the correct statements are A and C.
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the force per meter between the two wires of a jumper cable being utilized to start a stalled van is 0.215 n/m.
This force per meter refers to the force experienced between two parallel wires carrying electric current.
When electric current flows through the wires, a magnetic field is generated around each wire. These magnetic fields interact with each other, resulting in a force between the wires.In the context of a jumper cable being used to start a stalled van, the force per meter indicates the force exerted between the positive and negative terminals of the jumper cable. This force is responsible for delivering electrical energy from the functioning vehicle's battery to the stalled van's battery to start the engine.
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Find the rest energy, in terajoules, of a 17.1 g piece of chocolate. 1 TJ is equal to 1012 J .
rest energy:
TJ
The rest energy of a 17.1 g piece of chocolate is 485.3 terajoules.
According to the formula E = mc², the energy (E) of an object is equal to its mass (m) multiplied by the speed of light (c) squared. The rest energy (E₀) of an object is its energy at rest. The rest energy of a 17.1 g piece of chocolate can be found as follows:
$$E₀ = mc²$$
Where m = 17.1 g = 0.0171 kg and c = speed of light = 2.998 × 10⁸ m/s.
Plugging in these values, we get:
$$E₀ = (0.0171 kg) × (2.998 × 10⁸ m/s)² = 4.853 × 10¹⁴ J$$
To convert joules to terajoules, we divide by 10¹²:
$$E₀ = \frac{4.853 × 10¹⁴ J}{10¹² J/TJ} = 485.3 TJ
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