When you blow some air above the upper face of a paper strip, the paper rises. This occurs because:.

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Answer 1

When you blow air above the upper face of a paper strip, the paper rises due to a phenomenon known as Bernoulli's principle.

According to this principle, as the speed of a fluid (in this case, air) increases, its pressure decreases. When you blow air above the paper, the air moves faster than the air below the paper. This creates a region of lower pressure above the paper and higher pressure below the paper.

The difference in pressure creates an upward force on the paper, causing it to rise. This effect is also what allows airplanes to fly and explains why flags flutter in the wind.

When you blow air above the upper face of a paper strip, the paper rises due to a principle called Bernoulli's principle. As you blow air, the air pressure above the paper decreases due to the increased air velocity. Since the air below the paper is relatively still, it has a higher pressure.

This difference in air pressure causes the paper to rise, as the higher pressure beneath the paper pushes it upward. In summary, the paper rises because the fast-moving air above the paper creates a lower pressure, and the still air below the paper exerts a higher pressure, lifting the paper.

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Related Questions

This picture represents the electric field diagram between two particles with static charges. Do the two particles have the same charge? if the particles are free to move, what affect will the two particles have on each other? if a third particle was added to this field with a positive charge, what would it be attracted to? if an uncharged particle was placed between a and b, which way would it move?.

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If an uncharged particle was placed between particle A and particle B, it would move towards particle A since the electric field lines are stronger and closer together near particle A, indicating a greater electric field strength and a higher concentration of charge.

Looking at the electric field diagram, it appears that the two particles have opposite charges. This is because the electric field lines appear to originate from one particle and end on the other, indicating that there is a difference in charge between them. If the particles were free to move, they would be attracted to each other due to the opposite charges they possess. If a third particle with a positive charge was added to this field, it would be attracted to the negatively charged particle since opposite charges attract each other. If an uncharged particle was placed between particle A and particle B, it would move towards particle A since the electric field lines are stronger and closer together near particle A, indicating a greater electric field strength and a higher concentration of charge.

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Answer:
•No

•They will attract each other

•B

•Neither direction


ON EDGE

Black hole A has a mass of 39 solar masses, and black hole B has a mass of 66 solar masses. What is the ratio of the radii of their event horizons, ?

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The ratio of the radii of their event horizons is [tex]0.59[/tex] .

What is ratio ?

Ratio is a comparison between two or more quantities expressed in terms of their relative sizes. It is used to determine the relationship between different values or measures and to compare the sizes of different quantities. Ratios can be expressed in various ways, such as fractions, percentages, decimals, and even in terms of simple words.

The ratio of the radii of their event horizons is determined by the mass of each black hole using the formula R = 2GM/c², where G is the gravitational constant, M is the mass of the black hole, and c is the speed of light. Therefore, for black hole A, R₁ = [tex]2 \times (6.67 \times 10- m^3 kg-1 s-2)\times(3.98\times1030 kg)/(3.00\times108 m s^{-1})^2 = 8.82\times106 m.[/tex]

For black hole B, R₂ =[tex]2 \times (6.67 \times 10-11 m^3 kg{-1} s^{-2}) \times (6.64 \times 1030 kg)/(3.00 \times 108 m s^{-1})^2 = 1.50 \times 107 m.[/tex]

The ratio of the radii of their event horizons is therefore [tex]R1/R2 =[/tex][tex]8.82106 m/1.50107 m = 0.59.[/tex]

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Determine the direction of the magnetic field of the current-carrying wire.

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The direction of the magnetic field of a current-carrying wire can be determined using the right-hand rule.

This rule states that if you wrap your right-hand fingers around the wire in the direction of the current flow, with your thumb pointing in the direction of the wire, your curled fingers will point in the direction of the magnetic field.

So, to detail ans this question, we need to know the direction of the current flow in the wire in order to determine the direction of the magnetic field.

To determine the direction of the magnetic field of a current-carrying wire, you can follow these steps using the Right-Hand Rule:

Straighten your right hand with your thumb pointing up.
Wrap your fingers around the wire with your thumb pointing in the direction of the conventional current (from positive to negative).
The direction in which your fingers curl around the wire represents the direction of the magnetic field.

So, to determine the direction of the magnetic field of the current-carrying wire, simply apply the Right-Hand Rule.

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Estimate the Schwarzschild radius (in kilometers) for a mini-black hole formed when a superadvanced civilization decides to punish you (unfairly) by squeezing you until you become so small that you disappear inside your own event horizon. (Assume that the your weight is 50 kg) Express your answer in kilometers to two significant figures.

Answers

An object weighing 50 kg, the Schwarzschild radius is roughly

1.70 × 10⁻³³km.

In the following formula, the Schwarzschild radius (Rs) is denoted.

Rs = (2GM) / c²

Where M is the object's mass, G is the gravitational constant, and c is the speed of light.

The mass M for a 50 kg object can be translated into kilos as follows:

M = 50 kg × (1 kg/2.246 lbs) = 22.6796 kg.

The Schwarzschild radius can be determined using the provided values of     G = 6.67430× 10⁻¹¹ N m2/kg² and c = 299792458 m/s as follows:

Rs = 2 ×6.67430 ×10⁻¹¹ N m/kg² * 22.6796 kg) ÷ (299792458 m/s)².

Rs = 1.695 10⁻²⁷ meters.

We can divide this by 1000 twice to get kilometers:

R = 1.695 x 10⁻²⁷ meters (1 km = 1000 m)

Rs ≈ 1.70 × 10⁻³³km

Therefore, an object weighing 50 kg, the Schwarzschild radius is roughly 1.70 × 10⁻³³km.

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If a star is a red giant, how does its surface temperature compare to that of the sun?.

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The surface temperature of a red giant is around 3,000 Kelvin, which is much lower than the surface temperature of the sun, which is around 5,800 Kelvin.

What is temperature?

Temperature is a physical quantity that describes how hot or cold something is. It is usually measured in degrees Celsius (°C), Fahrenheit (°F), or Kelvin (K). Temperature is an important factor in many scientific and biological processes, and can affect the rate of chemical reactions, the behavior of living organisms, and the density of air. Temperature is also used to describe the intensity of heat energy, which is measured in joules or calories.

A red giant is a luminous, cool star with a surface temperature lower than that of the sun. Typically, the surface temperature of a red giant is around 3,000 Kelvin, which is much lower than the surface temperature of the sun, which is around 5,800 Kelvin.

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An object starts from rest and travels around a 6 m radius circular orbit, with its speed increasing at the rate of 8 m/s2. After 0.75 s, find the magnitude of its acceleration.

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According to the question the magnitude of the acceleration is 36 m/s².

What is acceleration?

Acceleration is the rate of change of an object’s velocity, which is the speed and direction of the object’s motion. Acceleration is caused by a net force, which can come from either an outside source or from internal forces within the object itself. Acceleration is a vector quantity, meaning it has both magnitude (the amount of acceleration) and direction. When an object is accelerating, its velocity changes over time, either increasing or decreasing.

The magnitude of the acceleration of an object moving in a circular orbit is given by the formula:
a = v²/r
where a is the magnitude of the acceleration, v is the velocity of the object and r is the radius of the circular orbit.
In this case, the velocity at time t = 0.75 s is 8 m/s² x 0.75 s = 6 m/s.
Therefore, the magnitude of the acceleration is:
a = 62/6 = 36 m/s².

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Two identical silver spheres of mass m and radius r are placed at different distances from the sun. Sphere 1 is placed at a distance r and sphere 2 is placed at a distance 2r. The ratio of the pressure of solar radiation on sphere 2 to that on sphere 1 is.

Answers

The ratio of the pressure of solar radiation on sphere 2 to that on sphere 1 can be calculated using the equation P = 2I/c which is 1:4.

The pressure of solar radiation on a spherical object can be calculated using the equation P = 2I/c, where P is the pressure, I is the intensity of the radiation, and c is the speed of light.

The intensity of solar radiation at a distance r from the sun is proportional to 1/r². Therefore, the intensity of solar radiation on sphere 1 is 1/1² = 1, and the intensity on sphere 2 is 1/2² = 1/4.

Thus, the pressure of solar radiation on sphere 1 is 2/c, and the pressure on sphere 2 is 2/(4c) = 1/2c. Therefore, the ratio of the pressure of solar radiation on sphere 2 to that on sphere 1 is (1/2c) / (2/c) = 1/4.

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11) The coefficient of linear expansion of steel is 12 × 10-6 K-1. What is the change in length of a 25-m steel bridge span when it undergoes a temperature change of 40 K from winter to summer?
A) 1.2 cm
B) 1.4 cm
C) 1.6 cm
D) 1.8 cm
E) 2.0 cm

Answers

The change in length of the 25-m steel bridge span when it undergoes a temperature change of 40 K from winter to summer is 1.8 cm.

What is temperature?

Temperature is a measure of the average kinetic energy of the particles in a substance. It is a physical property that can be used to measure and describe the heat of an object or system. Temperature is measured in degrees and can be either Celsius, Fahrenheit, or Kelvin. Temperature is important for all physical, chemical, and biological processes. It affects the rate of reactions, the solubility of substances, and the way organisms interact with their environment.

The linear expansion of a material is calculated using the equation:
Change in Length (ΔL) = coefficient of linear expansion (α) × original Length (L) × Change in Temperature (ΔT).
Therefore, the change in length of the 25-m steel bridge span when it undergoes a temperature change of 40 K from winter to summer is calculated as follows:
ΔL = 12 × 10-6 K-1 × 25 m × 40 K = 1.8 cm.
Hence, the option is D) 1.8 cm.

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to get total internal reflection at the interface of water (refractive index 1.33) and a plastic whose refractive index is 1.46:Which material must the light start in? a. it doesn't matterb. waterc. plastic What is the critical angle?________ degrees

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The critical angle is approximately 48.8 degrees.

The light must start in the plastic material to get total internal reflection at the interface.

The critical angle can be calculated using the formula:

sinθc = n₂/n₁ , where n₁ is the refractive index of the material in which light is initially traveling, and n₂ is the refractive index of the material in which the light is incident upon.

Here, n₁ = 1.33 (refractive index of water) and n₂ = 1.46 (refractive index of plastic)

So, sinθc = n₂/n₁ = 1.46/1.33 = 1.097

Using inverse sine function, we get:

θc = sin-1(1.097) = 48.8 degrees (approx.)

Therefore, the critical angle is approximately 48.8 degrees.

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Calculate the change in specific internal energy (∆ u) as air is heated from 300 K to 1000 K using (a) the PG model and (b) the IG model (for the IG model, use the IG system-state TESTcalc).

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A. the specific internal energy change can be 707.1 kJ/kg and B. the specific internal energy change can be 707.3 kJ/kg.

What is internal energy?

Internal energy is the sum of the kinetic and potential energies of the molecules of a system. It is the energy associated with the random motion of atoms or molecules in a system. It is also known as the thermal energy of a system and is denoted by U.

(a) For the PG model, the change in specific internal energy (∆u) is calculated by:
[tex]\Delta u = Cv * (T_2-T_1)[/tex]
where Cv is the specific heat capacity at constant volume and [tex]T_1[/tex] and [tex]T_2[/tex] are the initial and final temperatures, respectively.
For air at 300 K to 1000 K, the specific internal energy change can be calculated as follows:
[tex]\Delta u = 1.007 kJ/kg-K * (1000 K - 300 K)\\\Delta u = 707.1 kJ/kg[/tex]

(b) For the IG model, the change in specific internal energy (∆u) can be calculated using the IG system-state TEST calc. The specific internal energy change can be calculated as follows:

[tex]\Delta u = u_2-u_1,[/tex]
where u1 and u2 are the initial and final specific internal energy, respectively.
For air at 300 K to 1000 K, the specific internal energy change can be calculated as follows:
[tex]\Delta u = (1.080 kJ/kg) - (0.373 kJ/kg)\\\Delta u = 707.3 kJ/kg.[/tex]

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A child in a swing makes one complete back and forth motion in 3.2 seconds. This statement provides information about the child's
a. speed
b. frequency
c. period

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The statement "A child in a swing makes one complete back and forth motion in 3.2 seconds" provides information about the child's time period.

The time period is the time it takes for one complete oscillation or cycle to occur. In this case, the child completes one back and forth motion, which is one oscillation or cycle. The time it takes for this cycle to occur is 3.2 seconds.

The time period is often denoted by the symbol T and is measured in seconds. It is the inverse of the frequency, which is the number of cycles per unit time.

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Complete the following statement: A simple series circuit contains a resistance R and an ideal battery. If a second resistor is connected in parallel with R,

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The overall resistance in the circuit decreases and the total current increases. The voltage across each resistor remains the same and the total power increases due to increased current flow.

A simple series circuit consists of a single pathway for the flow of electric current, where all components (such as resistors and batteries) are connected in a sequence, end-to-end. In this type of circuit, the total resistance is the sum of the individual resistances. When a second resistor is connected in parallel with the original resistor in the circuit, it creates an additional pathway for the flow of current. This results in a reduction in the total resistance of the circuit since the parallel combination of resistors provides a lower effective resistance than the original resistor alone. As a result, more current flows through the circuit. However, the voltage across both resistors remains the same as the original voltage provided by the battery.

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calculate the torque produced by the same 50-n force when a pipe extends the length of the wrench to 0.5 m.

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The torque produced by the 50-n force when a pipe extends the length of the wrench to 0.5 m. is T = 50 N x 0.5 m = 25 Nm.

The torque produced by a force is given by the formula T = F x d, where F is the force applied and d is the perpendicular distance from the force to the point of rotation. In this case, the force is 50 N and the distance is 0.5 m.


To calculate the torque produced by a 50-N force when a pipe extends the length of the wrench to 0.5 m, you can use the formula:

Torque = Force x Lever Arm Length

In this case, the force is 50 N, and the lever arm length is 0.5 m.

Torque = 50 N x 0.5 m

Torque = 25 Nm

So, the torque produced is 25 Newton-meters (Nm).

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How does the photoelectric effect verify wave-particle duality?.

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The photoelectric effect is a phenomenon in which electrons are emitted from a metal surface when it is exposed to light. This effect was first observed by Heinrich Hertz in 1887.


According to classical physics, light is a wave and should cause the electrons in the metal to vibrate, eventually causing them to be ejected from the surface. However, experimental data showed that the number of electrons emitted from the metal was proportional to the intensity of the light, but not its frequency.

Einstein proposed that light has both wave-like and particle-like properties, and that the photoelectric effect could be explained by the particle-like nature of light. He suggested that light is composed of discrete packets of energy called photons, and that the energy of each photon is directly proportional to its frequency.

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How much energy is required to make one He-3? Analyze: Are all of these nuclear equations balanced? In other words, do they all have the same number of positive charges and same mass on both sides of the equation? Explain.

Answers

The energy required to make one He-3 nucleus is 3.27 MeV.

The formation of He-3 can occur through several nuclear reactions, including the fusion of two deuterium nuclei, the decay of tritium, and the capture of a neutron by He-3. The energy required to make one He-3 nucleus varies depending on the specific reaction that is taking place.

However, the fusion of two deuterium nuclei, which produces He-3 and a proton, is one of the most common and energy-efficient reactions used to create He-3. This reaction requires an energy input of 3.27 MeV (mega-electron volts) to overcome the electrostatic repulsion between the positively charged deuterium nuclei and bring them close enough together for the strong nuclear force to take over and fuse the nuclei.

Regarding the balance of nuclear equations, all nuclear reactions must obey the laws of conservation of mass and conservation of charge. This means that the sum of the mass numbers and the sum of the atomic numbers (proton numbers) must be equal on both sides of the equation. Therefore, nuclear equations must be balanced to ensure that the same number of positive charges and the same mass are present on both sides of the equation.

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What is the relationship between gravity and velocity of orbiting objects.

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Gravity provides the force needed for circular orbits, while velocity determines the size of the orbit. Kepler's laws relate orbit period, semi-major axis, and orbital velocity. The greater the gravitational force, the faster the object must move to maintain a stable orbit.

The relationship between gravity and velocity of orbiting objects is that gravity provides the centripetal force needed to maintain a circular orbit, and the velocity of the orbiting object determines the size of the orbit.

The greater the gravitational force between two objects, the faster an object must move to remain in a stable orbit around it. This relationship is described by Kepler's laws of planetary motion, which state that the square of the period of an orbit is proportional to the cube of the semi-major axis of the orbit.

This means that objects in larger orbits take longer to complete a full orbit than objects in smaller orbits, and the velocity required to maintain a circular orbit is proportional to the size of the orbit.

The velocity required for a stable orbit is known as the orbital velocity, and it depends on the mass of the object being orbited and the distance from it.

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TRUE/FALSE. the angular acceleration of a rotating rigid body is proportional to the torque along the axis of rotation

Answers

True. Angular acceleration is equal to the torque divided by the moment of inertia. The moment of inertia is a measure of an object's resistance to angular acceleration, so if the torque is constant, then the angular acceleration will be proportional to the torque.

What is acceleration?

Acceleration is the rate at which the velocity of an object changes over time. It is the change in velocity divided by the time taken for the change to occur, measured in meters per second squared (m/s2). Acceleration can result from a change in direction, speed, or both. It can also be caused by an external force, such as gravity, a push, or a pull. Acceleration is an important concept in physics, as it is a key factor in the motion of objects. It can also be used to determine how quickly an object is moving, as well as the forces that affect it.

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Why does the time between the arrival of the p-wave and s-wave become greater?.

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The time between the arrival of the p-wave and s-wave becomes greater because the s-wave travels slower than the p-wave. This is because the s-wave travels through solid material, which is denser than the material through which the p-wave travels.

As a result, the s-wave encounters more resistance and travels at a slower speed. This delay in the arrival of the s-wave compared to the p-wave is used by seismologists to calculate the distance between the earthquake epicenter and the recording station, which is an important factor in earthquake detection and monitoring.
                                  The time between the arrival of the P-wave and S-wave becomes greater due to the difference in their velocities and the increasing distance from the earthquake's epicenter. P-waves travel faster than S-waves, so they arrive first at a seismic station.

                                        As the distance from the epicenter increases, the time difference between the arrival of these waves also increases. This is because the P-wave and S-wave are covering a longer distance, and their difference in speed becomes more noticeable over a larger distance, leading to a greater time gap between their arrivals.

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determine the maximum wind velocity of a 45 cross wind if the maximum corsswind compenet for the airplane is 25 knots

Answers

The maximum wind velocity of a 45 degree cross wind for an airplane with a maximum crosswind compensation of 25 knots is 25 knots.

What is velocity?

Velocity is a physical quantity that measures both the speed and direction of an object. It is a vector quantity, meaning it has both a magnitude and a direction. Velocity is typically represented as a change in position over a given amount of time, usually expressed in meters per second (m/s). Velocity can be calculated by dividing the change in position by the change in time. Velocity is an important concept in physics and is used to describe the motion of objects in a variety of different scenarios.

This is because the maximum crosswind compensation for the airplane limits the maximum wind velocity of the cross wind. Therefore, if the cross wind has a 45 degree angle, the maximum wind velocity of the cross wind would be 25 knots.


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A spiral spring has a length of 14cm when a force of 4N is hung on it. A force of 6N extends the spring by 4cm. Calculate the unstretched length of the spring.​

Answers

The unstretched length of the spiral spring is found to be 12 cm when applied force.

Let's assume that the unstretched length of the spiral spring is L cm. When a force of 4N is hung on it, the spring extends by x cm. From Hooke's law, we know that the force exerted by a spring is directly proportional to the extension of the spring, provided the limit of proportionality is not exceeded. Therefore, we can write,

4 = kx ............ (1), spring constant is k.

Similarly, when a force of 6N is hung on it, the spring extends by (x+4) cm. Again, using Hooke's law, we can write,

6 = k(x+4) ............ (2)

Now, we can solve these two equations simultaneously to find the values of k and x. From equation (1), we have,

k = 4/x

Substituting this value of k in equation (2), we get,

6 = 4(x+4)/x

6x = 4x + 16

2x = 16

x = 8

Therefore, the extension of the spring when a force of 4N is hung on it is 8 cm. Now, we can use this value of x to find the unstretched length of the spring,

L = x + 4 = 8 + 4 = 12 cm

Therefore, the unstretched length of the spring is 12 cm.

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A certain galvanometer has a resistance of 100 Ω and requires 1 mA for full scale deflection. To make this into a voltmeter reading 1 V full scale, connect a resistance of: A.1000 Ω in parallel B.900 Ω in series C.1000 Ω in series D.10 Ω in parallel E.0.1 Ω in series

Answers

A resistance of 900 Ω should be connected in series with the galvanometer to convert it into a voltmeter reading 1 V full scale. The answer is option B.

What is Resistance?

Resistance is the opposition offered by a material or device to the flow of electric current through it. It is a measure of how difficult it is for electric current to pass through a material. Resistance is measured in units called ohms (Ω).

The resistance that should be connected in series with the galvanometer to convert it into a voltmeter can be calculated using the formula:

R = (Vg/Ig) - Rg

where R is the resistance to be added, Vg is the full-scale voltage of the voltmeter (1 V), Ig is the full-scale current of the galvanometer (1 mA = 0.001 A), and Rg is the resistance of the galvanometer (100 Ω).

Substituting the values, we get:

R = (1 V / 0.001 A) - 100 Ω

R = 1000 - 100

R = 900 Ω

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Suppose that two objects attract each other with a gravitational force of 16 units. If the distance between the two objects is tripled, then what is the new force of attraction between the two objects? (Circular Motion and Satellite Motion - Lesson 3 - Universal Gravitation: The Apple, the Moon, and the Inverse Square Law)

Answers

The new force of attraction between the two objects would be 1.78 units.

What is force?

Force is an influence that causes an object to change its velocity, shape or direction. Forces can be categorized into contact forces and non-contact forces. Contact forces are those that require physical contact between two objects, such as a person pushing a box, while non-contact forces are those that act without physical contact, such as gravity or magnetism. Forces can also be described as either balanced or unbalanced.

The force of attraction between two objects is inversely proportional to the square of the distance between them. This means that if the distance is tripled, then the force of attraction will be reduced to one ninth of its original value.Therefore, the new force of attraction between the two objects is 16/9 = 1.78 units.

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A whitish sky is evidence that the atmosphere contains.

Answers

A whitish sky is evidence that the atmosphere contains suspended particles and water droplets.

The whitish appearance of the sky is due to the scattering of sunlight by these particles and water droplets. When sunlight interacts with these particles, it is scattered in all directions, causing the sky to appear white or grey.

This can occur due to natural events like volcanic eruptions, wildfires, or human activities like pollution from industrial processes and vehicle emissions.

The presence of a whitish sky is an indication of suspended particles and water droplets in the atmosphere, which can result from both natural events and human activities.

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the standard free energy change for the haber process at 25 c was obtained, use this valye of g to calculate the equilibrium constant for the process at 25

Answers

To calculate the equilibrium constant (K) for the Haber process at 25°C, you can use the formula K = e^(-ΔG°/RT), where ΔG° is the standard free energy change, R is the gas constant (8.314 J/mol·K), and T is the temperature in Kelvin (25°C + 273.15 = 298.15 K).



First, convert the given ΔG° value to J/mol if it's not already in that unit.

Then, plug the values into the formula and calculate K.

The equation for this reaction is: N2(g) + 3H2(g) ⇌ 2NH3(g) .

The equilibrium constant (K) for this reaction is defined as the ratio of the product concentrations to the reactant concentrations, each raised to their stoichiometric coefficients. In other words


Summary: To find the equilibrium constant for the Haber process at 25°C, use the formula K = e^(-ΔG°/RT) with the given standard free energy change, the gas constant R, and the temperature in Kelvin.

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ch 7 #52
A uniform circular plate of radius 2R has a circular hole of radius R cut out of it. The center C' of the smaller circle is a distance 0.80/? from the center C of the larger circle. Fig. 7-4 What is the position of the center of mass of the plate? (Hint:Try subtraction.]

Answers

Answer: The center of mass is at a distance of 0.36R from the center C' of the smaller circle.

Explanation: To find the position of the center of mass, we can consider the plate without the hole as one object and the removed piece as another object. The center of mass of the plate without the hole is at the center C, which is also the center of the larger circle. The center of mass of the removed piece is at the center C' of the smaller circle.

We can find the distance between these two centers of mass by subtracting the contribution of the removed piece from the center of mass of the plate without the hole. Since the removed piece has a smaller mass and is located at a distance of 0.8R from the center C, the distance between the two centers of mass is (0.8R) - (0.5R) = 0.3R.

Finally, we add the distance between the center C' of the smaller circle and the center of mass of the removed piece, which is R/2, to get the position of the center of mass of the entire plate. Therefore, the center of mass of the plate is located at a distance of 0.3R + 0.5R = 0.8R from the center C, in the direction of the center C'. Thus, the center of mass is located at a distance of 0.36R from the center C'.

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A michelson interferometer is shown at right. The moving mirror is displaced a distance d. During this displacement, 250 interference fringe shifts are counted. The light being used has a wavelength of 632. 8 nm. Determine the mirror displacement d in nm.

Answers

The mirror displacement d is 317.12 nm. In a Michelson interferometer, interference fringes are created due to the interference of two beams of light.



A Michelson interferometer is a device used to measure small changes in the distance between two mirrors. It consists of a beam splitter, two mirrors, and a detector. One beam of light is split into two and travels to the mirrors, where they are reflected back towards the beam splitter. The two beams of light then recombine at the detector, creating an interference pattern.

When one of the mirrors is moved, the interference pattern shifts. The amount of shift depends on the distance moved and the wavelength of the light being used. By measuring the shift in the interference pattern, we can determine the displacement of the mirror.

In this problem, we are given that 250 interference fringe shifts were counted when the mirror was moved a distance d. The wavelength of the light being used is 632.8 nm.

Each interference fringe shift corresponds to a change in the path difference between the two beams of light by one wavelength. So, the total change in the path difference is 250 times the wavelength of the light:

250 × 632.8 nm = 158,200 nm

Therefore, the mirror displacement d is 158,200 nm. However, this displacement is in both directions (i.e., the mirror moved back and forth). To find the displacement in just one direction, we divide by 2:

d = 158,200 nm / 2 = 79,100 nm

Therefore, the mirror displacement d is 79,100 nm in one direction.

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Find the energy released in the fission of 1.00 kg of uranium thathas been enriched to 3.0 percent in the isotope 235 U?
Is the answer just 3 percent of the final Q value? Whichnuclear reaction do they want manipulated?

Answers

The mass fraction of 235U (3.0%) in the uranium is 6.0 MeV

What is mass fraction?

Mass fraction is a way of expressing the amount of a particular substance in a mixture as a fraction of the total mass of the mixture. It is calculated by dividing the mass of the particular substance by the total mass of the mixture, and expressing it as a decimal or a percentage. Mass fraction is used in many industries and processes, such as chemical engineering, pharmaceuticals, food science, and metallurgy.

The question is asking for the energy released in the fission of 1.00 kg of uranium enriched to 3.0% 235U. The nuclear reaction they are referring to is the fission of 235U, which is expressed as:[tex]$$\ce{^{235}_{92}U - > ^{140}_{56}Ba + ^{95}_{36}Kr + 3n + Q}$$[/tex]
Where Q is the amount of energy released in the reaction. The Q value for this reaction is approximately 200 MeV. Therefore, the energy released in the fission of 1.00 kg of uranium enriched to 3.0% 235U is calculated by multiplying the Q value by the mass fraction of 235U (3.0%) in the uranium:

[tex]$$Energy released = Q \times \frac{mass\;fraction\;of\;235U}{100}$$[/tex]

[tex]$$Energy\;released = (200\;MeV) \times (3.0\%) = 6.0\;MeV$$[/tex]

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a car is travelling along a road winding around sea-side cliffs (like highway 1 between carmel and san luis obispo) at 54 kmph. the road has an upward slope of to the horizontal. on a particularly sharp curve, the driver loses control, drives off the road and becomes air-borne. if the cliff is sheer so that it can be assumed to be vertical and is 40 m above the ocean below, at what angle to the horizontal does it hit the water? (use the acute angle)

Answers

The car hits the water at an acute angle of approximately 43.1° to the horizontal.

A car is traveling along a road winding around sea-side cliffs at 54 kmph and loses control on a sharp curve, becoming air-borne. The cliff is 40 meters above the ocean below.

To find the angle at which the car hits the water, we can follow these steps:

1. Convert the car's speed from kmph to meters per second (m/s): 54 kmph * (1000 m/km) / (3600 s/h) = 15 m/s.

2. Determine the time it takes for the car to fall 40 meters vertically. Using the equation:

[tex]h = 0.5 * g * t^2[/tex]

where

h is the height,

g is the acceleration due to gravity (9.8 m/s²), and

t is the time in seconds.

We can solve for t:

 [tex]40 = 0.5 * 9.8 * t^2[/tex]
[tex]80 = 9.8 * t^2[/tex]
[tex]t^2 = 8.16[/tex]
t ≈ 2.86 s

3. Calculate the horizontal distance the car travels in the air during the 2.86 seconds:

Horizontal distance = initial horizontal speed * time


Horizontal distance = 15 m/s * 2.86 s

                                  ≈ 42.9 m



4. Calculate the angle at which the car hits the water using the inverse tangent function (arctan) of the vertical distance (40 m) divided by the horizontal distance (42.9 m):


Angle = arctan(40/42.9)

          ≈ 43.1°

So, the car hits the water at an acute angle of approximately 43.1° to the horizontal.

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a 1,780 w toaster, a 1,300 w electric frying pan, and a 70 w lamp are plugged into the same outlet in a 15 a, 120 v circuit. (the three devices are in parallel when plugged into the same socket.) (a) what current (in a) is drawn by each device?

Answers

To answer this question, we need to use the formula I = P/V, where I is the current in amps, P is the power in watts, and V is the voltage in volts.

For the toaster, I = 1780/120 = 14.83 amps (long answer: The current drawn by the toaster is 14.83 amps.)

For the electric frying pan, I = 1300/120 = 10.83 amps (long answer: The current drawn by the electric frying pan is 10.83 amps.)

For the lamp, I = 70/120 =0.5 8 amps (long answer: The current drawn by the lamp is 0.58 amps.)

Since the devices are in parallel, the total current drawn from the outlet will be the sum of the currents drawn by each device.

Total current = 14.83 + 10.83 + 0.58 = 26.24 amps . The total current drawn from the outlet by all three devices is 26.24 amps.)

Since the circuit has a 15 amp capacity, this means that these three devices should not be used simultaneously on the same circuit.


I'd be happy to help with your question.

To calculate the current (in amperes) drawn by each device, you can use the formula:

Current (A) = Power (W) / Voltage (V)

For the 1,780 W toaster:
Current = 1,780 W / 120 V ≈ 14.83 A

For the 1,300 W electric frying pan:
Current = 1,300 W / 120 V ≈ 10.83 A

For the 70 W lamp:
Current = 70 W / 120 V ≈ 0.58 A

So, the current drawn by the toaster is approximately 14.83 A, by the electric frying pan is approximately 10.83 A, and by the lamp is approximately 0.58 A.

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2) The temperature in your classroom is closest to
A) 68 K.
B) 68°C.
C) 50°C.
D) 295 K.

Answers

The temperature in a classroom is usually around room temperature, which typically ranges from 68-72°F (20-22°C). This means that the temperature is closest to 50°C.

What is temperature?

Temperature is a measure of the average kinetic energy of the particles in a system. It is a physical quantity that indicates how hot or cold something is. Temperature is typically measured in units of degrees Celsius (°C) or kelvin (K). Temperature can be affected by many environmental factors, such as air pressure, radiation levels, humidity, and altitude. Heat and cold are also related to temperature, with heat being the result of increased temperature and cold being the result of decreased temperature. Temperature affects many physical and chemical processes, and is an important factor to consider when studying the behavior of matter.

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