Therefore, the ranking of the spaceships on the basis of their length from largest to smallest as measured by their respective captains is: Lo 400 m U = 0.2c, Lo 200 0.8c, Lo 200 U = 0.4c, Lo 100 m U = 0.8c, Lo 100 m 0.4c, Lo 100 m U = 0.9c.
Rank from largest to smallest:
1. Lo 400 m U = 0.2c
2. Lo 200 U = 0.4c
3. Lo 100 m 0.4c
4. Lo 200 0.8c
5. Lo 100 m U = 0.8c
6. Lo 100 m U = 0.9c
Rank these spaceships based on their length as measured by their respective captains. The largest spaceship is the Lo 400 m U = 0.2c, followed by the Lo 200 U = 0.4c and then the Lo 100 m 0.4c. Next is the Lo 200 0.8c, followed by the Lo 100 m U = 0.8c, and finally the smallest spaceship is the Lo 100 m U = 0.9c.
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integrate both sides of the equation dq(t)q(t)−ce=−dtrc to obtain an expression for q(t) . express your answer in terms of any or all of e , r , t , and c . enter exp(x) for ex .
The expression for q(t) is q(t) = exp(cet - dtrct + C₁), in terms of e, r, t, and c.
To integrate both sides of the equation dq(t)q(t) - ce = -dtrc and obtain an expression for q(t) in terms of e, r, t, and c, follow these steps,
1. Rewrite the equation as: (dq(t)/q(t)) - (ce) = -dtrc
2. Integrate both sides with respect to t:
∫[(1/q(t))dq(t) - ce dt] = ∫[-dtrc dt]
3. Perform the integration:
ln|q(t)| - cet = -dtrct + C₁ (where C₁ is the constant of integration)
4. Isolate ln|q(t)|:
ln|q(t)| = cet - dtrct + C₁
5. Take the exponential of both sides to solve for q(t):
q(t) = exp(cet - dtrct + C₁)
In terms of e, r, t, and c, the expression for q(t) is therefore q(t) = exp(cet - dtrct + C1).
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The batteries of a submerged non-nuclear submarine supply 1000 A at full speed ahead. How long does it take to move Avogadro's number (6.02×1023) of electrons at this rate?
It would take 96.32 seconds (or just over 1.5 minutes) to move Avogadro's number of electrons at a current of 1000 A.
To calculate the time it takes to move Avogadro's number of electrons at a current of 1000 A, we first need to determine the charge of a single electron. The charge of an electron is approximately 1.6 × 10^-19 coulombs.
Avogadro's number of electrons is 6.02 × 10^23. Therefore, the total charge of Avogadro's number of electrons is:
6.02 × 10^23 electrons x 1.6 × 10^-19 coulombs/electron = 9.632 × 10^4 coulombs
We know that the batteries of the submarine supply a current of 1000 A, which means they provide a charge of 1000 coulombs per second. Therefore, the time it takes to move the charge of Avogadro's number of electrons at this current is:
Time = Total Charge / Current
Time = 9.632 × 10^4 coulombs / 1000 A
Time = 96.32 seconds
So it would take 96.32 seconds (or just over 1.5 minutes) to move Avogadro's number of electrons at a current of 1000 A.
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An outside loudspeaker (considered a small source) emits soundwaves with a power output of 125 W.(a) Find the intensity 8.0 m from the source.W/m2(b) Find the intensity level in decibels at that distance.dB(c) At what distance would you experience the sound at thethreshold of pain, 120 dB?m
(a) To find the intensity 8.0 m from the source, we can use the formula:
Intensity = Power / (4πr^2)
where r is the distance from the source. Plugging in the values, we get:
Intensity = 125 / (4π x 8^2)
Intensity = 0.061 W/m^2
(b) To find the intensity level in decibels (dB), we can use the formula:
Intensity level (dB) = 10 log10 (I/I0)
where I is the intensity of the sound wave and I0 is the reference intensity, which is 1 x 10^-12 W/m^2. Plugging in the values, we get:
Intensity level (dB) = 10 log10 (0.061/1 x 10^-12)
Intensity level (dB) = 104.6 dB
(c) To find the distance at which the sound would be at the threshold of pain (120 dB), we can rearrange the formula from part (b) to solve for the distance:
distance = sqrt(Power / (4π x I0 x 10^(IL/10)))
where IL is the intensity level in dB (which is 120 dB) and all other variables are the same as before. Plugging in the values, we get:
distance = sqrt(125 / (4π x 1 x 10^-12 x 10^(120/10)))
distance = 0.038 m or 3.8 cm
Therefore, at a distance of 3.8 cm from the loudspeaker, the sound would be at the threshold of pain.
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A 20.0kg child is on a swing that hangs from 3.00m - long chains, as shown in the figure.(Figure 1) What is her speed v1 at the bottom of the arc if she swings out to a 45.0 degree angle before reversing direction? Express your answer using two significant figures.
the child's speed at the bottom of the arc is approximately 2.94 m/s.
To determine the speed (v1) of the child at the bottom of the arc, we'll use the conservation of mechanical energy principle. The initial potential energy at the highest point of the swing will convert into kinetic energy at the lowest point of the arc.
Step 1: Calculate the initial height (h) above the lowest point of the arc
h = L - L*cos(angle) = 3m - 3m*cos(45°) = 3m - 3m*(√2/2) = 3m(1 - √2/2)
Step 2: Calculate the initial potential energy (PE) at the highest point
PE = m*g*h = 20kg * 9.81m/s² * 3m(1 - √2/2)
Step 3: At the lowest point, the kinetic energy (KE) equals the initial potential energy (PE)
KE = 0.5*m*v1² = PE
0.5*20kg*v1² = 20kg * 9.81m/s² * 3m(1 - √2/2)
Step 4: Solve for v1
v1² = 2 * 9.81m/s² * 3m(1 - √2/2)
v1 = √[2 * 9.81m/s² * 3m(1 - √2/2)]
v1 ≈ 2.94 m/s (using two significant figures)
So, the child's speed at the bottom of the arc is approximately 2.94 m/s.
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the child's speed at the bottom of the arc is approximately 2.94 m/s.
To determine the speed (v1) of the child at the bottom of the arc, we'll use the conservation of mechanical energy principle. The initial potential energy at the highest point of the swing will convert into kinetic energy at the lowest point of the arc.
Step 1: Calculate the initial height (h) above the lowest point of the arc
h = L - L*cos(angle) = 3m - 3m*cos(45°) = 3m - 3m*(√2/2) = 3m(1 - √2/2)
Step 2: Calculate the initial potential energy (PE) at the highest point
PE = m*g*h = 20kg * 9.81m/s² * 3m(1 - √2/2)
Step 3: At the lowest point, the kinetic energy (KE) equals the initial potential energy (PE)
KE = 0.5*m*v1² = PE
0.5*20kg*v1² = 20kg * 9.81m/s² * 3m(1 - √2/2)
Step 4: Solve for v1
v1² = 2 * 9.81m/s² * 3m(1 - √2/2)
v1 = √[2 * 9.81m/s² * 3m(1 - √2/2)]
v1 ≈ 2.94 m/s (using two significant figures)
So, the child's speed at the bottom of the arc is approximately 2.94 m/s.
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using the relationship obtained in part f, evaluate the acceleration of the model rocket at times t0=0.0s , t1=1.0s , and t2=2.0s .
The rocket acceleration at time t2 = 2.0 s equals -12.5 m/s2. Noting the negative sign, it should be noted that the rocket is currently decelerating (slowing down).
evaluate the model rocket's acceleration sometimes.We can use the following equation to get the acceleration at each time because we know the rocket's velocity at times t0, t1, and t2 from section (e):
a = (v2 - v1) / (t2 - t1)
where the speeds at intervals t1 and t2, respectively, are denoted by v1 and v2.
The rocket's velocity is v0 = 0.0 m/s at time t0 = 0.0 s, hence the aforementioned equation cannot be used to get the acceleration. However, we can get the acceleration at those points by using the beginning velocity and ultimate velocity at t1 = 1.0 s and t2 = 2.0 s, respectively.
At t1 = 1.0 s:
v1 = 10.0 m/s
v2 = 25.0 m/s
The formula for an is: a = (v2 - v1) / (t2 - t1) = (25.0 m/s - 10.0 m/s) / (2.0 s - 1.0 s) = 15.0 m/s2.
Consequently, the rocket accelerates at a rate of 15.0 m/s2 at time t1 = 1.0 s.
At t2 = 2.0 s:
v1 = 25.0 m/s
v2 = 0.0 m/s
t1 = 2.0 s t2 = 4.0 s
a = (v2 - v1)/(t2 - t1) = (0.0 - 25.0 m/s)/(4.0 - 2.0 s) = -12.5 m/s2
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Question 3 of 15
circular motion occurs when an object is traveling with
constant speed in a circle.
The concept of "centripetal motion" does not exist. The word "centripetal," which exclusively refers to forces or accelerations that are directed toward a center, literally means "seeking the center."
Circular motionAn object moving in a circle must inevitably accelerate toward the center of the circle; by "accelerate," we merely mean that the item's velocity is changing, which it must do in order to prevent the object from flying off in an unintended direction.Simple geometry can be used to demonstrate that, in the exceptional situation of an item moving in a circle at a constant speed, the acceleration must necessarily point in the direction of the center and be equal in magnitude to the square of the speed divided by the radius of the circle. In the more general scenario of an object travellingFor more information on circular motion kindly visit to
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A circular loop rotates at a constant speed about an axle through the center of the loop. The figure below shows an edge view and defines the angle o, which increases from 0° to 360° as the loop rotates. There is a uniform, background magnetic field. For what range of angles of o is the induced current in the loop clockwise when viewed from below? For what range of angles of o is the induced current in the loop counterclockwise when viewed from below?
As a result, when viewed from below, the induced current in the loop is clockwise for angles between 0° and 180° and counterclockwise for angles between 180° and 360°.
The magnetic flux through the loop shifts in the direction indicated by the arrow as the loop revolves counterclockwise. Lenz's law states that the magnetic field created by the loop's generated current will resist this change in flux.
When seen from below, the induced current will flow counterclockwise over the range of angles from 0° to 180°. When viewed from below, the induced current will be counterclockwise over the 180° to 360° range of angles. This is owing to the fact that the magnetic flux has changed due to rotation and is now rotating clockwise.
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Correct Question:
A circular loop rotates at a constant speed about an axle through the center of the loop. The figure below shows an edge view and defines the angle o, which increases from 0° to 360° as the loop rotates. There is a uniform, background magnetic field. For what range of angles of o is the induced current in the loop clockwise when viewed from below? For what range of angles of o is the induced current in the loop counterclockwise when viewed from below?
How long (in ns) does it take light to travel 0.800m in vaccum?
Express your answer in the appropriate units
It takes approximately 2.67 ns for light to travel 0.800 meters in a vacuum.
Hi! To determine how long it takes light to travel 0.800 meters in a vacuum, we'll use the formula:
time = distance / speed of light
The speed of light in a vacuum is approximately 299,792,458 meters per second (m/s). First, we'll convert the speed of light to meters per nanosecond (m/ns):
1 m/s = 1 × 10⁻⁹ m/ns
299,792,458 m/s × (1 × 10⁻⁹ m/ns) = 0.299792458 m/ns
Now, we can calculate the time it takes light to travel 0.800 meters in a vacuum:
time = 0.800 m / 0.299792458 m/ns = 2.6682107 ns
So, it takes approximately 2.67 ns for light to travel 0.800 meters in a vacuum.
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how far does a rocket travel if it goes 100 m/s for 50 seconds?
a. 5000 meters
b. 500 meters
c. 2 meters
d. 0.5 meters
Answer: A
Explanation:
A woman weighing 60 kg drinks the equivalent of 60 g of ethanol. Her peak plasma concentration was found to be 1.91 g / L. Assuming that 55% of the woman's weight is water, what is the volume of water per kilogram?
A). 0.55 L / kg
B) 0.52 L / kg
C) 55.0 L / kg
D) none of these
Volume of water per kilogram is 0.55 L
To find the volume of water per kilogram, we first need to find the total volume of water in the woman's body. We know that 55% of her weight is water, so:
Total water volume = 0.55 x 60 kg = 33 L
Next, we need to subtract the volume of ethanol from the total water volume to find the volume of water per kilogram:
Ethanol volume = 60 g ÷ 0.789 g/mL = 75.96 mL = 0.07596 L
Total water volume - ethanol volume = 33 L - 0.07596 L = 32.924 L
Now we can divide the total water volume by the woman's weight to find the volume of water per kilogram:
Volume of water per kilogram = 32.924 L ÷ 60 kg = 0.548 L/kg
So the answer is A) 0.55 L/kg, rounded to the nearest hundredth.
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A bullet of mass 0.093 kg traveling horizontally at a speed of 200 m/s embeds itself in a block of mass 3 kg that is sitting at rest on a nearly frictionless surface.a) What is the speed of the block after the bullet embeds itself in the block?b) Calculate the kinetic energy of the bullet plus the block before the collision:c) Calculate the kinetic energy of the bullet plus the block after the collision:d) Calculate the rise in thermal energy of the bullet plus block as a result of the collision:
The speed of the block after the bullet embeds itself in the block is 6.01 m/s. The kinetic energy of the bullet plus the block before the collision is 1866 J. The kinetic energy of the bullet plus the block after the collision is 111.3 J. The rise in thermal energy of the bullet plus block as a result of the collision is 1755.7 J.
A). The final momentum of the system is:
[tex]p_f[/tex] = (m_bullet + m_block) * [tex]v_f[/tex]
[tex]p_f[/tex] = (0.093 kg + 3 kg) * [tex]v_f[/tex]
[tex]p_f[/tex] = 3.093 kg * [tex]v_f[/tex]
[tex]p_i = p_f[/tex]
18.6 kg*m/s = 3.093 kg * [tex]v_f[/tex]
[tex]v_f[/tex]= 6.01 m/s
B). The kinetic energy of the bullet plus the block before the collision is:
[tex]K_i[/tex] = (1/2) * [tex]m{_bullet}[/tex] * v_bullet² + (1/2) *[tex]m{_block}[/tex] * 0²
[tex]K_i[/tex] = (1/2) * 0.093 kg * (200 m/s)²
[tex]K_i[/tex] = 1866 J
c) The kinetic energy of the bullet plus the block after the collision is:
[tex]K_f[/tex] = (1/2) * ([tex]m{_bullet}[/tex] + [tex]m{_block}[/tex]) *[tex]v_f[/tex]²
[tex]K_f[/tex] = (1/2) * 3.093 kg * (6.01 m/s)²
[tex]K_f[/tex] = 111.3 J
D) [tex]Delta_E = K_i - K_f[/tex]
[tex]Delta_E = 1866 J - 111.3 J[/tex]
[tex]Delta_E = 1755.7 J[/tex]
Momentum refers to the physical property of an object in motion that depends on both its mass and velocity. It is defined as the product of an object's mass and velocity and is a vector quantity, meaning it has both magnitude and direction. In other words, momentum is the measure of how much force an object can apply when it collides with another object.
According to the law of conservation of momentum, the total momentum of a system remains constant unless acted upon by an external force. This means that if two objects collide, the total momentum of the system before the collision is equal to the total momentum after the collision, even if the objects' velocities and directions change.
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find the force law for a central-force field that allows a particle to move in a spiral orbit given by r⫽ ku2 , where k is a constant.
The force law for a central-force field will be F= -kr^2dO/dt
To find the force law for a central-force field that allows a particle to move in a spiral orbit given by r = ku^2, we need to first understand what a central force is. A central force is a force that acts on a particle in such a way that it always points towards a fixed point in space, called the center of force. In other words, the force is radial in nature and depends only on the distance between the particle and the center of force.
Now, since the particle is moving in a spiral orbit, we can assume that there is a component of the force that is perpendicular to the radial direction. This component of the force is responsible for causing the particle to move in a spiral path rather than a circular one.
We can express the force law for this central-force field in terms of the distance r between the particle and the center of force, and the angle θ between the particle's position vector and a fixed reference direction. The force law can be written as:
F = -kr^2 dθ/dt
where k is a constant that depends on the strength of the force, and dθ/dt is the angular velocity of the particle.
This force law ensures that the force acting on the particle is always directed towards the center of force, and that the particle moves in a spiral orbit given by r = ku^2.
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toge
e
6. Refer to the illustration below.
90
www
R₂ 1513
www
R₂ 1013
a. what is the total power in the circuit?
b. What is the total resistance of this
circuit?
The total resistance of this circuit is 15Ω and the total power of the circuit is 60W.
The power is the ratio of the square of voltage and resistance. The total resistance is obtained from the addition of series and parallel resistance.
From the given,
Total resistance (Requ) = R₁ + R₂
R₁ is a series resistance
R₂ is the parallel resistance
R₂ = 1/15 Ω + 1/10 Ω
= 10×15 / (15+10)
= 150 / 25
= 6Ω
Parallel resistance R₂ = 6Ω
R(equivalent) = R₁ + R₂
= 9 + 6
= 15Ω
Thus, the total resistance is 15 Ω.
The total power, P = E² / R(equivalent)
E represents the voltage
R(equivalent) is the equivalent resistance
P = 30×30 / 15
= 60 watts.
Thus, the total power in the circuit is 60 watts.
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What is the torque by the fire extinguisher about the center of the seesaw, in N-m? Use g = 10 m/s^2.
The torque by the fire extinguisher about the center of the seesaw is 150 N-m. This torque causes a counterclockwise rotation of the seesaw.
To find the torque by the fire extinguisher about the center of the seesaw, we need to use the formula for torque, which is given by torque = force x lever arm.
Here, the force acting on the seesaw is the weight of the fire extinguisher, which is given by 10 kg x 10 m/s² = 100 N. The lever arm is the distance from the center of the seesaw to where the force is applied.
Since the fire extinguisher is at the end of one side of the seesaw, the lever arm is half the length of the seesaw, or 1.5 meters. Thus, the torque is given by torque = 100 N x 1.5 m = 150 N-m.
Therefore, the torque by the fire extinguisher about the center of the seesaw is 150 N-m.
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an equipotential surface that surrounds a point charge q has a potential of 447 v and an area of 2.00 m2. determine q.
The magnitude of the charge q = 2.80 x 10^-8 C
To determine q, we can use the equation for potential:
V = kq/r
where V is the potential, k is Coulomb's constant (9 x 10^9 N*m^2/C^2), q is the charge, and r is the distance from the point charge to the equipotential surface.
Since we are given the potential and area of the equipotential surface, we can calculate the distance from the point charge to the surface using the formula for the area of a sphere:
A = 4πr^2
Solving for r, we get:
r = √(A/4π) = √(2/4π) = 0.564 m
Now we can substitute the given values into the equation for potential and solve for q:
V = kq/r
447 = (9 x 10^9)(q)/(0.564)
q = (447)(0.564)/(9 x 10^9) = 2.80 x 10^-8 C
Therefore, the charge q of the point charge is 2.80 x 10^-8 C
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suppose a shot-putter who takes t = 1.45 s to accelerate the m = 7.19-kg shot from rest to v = 13 m/s raises it h = 0.825 m during the process.
The work done to accelerate the object and the work against the frictional force are what result in the change in kinetic energy. It is necessary to defeat this force. Typically, we would use the equation W=Fd, where d is the distance traveled, to compute the work completed.
Based on the given information, we can calculate the work done by the shot-putter on the shot during the acceleration phase using the formula:
W = (1/2) * m * v^2
Here, W is the work done, m is the mass of the shot, and v is the final velocity of the shot. Plugging in the values, we get:
W = (1/2) * 7.19 kg * (13 m/s)^2
W = 625.61 J
We can also calculate the potential energy gained by the shot due to the height it was raised during the process using the formula:
PE = m * g * h
where PE is the potential energy gained, m is the mass of the shot, g is the acceleration due to gravity (9.8 m/s^2), and h is the height raised. Plugging in the values, we get:
PE = 7.19 kg * 9.8 m/s^2 * 0.825 m
PE = 57.26 J
Therefore, the total work done on the shot by the shot-putter is the sum of the work done during the acceleration phase and the potential energy gained due to the height raised:
Total work done = W + PE
Total work done = 625.61 J + 57.26 J
Total work done = 682.87 J
This means that the shot-putter expended 682.87 J of energy to accelerate the shot and raise it to the given height.
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A person standing barefoot on the ground 20 m from the point of a lightning strike experiences an instantaneous potential difference of 300 V between his feet.
if we assume the sum of the skin resistance on both legs is 1.0 kω , how much current goes up one leg and back down the other?
Current goes up one leg and back down the other leg experiences is 0.15 A
Given the potential difference (V) between the person's feet is 300 V and the sum of the skin resistance on both legs (R) is 1.0 kΩ, we can calculate the current (I) using Ohm's Law: V = IR.
I (the amount of current flowing through a conductor) = V (the potential difference applied to the ends) divided by R (resistance) is the formula for Ohm's law.
Rearrange the formula to solve for I: I = V/R.
Plug in the given values: I = 300 V / 1,000 Ω.
The current flowing through the person's legs is 0.3 A (amperes). Since the current goes up one leg and back down the other, each leg experiences half of the total current. Therefore, each leg experiences 0.15 A.
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T/F,two degrees celsius of global warming is an important threshold because once the earth crosses the threshold, the impacts of climate change abruptly become more dangerous.
The statement "two degrees Celsius of global warming is an important threshold because once the Earth crosses this threshold, the impacts of climate change abruptly become more dangerous." is true.
The 2°C threshold is significant because it represents a tipping point at which the effects of climate change become increasingly severe and potentially irreversible. This includes more intense and frequent extreme weather events, higher sea levels, and widespread ecological disruptions.
Crossing the threshold also increases the risk of activating feedback loops, which could accelerate warming further and intensify climate impacts. This concept was agreed upon by scientists and policymakers in the 2009 Copenhagen Accord as a limit to prevent dangerous climate change.
Therefore, it is crucial to take action to mitigate greenhouse gas emissions and prevent global temperatures from surpassing this critical threshold.
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1. Write down the definition of momentum. What is your Prediction 1-27 Does one car exert a larger force on the other or are both forces the same size? 2. 3. In Activity 1-1, why is the sign of force probe A reversed? 4. What is your Prediction 1-7 when the truck is accelerating? Does either the car or the truck exert a larger force on the other or are the forces the same size? 5. What makes the collision in Activity 2-1 "inelastic"?
Momentum is the product of an object's mass and velocity.
Both cars will exert the same force on each other during a collision, assuming they have equal mass and velocity.
The sign of force probe A is reversed in Activity 1-1 because it is measuring the force exerted by the car on the probe, rather than the force exerted by the probe on the car. By convention, forces exerted by an object are considered positive and forces exerted on an object are considered negative. When the truck is accelerating is that the truck will exert a larger force on the car, since it is the larger and more massive object. The car will still exert a force on the truck, but it will be smaller in comparison. The collision in Activity 2-1 is considered "inelastic" because some of the kinetic energy of the objects is lost during the collision, usually in the form of heat or deformation. This means that the objects may stick together or bounce off each other with less velocity than they had before the collision. In contrast, an "elastic" collision would result in the objects bouncing off each other with the same velocity and kinetic energy as before the collision.
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based on your results from the marble experiment, please answer the following questions: 1. what kind of collision is exhibited by the marbles in this experiment, and why?
The two sorts of collisions that marbles can experience are elastic collisions and inelastic collisions. Both the kinetic energy and the momentum of the objects colliding are conserved in an elastic collision.
What transpires when marbles collide in an elastic collision?The two marbles collided in an elastic manner in the preceding illustration. The second marble received all of the kinetic energy from the first marble.
What happens when a marble is thrown at a pile of marbles?Momentum is preserved in a collision, as stated by Newton's third law of motion. That implies that what is put in must come out. For this reason, only one marble exits the stack when you hit one into the stack. The pace remains unchanged.
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On a sunny day with no wind, you fill a balloon with helium and let it float away into the sky. Eventually, the balloon pops. This is because at high elevation:
At high elevation, the atmospheric pressure decreases as the air becomes less dense.
As the balloon rises higher, the pressure of the helium gas inside the balloon remains constant, while the pressure of the surrounding air decreases.
At some point, the pressure differential becomes too great for the balloon to withstand, and it will burst or pop.
This is because the balloon's material is only able to hold a certain amount of pressure before it becomes too much to handle and ruptures.
Additionally, the decrease in atmospheric pressure can cause the helium gas to expand, further increasing the pressure inside the balloon and potentially causing it to burst.
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a 38.33 g sample of a substance is initially at 29.2 ∘c. after absorbing 2593 j of heat, the temperature of the substance is 167.2 ∘c. what is the specific heat (sh) of the substance?
The specific heat of the substance is 0.804 J/g*K.
To solve for the specific heat of the substance, we can use the formula:
q = mCΔT
where q is the amount of heat absorbed, m is the mass of the substance, C is the specific heat of the substance, and ΔT is the change in temperature.
Plugging in the given values:
q = 2593 J
m = 38.33 g
ΔT = 167.2 - 29.2 = 138 K
Solving for C:
C = q / (mΔT)
C = 2593 J / (38.33 g * 138 K)
C = 0.804 J/g*K
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A
b A wind blows steadily at 90° to a yacht sail of area 3.8 m². The velocity of the
wind is 20 ms-1.
i Show that the mass of air hitting the sail each second is approximately
90 kg. Density of air is 1.2 kg m-³.
Answer: 90Kg
Explanation:
The mass of air hitting the sail each second can be calculated as:
mass of air = density of air * volume of air
The volume of air hitting the sail can be calculated as:
volume of air = area of sail * velocity of wind * time
Here, the area of sail is given as 3.8 m², the velocity of wind is 20 ms^-1, and the time is 1 second (since we want to calculate the mass of air hitting the sail each second).
Therefore,
volume of air = 3.8 m² * 20 ms^-1 * 1 s = 76 m³
Using the given density of air of 1.2 kg m^-3, we can calculate the mass of air hitting the sail each second as:
mass of air = 1.2 kg m^-3 * 76 m³ = 91.2 kg
Therefore, the mass of air hitting the sail each second is approximately 90 kg.
1. for the rheostat, compute the values of resistance rh and voltage drop vh across the rheostat if, vt = 5.0v, the ammeter reads i = 0.056a, and the voltmeter reads vs = 1.69 v.
To compute the values of resistance rh and voltage drop vh across the rheostat, we can use the formula V = IR. Here, V is the voltage drop across the rheostat, I is the current flowing through the rheostat (which is the same as the ammeter reading of 0.056A), and R is the resistance of the rheostat (which we want to find).
So, we have V = IR, or Vh = I * rh. Substituting the given values, we get Vh = 0.056 * rh.
We also know that the total voltage across the circuit is 5.0V (given by vt), and the voltmeter reads a voltage drop of 1.69V across the rest of the circuit (i.e., not across the rheostat). So, the voltage drop across the rheostat is vt - vs = 5.0 - 1.69 = 3.31V.
Now we can use Ohm's law (V = IR) again to find the resistance of the rheostat: rh = Vh / I = 3.31 / 0.056 = 59.11 ohms.
Therefore, the value of resistance rh across the rheostat is 59.11 ohms, and the voltage drop vh across the rheostat is 0.056 * 59.11 = 3.31V.
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unpolarized light passes through two polarizers whose transmission axes are at an angle of 35.0 ∘ with respect to each other. you may want to revie
When unpolarized light passes through two polarizers whose transmission axes are at an angle of 35.0 ∘ with respect to each other, the intensity of the light that emerges from the second polarizer will be reduced by a factor of cos^2(35.0 ∘) ≈ 0.82 compared to the intensity of the incident light.
This is because the first polarizer will only allow light waves that vibrate in a certain direction (along its transmission axis) to pass through, while the second polarizer will only allow light waves that vibrate in a direction perpendicular to its transmission axis to pass through. The angle of 35.0 ∘ between the transmission axes means that some of the light waves that were allowed to pass through the first polarizer will be blocked by the second polarizer, since their vibration direction is not perpendicular to the second polarizer's transmission axis. The reduction in intensity is due to the fact that the second polarizer is blocking some of the light waves that were allowed to pass through the first polarizer.
When unpolarized light passes through two polarizers whose transmission axes are at an angle of 35.0° with respect to each other, the intensity of the transmitted light will be reduced. The amount of reduction can be calculated using Malus' Law, which states that the intensity of the transmitted light (I) is proportional to the square of the cosine of the angle between the transmission axes (θ).
To find the transmitted light intensity, follow these steps:
1. First, the unpolarized light passes through the first polarizer. This polarizer filters the light and only allows the components parallel to its transmission axis to pass through. The intensity of the light after passing through the first polarizer will be half the initial intensity (I0/2).
2. Next, the partially polarized light passes through the second polarizer. The transmission axes of the two polarizers are at an angle of 35.0°. To calculate the intensity of the light transmitted through the second polarizer, use Malus' Law: I = (I0/2) * cos²(θ)
where I0 is the initial intensity of the unpolarized light and θ is the angle between the transmission axes (35.0°).
3. Plug in the values and solve for I:
I = (I0/2) * cos²(35.0°)
By following these steps, you can determine the intensity of the transmitted light after passing through two polarizers with transmission axes at an angle of 35.0°.
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In Many European Homes The Rms Voltage Available From A Wall Socketis 240 V. What Is The Maximum Voltage In This Case?
European Homes Rms Voltage Available From A Wall Socketis 240 V. The Maximum Voltage is 339.4V.
In many European homes, the RMS voltage available from a wall socket is 240V.The maximum voltage, or peak voltage, can be calculated using the formula V_peak = V_RMS ×√2.
=240×√2
=339.4V
The breakdown voltage of the junction, or the voltage at which the junction operates, determines the maximum collector voltage required to maintain the collector-base junction's reverse bias.
In a bipolar junction transistor (BJT), the collector-base junction functions as a switch to permit or disallow current flow between the collector and base terminals. The voltage across the collector-base junction must stay below the junction's breakdown voltage in order to retain the reverse bias arrangement. The greatest voltage that the junction can withstand under reverse bias before switching to forward bias and allowing current to flow is known as the breakdown voltage, sometimes known as the peak inverse voltage (PIV).
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What are the complement activation effector functions?
The complement activation effector functions refer to a series of immune system reactions that help protect the body against infections and promote inflammation.
These functions involve three main pathways: the classical, lectin, and alternative pathways, they are initiated by various triggers, such as pathogen recognition, antibody-antigen interactions, or spontaneously through a process called "tick-over." Upon activation, a cascade of reactions occurs, producing complement proteins that mediate several effector functions. These include opsonization, which marks pathogens for phagocytosis by immune cells; lysis, where the membrane attack complex (MAC) punctures the pathogen's cell membrane, causing cell death; and chemotaxis, attracting immune cells to the site of infection.
Additionally, the complement system stimulates inflammation and enhances the adaptive immune response. In summary, complement activation effector functions play a crucial role in the immune system's defense against pathogens and modulate inflammation to help maintain the body's overall health.
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a toaster is rated at 600 w when connected to a 170 v source. what current does the toaster carry, and what is its resistance?
To determine the current and resistance of the toaster, Therefore, the resistance of the toaster is 48.18 ohms.
we can use Ohm's law and the formula for power: Ohm's Law: V = IR, where V is voltage, I is current, and R is resistance. Power Formula: P = VI, where P is power, V is voltage, and I is current.From the problem, we know that the toaster is rated at 600 W when connected to a 170 V source. Therefore, we can use the power formula to find the current:P = VI.600 W = 170 V x II = 3.53 A. So the current that the toaster carries is 3.53 A.
To find the resistance, we can use Ohm's Law:R = V/I.R = 170 V / 3.53 AR = 48.18 ohms. Therefore, the resistance of the toaster is 48.18 ohms.
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Calculate the net force on particle q1.
In Coulomb's Law, the variable, r, is the distance
between the charges. What is r for F2?
ke
ke = 8.99 109
F1 = -14.4 N = [?] m F2 = + N
F2 = k. 19193)
=
p2
=
--
r =
+13.0 uC
+7.70 μC
-5.90 uC
+ 91
+92
43
0.25 m
0.30 m
The answer to the query states that the net force on a particle is
76.6 N.
What is particle?A particle is a relatively small component or amount of matter. It is the smallest part or component of an indivisible, unbreakable item. All matter is composed of particles, which also serve as the fundamental building blocks of all physical events. The shapes, sizes, and weights of particles vary, as do their interactions with one another. They can exist in a vacuum as well as in the states of solid, liquid, and gas.
The magnitude of the two forces, [tex]F_1[/tex] and [tex]F_2[/tex], is added to determine the net force acting on particle [tex]q_1[/tex]. [tex]F_1[/tex] is the force that [tex]q_2[/tex] is applying
to [tex]q_1[/tex], and it has a value of -14.4 N. Coulomb's Law can be used to compute [tex]F_2[/tex], which is the force that [tex]Q_1[/tex] exerts on [tex]Q_2[/tex]:
[tex]F_2 = k*q_1*q_2/r^2[/tex], where k is the Coulomb constant
[tex](8.99 x 10^9 Nm^2/C^2)[/tex], [tex]q_1[/tex] is the charge of [tex]q_1 (+7.70 \mu C)[/tex], [tex]q_2[/tex] is the charge of [tex]q_2[/tex] (-5.90 uC), and r is the distance between the charges
(0.30 m).
As a result of entering these values into the equation, us
[tex]F_2=(8.99 x 10^9 Nm^2/C^2)*(+7.70 \mu C)*(-5.90 uC)/(0.30 m)^2\\\\F_2=91 N[/tex]
Thus, the net force on particle [tex]q_1[/tex] is,
[tex]F_1+F_2=-14.4 N + 91 N\\\\F_1+F_2= 76.6 N[/tex]
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a 16-kg sled starts up a 28 ∘ incline with a speed of 2.0 m/s . the coefficient of kinetic friction is μk = 0.25.a.) How far up the incline does the sled travel?
b.) What condition must you put on the coefficient of static friction if the sled is not to get stuck at the point determined in part a?
c.) If the sled slides back down, what is its speed when it returns to its starting point?
To solve the problem, we first need to find the net force acting on the sled, which is the sum of the forces parallel and perpendicular to the incline. The force of gravity can be resolved into a component parallel to the incline and a component perpendicular to the incline.
The component parallel to the incline causes the sled to slide down, while the component perpendicular to the incline balances the normal force from the incline. The force of kinetic friction acts parallel to the incline and opposes the motion of the sled. We can use the equation F = ma to find the acceleration of the sled up the incline, and then use the kinematic equations to find how far up the incline the sled travels and what its speed is when it returns to its starting point.
We also need to consider the condition for the sled not to get stuck at some point on the incline. This condition is that the coefficient of static friction between the sled and the incline must be greater than or equal to the tangent of the angle of the incline. If the coefficient of static friction is less than the tangent of the angle, then the force of kinetic friction will be greater than the force of static friction and the sled will slide back down the incline.
a) The first step is to find the net force acting on the sled. The forces acting on the sled are its weight mg, the normal force N perpendicular to the incline, and the force of kinetic friction f k parallel to the incline. The component of the weight parallel to the incline is mg sin(28°), so the net force is:
Fnet = mg sin(28°) - f k
where
f k = μk N
and
N = mg cos(28°)
Substituting in the values gives:
Fnet = mg sin(28°) - μk mg cos(28°)
The acceleration of the sled is:
a = Fnet / m
Substituting the values and solving for acceleration:
a = (16 kg)(9.8 m/s^2) sin(28°) - (0.25)(16 kg)(9.8 m/s^2) cos(28°) / 16 kg
a = 1.37 m/s^2
Now we can use the kinematic equation:
vf^2 = vi^2 + 2ad
where
vi = 2.0 m/s (initial velocity)
vf = 0 (final velocity, since the sled stops at some point)
a = 1.37 m/s^2 (acceleration)
d = distance up the incline (what we want to solve for)
Solving for d:
d = (vf^2 - vi^2) / (2a)
d = (0 - (2.0 m/s)^2) / (2(-1.37 m/s^2) sin(28°))
d = 2.8 m
So the sled travels 2.8 meters up the incline.
b) In order for the sled not to get stuck at the point determined in part a, the coefficient of static friction must be greater than or equal to the ratio of the net force perpendicular to the incline to the normal force. This ratio is:
Fnet,perpendicular / N = mg cos(28°) / mg sin(28°) = tan(28°)
So the coefficient of static friction must be:
μs ≥ tan(28°)
c) If the sled slides back down the incline, we can use the same kinematic equation as before, but this time the initial velocity is 0 and the final velocity is what we want to solve for. The acceleration is still the same, so:
vf^2 = vi^2 + 2ad
vf^2 = 2(1.37 m/s^2)(2.8 m)
vf = 2.6 m/s
So the sled's speed when it returns to its starting point is 2.6 m/s.
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