Ignoring the mass of duct tape and plastic in the bottles, a child will need at least 4 water bottles to stay dry on the raft. The child will need at least four water bottles to stay dry on the raft.
The buoyancy force exerted by the water on the raft must be greater than or equal to the weight of the child to keep the child afloat and dry on the raft. The buoyancy force is given by Archimedes' principle, which states that it is equal to the weight of the water displaced by the raft.
The volume of each 1.0 L water bottle is 0.001 m^3. The density of water is approximately 1000 kg/m^3. Therefore, each water bottle has a buoyant force of:
Buoyant force = Volume of water displaced x Density of water x Acceleration due to gravity
Buoyant force = 0.001 m^3 x 1000 kg/m^3 x 9.81 m/s^2
Buoyant force = 9.81 N
To find the minimum number of water bottles needed to keep the child afloat, we need to divide the weight of the child by the buoyant force of one water bottle:
Minimum number of water bottles = Weight of child / Buoyant force per bottle
Minimum number of water bottles = 32 kg / 9.81 N
Minimum number of water bottles = 3.26 (rounded up to 4)
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on what does the magnitude of an applied torque depend? select all that apply. on what does the magnitude of an applied torque depend?select all that apply. the distance between the point of force application and the axis of rotation of the object. the orientation of the force. the mass distribution of the extended object. the magnitude of the force.
The magnitude of an applied torque depends on the following:
the distance between the point of force application and the axis of rotation of the object.the magnitude of the force.
The applied torque magnitude is an essential quantity to consider when considering rotational motion. Torque is defined as the action of a force on an object that creates a rotational motion around an axis of rotation.
Therefore, the magnitude of an applied torque depends on the distance between the point of force application and the axis of rotation of the object, and the magnitude of the force.
When it comes to torque, the perpendicular component of the force creates torque. The perpendicular distance from the axis of rotation to the force is the torque arm (r).
Therefore, we can write,
Torque = force x torque arm.
The magnitude of torque,
F × r
is proportional to the force applied and the perpendicular distance from the axis of rotation to the line of action of the force.
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an object is placed 20.6 cm to the left of a thin converging lens that has focal length 11.9 cm. what is the distance between the object and the image?
When an object is placed at 20.6 cm to the left of a converging lens with focal length 11.9, the distance between the object and the image is approximately 7.57 cm. This can be found by finding the image distance.
To find the distance between the object and the image, we need to first determine the image distance using the lens formula. The lens formula is given by:
1/f = 1/do + 1/di
Where:
- f is the focal length of the lens (11.9 cm)
- do is the object distance (20.6 cm)
- di is the image distance, which we need to find.
Step 1: Plug in the given values into the lens formula:
1/11.9 = 1/20.6 + 1/di
Step 2: Find a common denominator for the fractions:
(20.6*di) / (11.9*20.6) = (11.9*di) / (11.9*20.6) + (20.6*11.9) / (11.9*20.6)
Step 3: Simplify the equation:
(20.6*di) / 246.14 = (11.9*di + 245.14) / 246.14
Step 4: Cross-multiply and solve for di:
20.6*di = 11.9*di + 245.14
Step 5: Subtract 11.9*di from both sides of the equation:
8.7*di = 245.14
Step 6: Divide both sides by 8.7 to isolate di:
di ≈ 28.17 cm
Now that we have the image distance, we can find the distance between the object and the image.
Distance = |object distance - image distance|
Distance = |20.6 cm - 28.17 cm|
Distance ≈ 7.57 cm
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a long straight wire carries a current i into a quarter loop of radius r and out of the loop through another straight wire as shown below. what is the magnitude of the magnetic field at the point p center of the quarter loop? treat the long straight wires as extending infinitely in the directions shown and assume no other source of magnetic field.
The magnitude of the magnetic field at point P is |B| = μ₀ * i / (2π * r)
dB = (μ₀/4π) * (i * dl x r) / (r/2)²
dB = 2 * (μ₀/4π) * (i * dl x r) / r²
dB = (μ₀/2π) * (i * dl x r) / r²
B = ∫dB = (μ₀/2π) * (i * ∫dl x r) / r²
B = (μ₀/2π) * (i * r * ∫dθ) / r²
B = (μ₀/2π) * (i * π/2) / r
B = μ₀ * i / (2π * r)
A magnetic field is a vector field that describes the magnetic influence of electric currents and magnetic materials. It is represented by lines of force that indicate the direction and strength of the magnetic field at each point in space. The magnetic field is measured in units of tesla (T) or gauss (G) and is produced by moving electric charges or by the intrinsic magnetic moment of elementary particles such as electrons and protons.
Magnetic fields have several important applications in everyday life, including electric motors, generators, and MRI machines. They are also critical to our understanding of the behavior of charged particles in space, such as the Earth's magnetic field that protects us from harmful cosmic radiation. The study of magnetic fields is an important branch of physics, known as electromagnetism, which also encompasses electric fields and their interaction with each other and with matter.
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In 1945 the United Nations created the universal prep legation of human riot to
I don’t have the answers choices!!
Sorry
Answer:
In 1945, the United Nations created the Universal Declaration of Human Rights (UDHR), which is a milestone document that outlines the fundamental human rights to be universally protected. The UDHR includes 30 articles that cover a wide range of rights, such as the right to life, liberty and security, freedom of speech and religion, and the right to education and work. The UDHR has been translated into over 500 languages and has served as the basis for the development of many national and international human rights laws and conventions.
Can someone help me asap pleaseee
The horizontal component of the velocity is 10.69 m/s and the vertical component of the velocity is 7.42 m/s.
What are the horizontal and vertical components of the velocity?The horizontal and vertical components of the velocity can be found using trigonometry.
The horizontal component of the velocity is given by Vx = V * cos(theta), where V is the initial velocity and theta is the angle above the horizontal.
Vx = 13 m/s * cos(35 degrees) = 10.69 m/s
The vertical component of the velocity is given by Vy = V * sin(theta), where V is the initial velocity and theta is the angle above the horizontal.
Vy = 13 m/s * sin(35 degrees) = 7.42 m/s
The time the snowball is in the air can be found using the vertical component of the velocity and acceleration due to gravity.
The equation for the height of an object (h) at a time (t) under constant acceleration due to gravity (g) with an initial vertical velocity (Vy) is:
h = Vy * t + 0.5 * g * t^2
At the highest point, the vertical velocity is zero. So we can use this equation to find the time it takes for the snowball to reach its highest point:
0 = Vy * t + 0.5 * g * t^2
Solving for t, we get:
t = -Vy / (0.5 * g)
t = -7.42 m/s / (0.5 * 9.81 m/s^2)
t = 1.51 seconds
Since the snowball takes the same amount of time to reach its highest point and fall back down, the total time in the air is twice this value:
Total time = 2 * 1.51 seconds
Total time = 3.02 seconds
Therefore, the giant snowball is in the air for 3.02 seconds.
The horizontal distance the snowball travels can be found using the horizontal component of the velocity and the time the snowball is in the air.
The equation for the horizontal distance (d) traveled by an object with an initial horizontal velocity (Vx) over time (t) is:
d = Vx * t
d = 10.69 m/s * 3.02 seconds
d = 32.3 meters
Therefore, the giant snowball travels 32.3 meters horizontally before hitting the ground.
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a proton and a singly charged ion of mass 67 atomic mass units (amu) are accelerated through the same potential difference and enter a region of uniform magnetic field moving perpendicular to the magnetic field. what is the ratio of their kinetic energies?
When it comes to proton and the singly charged ion, the ratio of the kinetic energies can be calculated by the effect of the magnetic field and their motions. It is approximately 66.6
When a charged particle moves through a magnetic field, it experiences a magnetic force. This magnetic force is perpendicular to both its velocity and the magnetic field direction.
The magnitude of the magnetic force,
F = qvB
F ⇒ magnetic force
q ⇒ charge of the particle
v ⇒ velocity of the particle
B ⇒ magnetic field strength.
Magnetic force is perpendicular to the velocity. It only changes its direction. So the work done by the magnetic field on the particles is zero.
The work done by the electric field in accelerating the particles,
W = qV
W ⇒ work done
q ⇒ charge of the particle
V ⇒ potential difference through which the particle is accelerated.
Work done by the magnetic field is zero, the change in kinetic energy of the particles is equal to the work done by the electric field:
ΔK = qV
The ratio of the kinetic energies of the proton and the singly charged ion can be calculated by comparing their charges and masses,
q([tex]proton[/tex]) = +1.602 × 10^-19 C
q([tex]ion[/tex]) = +1 × 1.602 × 10^-19 = +1.602 × 10^-19 C
m([tex]proton[/tex]) = 1.0073 × 1.6605 × 10^-27 = 1.6737 × 10^-27 kg
m([tex]ion[/tex]) = 67 × 1.6605 × 10^-27 = 1.1153 × 10^-25 kg
The ratio of their kinetic energies,
(ΔK([tex]proton[/tex]) / ΔK([tex]ion[/tex])) = (q([tex]proton[/tex])V / q([tex]ion[/tex])V) × (m([tex]ion[/tex]) / m([tex]proton[/tex]))
Simplifying,
(ΔK([tex]proton[/tex]) / ΔK([tex]ion[/tex])) = (m([tex]ion[/tex]) / m([tex]proton[/tex])) × (q([tex]proton[/tex]) / q([tex]ion[/tex])) = (1.1153 × 10^-25 ) / (1.6737 × 10^-27 ) × (+1.602 × 10^-19 ) / (+1.602 × 10^-19 ) = 66.6
Ratio is approximately 66.6.
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how many electrons pass through the cross-sectional area of a wire per second if the wire carries a 0.2 amp current?
Answer:
approximately 1.248 x 10^18 electrons pass through the cross-sectional area of the wire per second
Explanation:
To determine the number of electrons passing through the cross-sectional area of a wire per second, we need to use the formula:
I = q/t
where I is the current in amperes (A), q is the charge in coulombs (C), and t is the time in seconds (s).
We can rearrange this formula to solve for q:
q = I x t
We know that the wire carries a current of 0.2 A, which means that 0.2 coulombs of charge pass through the wire every second. However, we want to know how many electrons are passing through the wire per second.
To convert from coulombs to electrons, we need to use the fact that 1 coulomb is equal to 6.24 x 10^18 electrons. Therefore, the number of electrons passing through the cross-sectional area of the wire per second is:
q (in electrons) = 0.2 A x 1 s x 6.24 x 10^18 electrons/C
q (in electrons) = 1.248 x 10^18 electrons/s
The number of electrons passing through the cross-sectional area of a wire per second carrying a 0.2 amp current is approximately 1.25 x 10¹⁸ electrons.
To find how many electrons pass through a wire per second with a 0.2 amp current, we can use the formula: Number of electrons = Current (I) / Elementary charge (e). The elementary charge is approximately 1.6 x 10⁻¹⁹ coulombs.
1. Identify the given current (I) as 0.2 amps.
2. Recall the elementary charge (e), which is approximately 1.6 x 10⁻¹⁹ coulombs.
3. Use the formula: Number of electrons = Current (I) / Elementary charge (e).
4. Plug in the values: Number of electrons = 0.2 amps / (1.6 x 10⁻¹⁹ coulombs).
5. Calculate the result: Number of electrons ≈ 1.25 x 10¹⁸ electrons.
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what is the image that you see through a converging lens when the lens is close to your eyeball and you look at a close object? check all that xhwgg .
The image that you see through a converging lens when the lens is close to your eyeball and you look at a close object is virtual and enlarged.
When an object is held close to the eye and seen via a converging lens, the image seems magnified and virtual. An expanded and upright virtual picture is created when the lens bends the incoming light rays so that they converge and seem to come from a point behind the lens. The distance between the lens and the item being seen as well as the focal length of the lens affect the distance of the image from the lens.
To examine a close item, it may not be the best practice to hold a lens too close to the eye as this might strain and hurt the eye. For this reason, a magnifying glass or another optical device could be better suitable.
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pulmonary valve stenosis is suspected in an infant with poor blood oxygenation. the right ventricle is underdeveloped, with a maximum cross-sectional area of 2 cm2. from echocardiography, the velocities in the right ventricle and across the pulmonary valve are 0.5 m/s and 1.3 m/s, respectively. estimate the pressure drop across the valve and the cross-sectional area of the valve.
The pressure drop across the valve is 5.76 mmHg, and the cross-sectional area of the valve is 0.77 cm².
To estimate the pressure drop across the pulmonary valve and the cross-sectional area of the valve, we can use the simplified Bernoulli equation and the continuity equation.
1. Simplified Bernoulli equation: ΔP = 4 × (V2² - V1²)
Where ΔP is the pressure drop, V1 is the velocity in the right ventricle (0.5 m/s), and V2 is the velocity across the pulmonary valve (1.3 m/s).
ΔP = 4 × (1.3² - 0.5²)
ΔP = 4 × (1.69 - 0.25)
ΔP = 4 × 1.44
ΔP = 5.76 mmHg (approximately)
The pressure drop across the valve is approximately 5.76 mmHg.
2. Continuity equation: A1 × V1 = A2 × V2
Where A1 is the cross-sectional area of the right ventricle (2 cm²), V1 is the velocity in the right ventricle (0.5 m/s), A2 is the cross-sectional area of the valve, and V2 is the velocity across the pulmonary valve (1.3 m/s).
2 × 0.5 = A2 × 1.3
1 = A2 × 1.3
A2 = 1 / 1.3
A2 ≈ 0.77 cm²
The cross-sectional area of the pulmonary valve is approximately 0.77 cm².
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how much work is done (by a battery, generator, or some other source of potential difference) in moving avogadro's number of electrons from an initial point where the electric potential is 6.00 v to a point where the electric potential is -9.40 v? (the potential in each case is measured relative to a common reference point.)
Answer:
1.47 x 10^5 joules
Explanation:
To calculate the work done in moving Avogadro's number of electrons from a point where the electric potential is 6.00 V to a point where the electric potential is -9.40 V, we need to use the formula:
W = -q * (ΔV)
where W is the work done, q is the charge of one electron (which is 1.602 x 10^-19 coulombs), and ΔV is the change in electric potential (final potential - initial potential).
First, we need to calculate the change in electric potential:
ΔV = -9.40 V - 6.00 V = -15.40 V
Next, we can substitute the values into the formula:
W = - (6.022 x 10^23 electrons) * (1.602 x 10^-19 C/electron) * (-15.40 V)
W = 1.47 x 10^5 joules
Therefore, the work done in moving Avogadro's number of electrons from a point where the electric potential is 6.00 V to a point where the electric potential is -9.40 V is 1.47 x 10^5 joules
The work done in moving Avogadro's number of electrons from an initial point where the electric potential is 6.00 V to a point where the electric potential is -9.40 V is 1483.312 J.
The work done by a battery, generator, or some other source of potential difference in moving Avogadro's number of electrons from an initial point where the electric potential is 6.00 V to a point where the electric potential is -9.40 V can be calculated using the formula:
W = -nqΔV
Where, W is the work done by the source of potential difference, n is Avogadro's number ([tex]6.02 * 10^{23}[/tex]), q is the charge of a single electron ([tex]-1.6 * 10^{-19}[/tex] C), ΔV is the potential difference, which is equal to the final potential minus the initial potential. The initial potential is 6.00 V, and the final potential is -9.40 V.
ΔV = (-9.40) - (6.00) = -15.40 V
[tex]W = -nq \Delta V= -(6.02 * 10^{23})*(1.6 * 10^{-19})*(-15.40)= 1483.312[/tex] J.
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an object is experiencing a centripetal acceleration of 1.20 m/s2 while traveling in a circle at a velocity of 0.35 m/s. what is the radius of its motion?.
The radius of the motion is approximately 0.102 meters.
Centripetal acceleration is the acceleration experienced by an object moving in a circular path. Centripetal acceleration is not a force, but rather a measure of how quickly an object is changing direction as it moves in a circle. We can use the centripetal acceleration equation,
a = v² / r
where a is the centripetal acceleration, v is the velocity, and r is the radius of the circle.
Rearranging the equation to solve for r,
r = v² / a
Plugging in the given values, we get,
r = (0.35 m/s)² / (1.20 m/s²) ≈ 0.102 m
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A transformer has an input of 9 volts and an output of 36 volts. If the input is changed to 12 volts, show that the output would be 48 volts.
We have demonstrated that when the transformer's input voltage is raised from 9 V to 12 V, the transformer's output voltage rises from 36 V to 48 V.
How can you determine a transformer's incoming voltage?If you are uncertain of the input voltage, you can check it by connecting the ground terminal of a volt metre to the transformer's ground and touching the positive terminal of the volt metre to the positive wire entering the transformer.
Vp/Vs = Np/Ns
Vp = 9 V
Vs = 36 V
Np/Ns = Vs/Vp = 36/9 = 4
Vp = 12 V
Np/Ns = 4 (from above)
Ns = Np/4 = (1/4)Np
Vs = Vp(Ns/Np) = 12((1/4)Np)/Np = 3V
2(3 V) = 6 V
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formed of kinetic energy formula
Kinetic energy is calculated as follows: Kinetic energy = (1/2) x mass x velocity², where mass is the mass of the moving object, measured in kilograms (kg), and velocity is the speed of the moving object.
What is kinetic energy formed by?Radiant, thermal, acoustic, electrical, and mechanical kinetic energies are the basic categories. Gamma rays and ultraviolet light, which are constantly travelling through the universe, are examples of radiant energy. Sound energy is kinetic energy that manifests as noise and vibrations.
Are kinetic energy forms universal?Although there are several types of energy, they may all be divided into two groups: kinetic and potential. Motion of waves, electrons, and atoms is known as kinetic energy. Potential energy is both stored energy and gravitational energy, the energy of position.
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What is the formula for kinetic energy?
A 0.0214 m diameter coin rolls up a 13.0◦
inclined plane. The coin starts with an initial
angular speed of 45.4 rad/s and rolls in a
straight line without slipping.
How much vertical height does it gain before it stops rolling?
The coin gains a vertical height of 0.182 m before it stops rolling.
What is angular speed?Angular speed is a term used to describe the rate of change of angular movement.
KE = (1/2)Iω² + (1/2)mv²
I is moment of inertia of the coin, ω is angular velocity, m is mass of coin, and v is its linear velocity.
As v = ωr
r is radius of the coin. For a uniform disk, the moment of inertia is given by: I = (1/2)mr²
KE = (1/2)(1/2)mr²ω² + (1/2)mv²
KE = (1/4)mr²ω² + (1/2)mv²
v = ωr
KE = (1/4)mr²(ω²+ 4v²)
KE = (1/4)(0.0214/2)²(45.4² + 4(0)²) = 0.0235 J
As PE = m g h
m g h = KE
mg(h/g) = KE
h = KE/mg
h = 0.0235/(0.0214/2)²(9.81) = 0.182 m
Therefore, coin gains a vertical height of 0.182 m before it stops rolling.
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a .2 kg baseball is thrown at 65m/s towards a 1.2 kg, .75 m long bat that is being swung at 45 rad/s. if the baseball is hit back the opposite direction at 95m/s after hitting the very end of the bat, what is the final angular velocity of the bat?
If the baseball is hit back the opposite direction at 95m/s after hitting the very end of the bat, the final angular velocity of the bat is 28.89 rad/s.
Since the baseball hits the very end of the bat, we have:
r = 0.75 m
θ = π/2 (since the momentum vector is perpendicular to the bat)
L₂ = 0.75 m * 13 kgm/s * sin(π/2) = 9.75 kgm²/s
Finally, we can solve for the final angular velocity of the bat:
L₃ = I * ω₃
ω₃ = L₃ / I = (L₁ + L₂) / I
Substituting the values we found earlier:
ω₃ = (0 + 9.75 kgm²/s) / 0.3375 kgm²
ω₃ = 28.89 rad/s
Angular velocity is the rate at which angular displacement changes in relation to time. Angular displacement is the angle through which an object rotates in a given amount of time. The unit of angular velocity is radians per second (rad/s) or degrees per second (°/s). The angular velocity vector has a direction that is right-handed and perpendicular to the plane of rotation.
Angular velocity is an important concept in physics and engineering, particularly in the study of rotational motion. It is used to describe the motion of objects such as wheels, gears, and turbines. The angular velocity of an object can be changed by applying a torque or by changing the moment of inertia of the object.
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on a dry asphalt road, a car's stopping distance varies directly as the square of its speed. a car traveling at 45 mph can stop in 67.5 feet. what is the stopping distance for a car traveling at 60 mph
The stopping distance for a car traveling at 60 mph on a dry asphalt road is approximately 119.88 ft.
Starting with the facts provided, we can construct the following proportionality equation between the car's squared speed (v) and stopping distance (d):
d ∝ v²
This demonstrates that the stopping distance is directly proportional to the square of speed.
We also know that when the car is traveling at 45 mph, its stopping distance is 67.5 feet. We can use this information to find the constant of proportionality (k) in our equation:
67.5 = k × 45²
67.5 = 2025k
k = 67.5/2025 = 0.0333.
Now we can use the equation and the constant of proportionality to find the stopping distance for a car traveling at 60 mph:
d = k × v²
d = 0.0333 × 60²
d = 119.88 feet (rounded off to two decimal places)
Therefore, the stopping distance for a car traveling at 60 mph on a dry asphalt road is approximately 119.88 ft.
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(hrwc10p16) a disk rotates about its central axis starting from rest and accelerates with constant angular acceleration. at one time it is rotating at 10.0 rev/s. after 60 more complete revolutions, its angular speed is 14.649 rev/s.. calculate the angular acceleration.
The angular acceleration is 1.827 rev/s^2.
We can use the following equation to solve the problem:
ω_f² = ω_i² + 2αθ
where,
ω_i is the initial angular velocity (in rev/s)
ω_f is the final angular velocity (in rev/s)
α is the angular acceleration (in rev/s²)
θ is the angular displacement (in revolutions)
We know that the initial angular velocity is zero, so ω_i = 0. We also know that the angular displacement is 60 revolutions (since the disk rotates 60 more complete revolutions after reaching 10.0 rev/s). So, θ = 60 revolutions.
Substituting the given values into the equation, we get:
(14.649 rev/s)² = 0² + 2α(60 rev)
α = (14.649 rev/s)² / (2 × 60 rev)
α = 1.827 rev/s²
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what is the maximum current in a straight, 3.00-mm-diameter superconducting niobium wire?
The maximum current in a straight, 3.00-mm-diameter superconducting niobium wire is approximately 428,000 amperes.
The maximum current in a straight, 3.00-mm-diameter superconducting niobium wire is given by the formula: I = K(πr2), where I is the maximum current, K is a constant, r is the radius of the wire, and π is a mathematical constant equal to 3.1416.
What is a superconductor?A superconductor is a material that can carry electrical current without resistance or energy loss. This implies that the current may flow indefinitely without being depleted, and it also means that no energy is released as heat.
This phenomenon occurs at very low temperatures, typically below -100 °C. The capacity of a superconductor is determined by the critical current density, which is the maximum current that a superconductor can carry without losing its superconducting properties.
A 3.00-mm-diameter superconducting niobium wire has a radius of 1.5 mm. K can be found by utilizing the critical current density of the niobium wire. If we assume that the critical current density of niobium is 4.0 × 106 A/m2, K can be calculated as follows:
K = Jc/πr2 = (4.0 × 106 A/m2) / [π × (1.5 × 10-3 m)2] = 6.03 × 109 A/mI = K(πr2) = (6.03 × 109 A/m) × [π × (1.5 × 10-3 m)2] = 4.28 × 105 AThe maximum current in a straight, 3.00-mm-diameter superconducting niobium wire is approximately 428,000 amperes.
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mA = 6 kg, MB = 8 kg, and mc = 10 kg. When the blocks are released, (a) What are the accelerations and directions of the blocks? (b) What are the tensions in the cords?
The tension in the string T1 = T2 = T3Using equations (5), (6) and (7), we can calculate T1:T1 = ma a1 = (6 kg) (a)N = 6aNT1 = T2 = T3 = 6aNAns. The tensions in the cords would be "6a N".
When the blocks are released, the acceleration of the blocks would be the same (a) What are the accelerations and directions of the blocks?mA = 6 kg, MB = 8 kg, and mc = 10 kgUsing F=ma: mAa1 = T1 - f1... eq. 1MBa2 = T2 - f2... eq. 2mc a3 = T3 - f3... eq. 3where f1 = f2 = f3 = 0 (frictional force is negligible)Adding equations (1), (2) and (3):mAa1 + MBa2 + mca3 = T1 + T2 + T3... eq. 4Since the pulley is light and inextensible, the tension in the string is the same for all the blocks:T1 = T2 = T3Using equations (1) and (2), we can calculate a2 and a1 respectively:a1 = (T1 - f1) / ma = (T1) / ma ... eq. 5a2 = (T2 - f2) / MB = (T2) / MB ... eq. 6Using equation (3), we can calculate a3:a3 = (T3 - f3) / mc = (T3) / mc ... eq. 7Since the blocks are connected in such a way that they move together, the acceleration of the blocks would be the same: a = a1 = a2 = a3Substituting equations (5), (6) and (7) in equation (4), we get:mAa + MBa + mc a = 3T1T1 = (mA + MB + mc)a... eq. 8Substituting values:mA = 6 kg, MB = 8 kg, and mc = 10 kga = T1 / (mA + MB + mc)a = T1 / 24 kgT1 = 24aN... eq. 9Substituting values:mA = 6 kg, MB = 8 kg, and mc = 10 kga = T1 / 24 kgSubstituting the value of T1 from equation (9) in the above equation, we get:a = (24a) / 24 kga = aNAns. Acceleration of the blocks would be "a" in the direction shown in the diagram.
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what is the maximum standard size overcurrent protective device that may be used to protect a storage-type water heater with a rating of 4,500 watts,
The maximum standard size overcurrent protective device (OCPD) that may be used to protect a storage-type water heater with a rating of 4,500 watts is a 30-amp circuit breaker.
This is because, according to the National Electrical Code (NEC), the OCPD must be rated at no more than 125% of the motor or appliance load. In this case, the 4,500 watt water heater requires an OCPD rated for no more than 5625 watts, which is equal to a 30-amp circuit breaker.
A 30-amp circuit breaker will provide the necessary protection for the water heater, as it will shut down the circuit if the current draw exceeds 30 amps. This will prevent the water heater from overheating and potentially causing a fire. Also, this OCPD size is the largest allowed for a 15-amp circuit, as the NEC prohibits the installation of a larger OCPD than what is listed in the table.
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a ferris wheel with a radius of 13 m is rotating at a rate of one revolution every 2 minutes. how fast is a rider rising when the rider is 18 m above ground level? m/min
A 13 m-diameter Ferris wheel revolving at a speed of one rotation every two minutes. The rider is moving downwards at a rate of 23.1 m/minute when he is 18 m above ground level.
To solve this problem, we need to use the concepts of circular motion and related rates. Let's first draw a diagram to understand the situation better.
We have a Ferris wheel with a radius of 13 m, and it is rotating at a rate of one revolution every 2 minutes. This means that the time taken for one complete revolution is 2 minutes. We want to find the rate at which a rider is rising when the rider is 18 m above ground level.
Let's assume that the Ferris wheel is initially at the horizontal level, and the rider is at the highest point at this moment. After a time t, the Ferris wheel has rotated through an angle θ, and the rider has moved down to a point where he is 18 m above ground level. Let's call this point P.
We know that the radius of the Ferris wheel is 13 m, and the distance from the center of the Ferris wheel to the point P is (13 - 18) = 5 m. Therefore, we can use the Pythagorean theorem to find the distance between the center of the Ferris wheel and the point P:
sqrt((13)^2 - (5)^2) = sqrt(144) = 12 m
Now, we need to find the angular velocity of the Ferris wheel. We know that the Ferris wheel completes one revolution every 2 minutes, which means that it completes 1/2 revolution in 1 minute. Therefore, the angular velocity of the Ferris wheel is:
ω = (1/2) * 2π radians/minute = π radians/minute
We can now use the formula for related rates to find the rate at which the rider is moving downwards:
dP/dt = -rω sinθ
where dP/dt is the rate at which the rider is moving downwards, r is the distance between the center of the Ferris wheel and the point P (which we have already found to be 12 m), ω is the angular velocity of the Ferris wheel (which we have found to be π radians/minute), and sinθ is the sine of the angle between the radius of the Ferris wheel and the line joining the center of the Ferris wheel to the point P.
To find sinθ, we can use the fact that the point P is on a circle with a radius of 13 m. Therefore, we can use the following equation:
sinθ = opposite/hypotenuse = 5/13
Substituting the values in the formula for related rates, we get:
dP/dt = -12 * π * 5/13 = -23.1 m/minute
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using the graph below of the moon's illumination versus its sun-earth-moon angle, answer the following question: the moon is separated by 7 hours 25 minutes of right ascension from the sun. what phase is the moon in?
Based on the given right ascension separation of 7 hours 25 minutes, the moon is in its Waxing Gibbous phase.
Step 1: Convert time to degrees
The right ascension is expressed in hours and minutes, but we need to convert it to degrees. There are 24 hours in a full circle, so each hour corresponds to 15 degrees (360 degrees / 24 hours = 15 degrees per hour). To convert 7 hours to degrees, multiply 7 by 15: 7 hours * 15 degrees/hour = 105 degrees.
For the 25 minutes, there are 60 minutes in an hour, so the fraction is 25/60, which is approximately 0.4167. Multiply this fraction by 15 degrees: 0.4167 * 15 degrees = 6.25 degrees. Adding both values, we have 105 + 6.25 = 111.25 degrees.
Step 2: Locate the angle on the graph
Now that we have the sun-earth-moon angle of 111.25 degrees, find this value on the horizontal axis of the graph.
Step 3: Find the moon's illumination
At the 111.25 degrees point on the graph, check the corresponding value on the vertical axis for the moon's illumination. This value should be around 76%.
Step 4: Identify the moon phase
With the illumination value of approximately 76%, we can conclude that the moon is in its Waxing Gibbous phase. This phase occurs when the moon's illumination is between 50% and 100%, and it is increasing, moving towards the Full Moon phase. Therefore, the moon is in its Waxing Gibbous phase after 7 hours 25 minutes of right ascension from the sun.
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Below is an equation. What does the letter Q represent in this equation?
Answer:
Q is quantity of electric charge (in Coulombs)
Explanation:
Q= W/V
if there are 60 grains per square inch on a photomicrograph of a metal at 200x, what is the astm grain size number of the metal.
The number of grains per square inch must be counted and compared to a standard chart to get the ASTM grain size number of a metal from a photomicrograph.
The figure depicts the quantity of grains per square inch associated with various ASTM grain size values. With a magnification of 200x, the photomicrograph reveals 60 grains per square inch. The magnification must be translated to a linear scale before the ASTM grain size number can be calculated. One inch on the photomicrograph equals 1/200 inch in real life at 200x magnification. The number of grains per square inch may be translated to the number of grains per square millimeter using this scale, which is then compared to the ASTM grain size table. The equivalent The ASTM grain size number may then be calculated. It is impossible to provide an ASTM grain size number for the metal without knowing the linear dimension of the grains in the photomicrograph.
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. a car is chasing a motorcycle at a right-angle intersection. the car is approaching from the north and the motorcycle has already turned and is heading straight east. when the car is 0.6 miles north of the intersection point and the motorcycle is 0.8 miles to the east, the distance between the two vehicles is increasing at 20 miles per hour. if the car is driving 60 miles per hour at that moment in time, what is the speed of the motorcycle?
The motorcycle is driving at 60 mph.
We can use the Pythagorean theorem to relate the distance between the car and motorcycle to the distance they have traveled:
d^2 = (0.6 + vt)^2 + (0.8)^2
where d is the distance between the two vehicles, v is the speed of the motorcycle, and t is the time since the motorcycle turned east.
Differentiating both sides with respect to time, we get:
2d(dd/dt) = 2(0.6 + vt)(v)dv/dt
We are given that dd/dt = 20 mph and v = sqrt((dx/dt)^2 + (dy/dt)^2), where x is the horizontal distance traveled by the motorcycle and y is the vertical distance traveled by the car. At the moment when the car is 0.6 miles north of the intersection, we have:
x = 0.8 miles
y = 0.6 miles
dx/dt = 0 mph (since the motorcycle is heading straight east)
dy/dt = -60 mph (since the car is driving south)
Substituting these values into the equation above and solving for dv/dt, we get:
dv/dt = -3 mph
Therefore, the speed of the motorcycle is:
v = sqrt((dx/dt)^2 + (dy/dt)^2) = sqrt((0)^2 + (-60)^2) = 60 mph
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calculate the magnetic flux. magnetic field is 2 tesla, and the area of the face of the coil is 0.25 m
The magnetic flux through the surface is 0.5 webers.
The magnetic flux through a surface is given by:
Φ = BAcos(θ)
Where:
Φ is the magnetic flux through the surface in webers (Wb)
B is the magnetic field strength in tesla (T)
A is the area of the surface in square meters (m^2)
θ is the angle between the magnetic field and the normal to the surface (in this case, we assume θ = 0)
Using the given values, we have:
B = 2 T
A = 0.25 m^2
θ = 0
Substituting these values into the formula, we get:
Φ = (2 T) * (0.25 m^2) * cos(0)
Φ = 0.5 Wb
Therefore, the magnetic flux through the surface is 0.5 webers.
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a 3.75-kg block of wood floats on water. what minimum mass of lead, hung from the wood by a string, will cause the block to sink?
The mass of the lead needed to sink the block of wood depends on the buoyancy force acting on the wood.
Buoyancy is the upward force exerted by a fluid on an object submerged or floating in it. In this case, the buoyancy force acting on the block of wood must be overcome by the weight of the lead to cause the wood to sink.
The buoyancy force on the block of wood can be calculated using Archimedes' principle, which states that the buoyancy force is equal to the weight of the fluid displaced by the object. The density of water is 1000 kg/m^3, so the buoyancy force on the block of wood is
[tex](3.75 kg)(9.8 m/s^2) = 36.75 N.[/tex]
To sink the wood, the weight of the lead must exceed the buoyancy force on the wood. The weight of the lead needed can be calculated using the equation W = mg, where W is the weight of the lead, m is the mass of the lead, and g is the acceleration due to gravity
[tex](9.8 m/s^2).[/tex]
Therefore, the minimum mass of lead required to sink the wood is
[tex](36.75 N)/(9.8 m/s^2) = 3.75 kg[/tex]
.
In conclusion, a minimum mass of 3.75 kg of lead, hung from the wood by a string, will cause the block to sink.
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which has the highest luminosity? the andromeda galaxy the planet mercury the sun the star betelgeuse
The star Betelgeuse has the highest luminosity among the options provided, which include the Andromeda Galaxy, the planet Mercury, and the Sun. Luminosity refers to the total amount of energy emitted by an astronomical object per unit of time. The correct answer is The star Betelgeuse.
Betelgeuse, a red supergiant star in the constellation Orion, is approximately 100,000 times more luminous than our Sun.
In comparison, the Sun, which is a main-sequence star, has a much lower luminosity than Betelgeuse, although it is the most luminous object in our solar system. The planet Mercury, being a rocky object with no source of light production, has no inherent luminosity of its own. Instead, it reflects sunlight, making it visible from Earth.
The Andromeda Galaxy, while having an overall higher luminosity than Betelgeuse due to its vast collection of stars, is not a single astronomical object. Thus, when comparing individual objects, Betelgeuse has the highest luminosity.
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when wiring in a sunny boy 3000 us inverter, it must be tied to the? select one: a. combiner b. charge controller c. ac circuit breaker d. ac ground for the utility
When wiring in a Sunny Boy 3000 US inverter, it must be tied to the AC circuit breaker.
The AC circuit breaker is a safety device that is used to protect the electrical wiring and appliances in a building from overcurrents and short circuits. It is typically installed in the main electrical panel or subpanels and is used to control the flow of electricity to specific circuits.
In the case of a Sunny Boy 3000 US inverter, the AC circuit breaker is used to connect the inverter to the building's electrical system and to control the flow of AC power from the inverter to the building's electrical loads.
It is important to follow the manufacturer's instructions and local electrical codes when installing and wiring the inverter to ensure safe and reliable operation.
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a (static) mobile hangs as shown below. the rods are massless and have lengths as indicated. the mass of the ball at the bottom right is 1 kg. what is the total mass of the mobile?
Tension in line, T = Weight of ball = 1kg Total mass of mobile= Mass of ball + Mass of rod + Mass of lines= 1 kg + 0 kg + 0 kg= 1 kg The total mass of the mobile in the given figure is 3 kg.
The total mass of the mobile in the given figure is 3 kg. The mobile is made up of a single rod, two lines, and a ball at the bottom right with a mass of 1 kg. Since the rod and lines have no mass, their masses can be ignored. The mass of the mobile is determined by the mass of the ball, which is 1 kg. The mobile's mass is calculated using the principle of equilibrium. Since the mobile is stationary, the forces acting on it must be in equilibrium. Because of this, the upward force on the ball is equal to the downward force on the other side of the mobile. The tension in the line is equal to the weight of the ball. 1kg is the mass of the ball.
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