a piece of unpainted porous wood barely floats in an open container partly filled with water. the container is then sealed and pressurized above atmospheric pressure. what happens to the wood? it rises in the water. it sinks lower in the water. it remains at the same level. correct: your answer is correct. explain your answer.

The half-life of the radioactive substance is 1.8 hours.


The half-life of a radioactive substance is the time it takes for half of the substance to decay. Using the given information, we can calculate the amount of substance left after one half-life:
2.46 g ÷ 2 = 1.23 g
We can see that 0.076875 g is approximately 1/16 of 1.23 g, which means that 4 half-lives have passed:
1 half-life: 2.46 g ÷ 2 = 1.23 g
2 half-lives: 1.23 g ÷ 2 = 0.615 g
3 half-lives: 0.615 g ÷ 2 = 0.308 g
4 half-lives: 0.308 g ÷ 2 = 0.154 g
Since 4 half-lives have passed in 9.5 hours, we can calculate the half-life as:
9.5 h ÷ 4 = 2.375 h per half-life
Rounding to one significant figure, the half-life of the substance is 1.8 hours.

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A motor with a horsepower rating of approximately 56.4 hp is required to drive the pump, assuming a pump efficiency of 70%.

To calculate the horsepower rating of the motor needed to power the pump, the following formula can be used:

Power = (Flow rate x Head x Density) / (Efficiency x 3960)

where:

Power is the required power in horsepower (hp).

Flow rate is the volumetric flow rate of water in gallons per minute (gpm).

Head is the total dynamic head of the pump in meters (m).

Density is the density of water in pounds per gallon (lb/gal).

Efficiency is the pump efficiency expressed as a decimal (e.g., 70% = 0.7).

3960 is a conversion factor to convert units to horsepower (hp).

The flow rate needs to be converted from gallons per minute to cubic meters per second by dividing by 15850.4, which is the conversion factor for the two units. Therefore:

Flow rate = 150 gpm / 15850.4 gpm/m^3 = 0.00946 m^3/s

The head needs to be converted from meters to feet to match the units used in the formula. This can be done by multiplying the head by 3.281. Hence:

Head = 120 m x 3.281 ft/m = 393.7 ft

The density of water also needs to be converted from pounds per gallon to kilograms per cubic meter to match the flow rate units. This can be accomplished by using the conversion factor of 0.45359 kg/lb. Therefore:

Density = 8.34 lb/gal x 0.45359 kg/lb / 0.00378541 m^3/gal = 999.1 kg/m^3

Substituting these values into the formula, we get:

Power = (0.00946 m^3/s x 393.7 ft x 999.1 kg/m^3) / (0.7 x 3960) = 56.4 hp

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When a hammer strikes a nail, the nail exerts an unbalanced force that changes its velocity.

So, the answer is C.

A force is described as a push or a pull that can cause an object to move or change direction.

When a force acts upon an object, the object is compelled to either stop, accelerate, or change direction. Force can be measured in units of newtons (N).There are two types of forces: balanced and unbalanced forces.

When two forces are equal in magnitude and opposite in direction, they are considered balanced forces. When two forces are unequal in magnitude or direction, they are considered unbalanced forces.

When a hammer strikes a nail, the nail exerts an unbalanced force that changes its velocity. The hammer exerts a force on the nail, driving it into the wood.

Hence, the answer of the question is C.

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Answer:

The amplitude of a sound wave decreases with distance from its source, because the energy of the wave is spread over a larger and larger area.

Explanation:

A larger amplitude means a louder sound, and a smaller amplitude means a softer sound.

Answer: Amplitude of sound

Explanation: The amplitude of sound decreases as we get further away from the source of a sound.

Amplitude is a measure of the size of sound waves. It depends on the amount of energy that started the waves. Greater amplitude waves have more energy and greater intensity, so they sound louder.

As the distance from the sound source increases, the area covered by the sound waves increases. The same amount of energy is spread over a greater area, so the intensity and loudness of the sound are less. This explains why even loud sounds fade away as you move farther from the source.

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The frequency of the photon absorbed when the hydrogen atom makes the transition from the ground state to the n=4 state is 2.47 x 10^14 Hz.

The energy of a photon emitted or absorbed in the hydrogen atom transition is given by the formula

E = hf, where E is the energy of the photon, h is Planck's constant, and f is the frequency of the photon.

The energy difference between the n=4 state and the ground state of hydrogen is ΔE = -13.6 eV (1/4^2 - 1/1^2).

Therefore, the energy of the absorbed photon is 13.6 eV.

Converting this to joules and substituting it into the energy formula gives E = hf.

Solving for f, we get f = E/h, which is approximately 2.47 x 10^14 Hz.

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As n increases without bound, the energy of the electron does not increase without bound but approaches a finite value known as the ionization energy.

As the principal quantum number n increases without bound, the energy of the electron in a hydrogen atom approaches a finite value known as the ionization energy, which is the energy required to completely remove the electron from the hydrogen atom.

The ionization energy for hydrogen is approximately 13.6 eV (electron volts). Once the electron is removed, the remaining system has zero energy, as the electron was the only constituent that had energy. Therefore, the energy of the electron in a hydrogen atom does not increase without bound, but rather approaches a finite value of the ionization energy as n increases.

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Answer:

High

Explanation:

Waves with high energy have a higher frequency.

A characteristic of a latch is that it has a clock input. This input allows the latch to synchronize with the clock signal, which helps to avoid timing issues that can arise when multiple components are interacting with each other.

Additionally, the clock input can be used to control the latch's behavior, such as by gating the latch's output or setting up timing constraints that must be met before the latch can change state. Another characteristic of a latch is that it can be either level-sensitive or edge-triggered, depending on the specific implementation. A level-sensitive latch responds to changes in the input signal's level, while an edge-triggered latch responds to changes in the input signal's edges. These characteristics make latches a useful tool for a wide range of digital logic applications, where precise timing and sensitive signal processing are critical.

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The  average diameter of an air molecule is approximately 0.364 nm.

The mean free path of an air molecule, λ, is related to the diameter of the molecule, d, and the number density of molecules, n, by the formula:

λ = 1/(√2πd^2n)

We can rearrange this formula to solve for the diameter of an air molecule:

d = √(1/(2πnλ))

The number density of molecules, n, is equal to the mass density of air divided by the mass of one molecule:

n = ρ / (mu * N_A)

where ρ is the mass density of air, mu is the average molecular mass of air, and N_A is Avogadro's number. Substituting the given values, we get:

n = 1.29 kg/m^3 / (29.0 u * 1.66 × 10^-27 kg/u * 6.02 × 10^23/mol) ≈ 2.46 × 10^25 m^-3

We are given that the mean free path of an air molecule at room temperature is λ = 111 nm = 111 × 10^-9 m. Substituting the values into the formula for the diameter of an air molecule, we get:

d = √(1/(2πnλ)) ≈ 0.364 nm

Therefore, the average diameter of an air molecule is approximately 0.364 nm.

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For laminar flow of air in a circular tube where the inlet temperature is lower than the constant surface temperature of the tube, if the mass flow rate were increased, both the outlet temperature and the heat transfer rate would decrease.

When the mass flow rate is increased, the velocity of the fluid inside the tube also increases. This reduces the thermal boundary layer thickness and hence the amount of heat transferred to the fluid. As a result, the outlet temperature decreases. At the same time, since the heat transfer rate is directly proportional to the mass flow rate, an increase in mass flow rate will result in an increase in heat transfer rate. However, the decrease in outlet temperature will offset this increase, and the net effect will be a decrease in the heat transfer rate. Therefore, both the outlet temperature and the heat transfer rate would decrease when the mass flow rate is increased.

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Answer:

I hope this helps ^^

Explanation:

If more factories start using large tanks of bacteria to remove carbon dioxide from the atmosphere, it would likely lead to a decrease in the overall amount of carbon dioxide in the atmosphere. Carbon dioxide is a greenhouse gas that contributes to the greenhouse effect, trapping heat in the Earth's atmosphere and causing global warming.

With a decrease in the amount of carbon dioxide, the total amount of energy in the Earth system would be affected. Carbon dioxide acts as a blanket, trapping heat from the sun and preventing it from escaping back into space. When the concentration of carbon dioxide decreases, less heat is trapped, resulting in a reduction of the total energy within the Earth system.

As for the global average temperature, the decrease in carbon dioxide levels would have a cooling effect on the planet. Since carbon dioxide is a major contributor to the greenhouse effect, its reduction would reduce the overall warming impact. This could lead to a decrease in the global average temperature, potentially slowing down or mitigating the rate of global warming.

However, it's important to note that the relationship between carbon dioxide levels, energy balance, and global temperature is complex and influenced by various factors. The impact of reducing carbon dioxide through bacteria tanks would depend on the scale of implementation, the effectiveness of the technology, and other factors that affect the Earth's climate system.

The index of refraction for the unknown material is 1.78.

When a light ray travels from one medium to another, the speed and direction of the ray can change depending on the refractive indices of the two media.

The refractive index, denoted by "n", is a dimensionless quantity that describes how much light is bent when passing through a medium. It is characterized as the proportion of the speed of light in a vacuum to the speed of light in the medium.

In this problem, we are given that the incident angle of the light ray is 33 degrees and the refracted angle is 25 degrees as it travels from glass (n=1.46) to an unknown material. Utilizing Snell's regulation, which expresses that the proportion of the sines of the points of frequency and refraction is equivalent to the proportion of the refractive records of the two media, we can find the index of refraction for the unknown material:

sin(33) / sin(25) = n_glass / n_unknown

where n_glass is the refractive index of glass, which is given as 1.46. Solving for n_unknown, we get:

n_unknown = n_glass * sin(25) / sin(33) = 1.78

Therefore, the index of refraction for the unknown material is 1.78.

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To solve this problem, we can use the equations related to the reflection and transmission of electromagnetic waves at the interface between two media. Here are the steps to determine the values:

(a) Γ (reflection coefficient):

The reflection coefficient is given by the formula:

Where Z1 and Z2 are the impedance of the first and second media, respectively. In this case, Z1 = Z0 (impedance of free space) and Z2 = Z0 / √εr (impedance of the dielectric medium).

Using εr = 36, we can calculate Z2 as follows:

Now, substitute the values into the reflection coefficient equation:

(b) Average power densities:

The average power density of the incident wave is given by:

where ε0 is the permittivity of free space and c is the speed of light.

Substituting the given values:

The average power density of the reflected wave is the same as the incident wave, as there is no absorption in the perfect dielectric medium.

(c) Distance to the nearest minimum of |E|:

For a normally incident wave on a dielectric interface, the electric field intensity follows a sinusoidal variation as a function of distance from the boundary. The distance to the nearest minimum of |E| can be calculated using the wavelength of the wave in the medium.

The wavelength in the dielectric medium is given by:

where λ0 is the wavelength in free space and εr is the relative permittivity of the dielectric medium.

Using εr = 36 and the frequency of 50 MHz, we can calculate λ as follows:

Since the wave is normally incident, the distance to the nearest minimum of |E| is half the wavelength, i.e., 3 m.

So, the answers are:

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The impulse experienced by the catcher when catching the baseball can be calculated using the impulse-momentum principle, which states that the impulse is equal to the change in momentum of the object.

The impulse is given by:
Impulse = Change in momentum
The momentum of an object is given by the product of its mass and velocity. In this case, the mass of the baseball is 145 g, which is equal to 0.145 kg, and its velocity is 38.0 m/s. Therefore, the initial momentum of the baseball is:
Initial momentum = mass * initial velocity = 0.145 kg * 38.0 m/s
Assuming the catcher catches the ball and brings it to rest, the final momentum of the baseball is zero since its velocity becomes zero. Hence, the change in momentum is:
Change in momentum = Final momentum - Initial momentum
Change in momentum = 0 - (0.145 kg * 38.0 m/s)
The impulse experienced by the catcher is equal to the change in momentum, so:
Impulse = -0.145 kg * 38.0 m/s
The average force exerted on the catcher by the baseball can be calculated using the equation:
Force = Impulse / Time
We have already calculated the impulse, which is -0.145 kg * 38.0 m/s. The time taken for the ball to stop once in contact with the catcher's glove is given as 23.0 ms, which is equal to 0.023 s. Substituting the values into the equation, we can calculate the average force:
Force = (-0.145 kg * 38.0 m/s) / 0.023 s
Therefore, the average force exerted by the ball on the catcher is equal to the calculated value.

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The tension in the string is equal to the weight of the cylinder minus the buoyant force acting on it. Therefore, the tension in the string is 34.29 N.

The weight of the cylinder is given by the formula:

w = mg

where m is the mass of the cylinder and g is the acceleration due to gravity.

w = 4.0 kg x 9.81 m/s^2 = 39.24 N

The volume of the cylinder is given by the formula:

V = m / ρ

where ρ is the density of iron.

V = 4.0 kg / 7860 kg/m^3 = 5.08 x 10^-4 m^3

The buoyant force is given by the formula:

F_b = ρ_w V g

where ρ_w is the density of water and g is the acceleration due to gravity.

F_b = 1000 kg/m^3 x 5.08 x 10^-4 m^3 x 9.81 m/s^2 = 4.95 N

Therefore, the tension in the string is:

T = w - F_b = 39.24 N - 4.95 N = 34.29 N.

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The distance of the image is around -9.08 cm, indicating that it is a virtual image formed on the same side as the object. The size of the image is roughly 0.256 times the size of the object.

To determine the image distance and image size formed by a diverging lens, we can use the lens formula and magnification formula. The lens formula is given by:

1/f = 1/v - 1/u

where f is the focal length of the lens, v is the image distance, and u is the object distance.

Given:

Object distance (u) = -35.5 cm (negative sign indicates a virtual object)

Focal length (f) = -12.2 cm (negative sign indicates a diverging lens)

Using the lens formula, we can solve for the image distance (v):

1/(-12.2) = 1/v - 1/(-35.5)

Simplifying the equation, we get:

-0.08197 = 1/v + 0.02817

Rearranging the terms, we have:

1/v = -0.08197 - 0.02817

1/v = -0.11014

Taking the reciprocal of both sides, we find:

v = -9.08 cm

The negative sign indicates that the image is formed on the same side as the object, indicating a virtual image.

To calculate the image size, we can use the magnification formula:

magnification (m) = -v/u

Substituting the values, we get:

m = -(-9.08) / (-35.5)

m ≈ 0.256

The negative sign in the magnification indicates that the image is upright.

The image distance is approximately -9.08 cm (virtual image formed on the same side as the object), and the image size is approximately 0.256 times the size of the object.

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The electric potential at the center of one of the rings is 91.111 V.  The electric potential at the center of one of the rings can be calculated using the formula for electric potential, which is:

V = F / q

where V is the electric potential, F is the force on a charge q, and q is the charge of the particle.

In this case, the force on a charge q at a distance r from a point charge q1 is given by:

F = k * (q1 * q / r)

where k is the Coulomb constant (9 * 10^9 N m^2 C^(-2))

The charge on each of the rings is q = +9.0 nC, so the force on a charge q at a distance r from the center of the ring is:

F = k * (+9.0 nC * +9.0 nC / r)

= 810 N

The electric potential at the center of one of the rings is:

V = F / q = 810 N / (9.0 nC) = 91.111 V

So the electric potential at the center of one of the rings is 91.111 V.  

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Answer:

Zhaozhou Bridge was built in the Sui Dynasty between 595 and 605. It has a history of more than 1,400 years. It is the crystallization of the wisdom of the ancient working people and has opened a new situation in bridge construction in China.

Zhaozhou Bridge is the oldest, longest span and best preserved single-aperture open-shoulder stone arch bridge in the world. In 2015, it was awarded as one of the top ten City Business Cards of Shijiazhuang. Zhaozhou Bridge is a single span stone arch bridge, its design is both beautiful and scientific. The structure of the whole bridge is well-proportioned and harmonized with the surrounding scenery. The stone balustrades on the bridge are beautifully carved. The high technical level and immortal artistic value of Zhaozhou Bridge fully demonstrate the wisdom and strength of the Chinese working people. Zhaozhou Bridge is second to none among ancient Bridges in China. According to bridge studies in countries around the world, open-shouldered arch Bridges like these did not appear in Europe until the mid-19th century, more than 1,200 years later than our own. After the completion of Zhaozhou Bridge, the initial name is Zhaojun River Stone Bridge. It was named after the place name and water name of the time, and it was here that the original name began. Zhaozhou Dashi Bridge is the common name of local people. Yongtong Bridge was built on the Ye River (Qingshui River) outside the west gate of Zhaozhou City, later than Zhaojun River Stone Bridge, with similar architectural structure and artistic style, but smaller shape. It is only 2.5 kilometers away from Zhaojun River Stone Bridge, so it is called Zhaozhou Dashi Bridge because its size can distinguish the second north-south bridge. Zhaozhou Bridge is named after a place name. Since the northern Qi Tianbao two years, Yanzhou changed to Zhaozhou, Zhaozhou name from this.

The amount of energy required to convert all the ice and water into steam is 12,955,520 J.

To convert all the ice and water into steam, we need to calculate the amount of energy required for each step of the process. First, we need to calculate the energy required to raise the temperature of the ice from -9 °C to 0 °C using the specific heat capacity of ice.

Then, we need to calculate the energy required to melt the ice at 0 °C using the latent heat of fusion of ice. Next, we need to calculate the energy required to raise the temperature of the resulting water from 0 °C to 21 °C using the specific heat capacity of water.

After that, we need to calculate the energy required to raise the temperature of the water from 21 °C to 100 °C and then to convert it into steam at 100 °C using the specific heat capacity of water and the latent heat of vaporization of water.

When all these energies are added together, we get the total amount of energy required, which is 12,955,520 J.

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The half-life of the given element is approximately 25.33 years.

In the decay function, a(t) = a * e^(-0.0274t), the parameter λ = 0.0274 is the decay constant of the radioactive element  The half-life of the element is the amount of time it takes for half of the initial amount of the element to decay. We can determine the half-life by setting a(t) = 0.5a in the decay function and solving for t.

This gives us t = ln(2) / λ.

Substituting the value of λ into this equation, we get t = ln(2) / 0.0274 ≈ 25.33 years. Therefore, the half-life of the radioactive element is approximately 25.33 years.

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The magnetic flux passing through defined by 0.02 < r < 0.03 m and 0 < z < 3 is `8π × 10⁻⁷ Wb`

Permeability of free space is given by `μ0 = 4π × 10⁻⁷ T m A⁻¹`

Formula used to calculate the magnetic flux passing through the defined area is as follows:

`ΦB = μ0 * I * (Θ2 - Θ1) / 4π`

Where

I = current

Θ1 = lower limit of angle

Θ2 = upper limit of angle

For the given problem, current filament is along the z – axis in the direction, thus the angle Θ1 and Θ2 will be 0 and 2π respectively.

The distance between 0.02 m and 0.03 m is 0.01 m, the mean radius of the area will be`(0.03 + 0.02) / 2 = 0.025 m`

The formula for calculating the magnetic flux through the defined area is`ΦB = μ0 * I * (Θ2 - Θ1) / 4π`

From the question, we know that;:

μ0 = `4π × 10⁻⁷ T m A⁻¹`

I = 4A

Θ1 = 0

Θ2 = 2π

The formula becomes`ΦB = (4π × 10⁻⁷) * 4 * (2π - 0) / 4π``ΦB = 8π × 10⁻⁷ Wb`

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No, energy is not destroyed when the vibrations of incident and reflected waves cancel at the nodes in a standing wave.

In a standing wave, the incident and reflected waves interfere with each other, creating a pattern of nodes (points of no displacement) and antinodes (points of maximum displacement).

At the nodes, the waves cancel each other out due to destructive interference, but this does not mean that energy is destroyed.

Instead, the energy is redistributed in the form of constructive interference at the antinodes, where the incident and reflected waves add together.

This redistribution of energy maintains the overall energy within the system, in accordance with the law of conservation of energy.
Although the vibrations of incident and reflected waves cancel at the nodes in a standing wave, energy is not destroyed. The energy is redistributed and conserved within the system, manifesting as constructive interference at the antinodes.

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If we treat an electron as a classical rigid sphere with a radius of 1.20×10−17 mm and uniform density, we can use the formula for the moment of inertia of a solid sphere: I = (2/5)mr^2, where m is the mass of the electron and r is the radius of the sphere. The mass of an electron is 9.11×10^-31 kg.

So, I = (2/5)(9.11×10^-31 kg)(1.20×10−17 mm)^2 = 1.03×10^-52 kg·m^2

If we assume that the electron is rotating around its own axis, we can use the formula for rotational kinetic energy: K = (1/2)Iω^2, where ω is the angular speed.

Assuming that the electron is not interacting with any external forces, the total energy of the system is conserved. Therefore, we can equate the rotational kinetic energy to the rest energy of the electron (given by Einstein's famous formula E = mc^2), which is 8.19×10^-14 J.

So, (1/2)Iω^2 = 8.19×10^-14 J

ω^2 = (2/5)(8.19×10^-14 J)/(1.03×10^-52 kg·m^2) = 1.28×10^38 s^-2

ω = √(1.28×10^38 s^-2) = 1.13×10^19 s^-1

Therefore, the angular speed of the electron treated as a classical rigid sphere with uniform density and radius 1.20×10−17 mm is approximately 1.13×10^19 s^-1.

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In sample problem 6c, we are given an initial velocity of 20.0 m/s to the west and are asked to determine how long it would take the car to come to a stop as well as the distance it would move before stopping, assuming a constant acceleration.

To solve for the time it would take for the car to come to a stop, we can use the formula:

final velocity = initial velocity + acceleration * time

As the car is coming to a stop, its final velocity will be 0 m/s. We know the initial velocity is 20.0 m/s to the west, and assuming a constant acceleration, we can solve for time:

0 m/s = 20.0 m/s - acceleration * time

time = 20.0 m/s ÷ acceleration

Unfortunately, we do not have enough information to determine the value of acceleration, so we cannot solve for time.

To determine how far the car would move before stopping, we can use the formula:

distance = initial velocity * time + 1/2 * acceleration * time^2

Again, we cannot solve for time without knowing the value of acceleration, so we cannot determine the distance the car would move before stopping.

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The specific weight of concrete, an artificial rock composed of cement, sand, gravel, and water, is typically measured relative to water. Specific weight, also known as unit weight, is the weight per unit volume of a material. Concrete has a higher specific weight than water due to the presence of cement, sand, and gravel, which are denser materials.

The specific weight of water is approximately 9.81 kN/m³ or 62.4 lb/ft³. In comparison, the specific weight of concrete can range from 22 to 25 kN/m³ (roughly 140 to 160 lb/ft³), depending on the mix and constituents used. The variation in the specific weight of concrete depends on factors such as the type of aggregates, proportions of the components, and the degree of compaction.

In summary, the specific weight of concrete is higher than that of water due to the dense materials that comprise it, such as cement, sand, and gravel. This difference in specific weight has practical implications in construction, as it influences the strength and stability of structures built with concrete.

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If the tube diameter and length both double while everything else remains the same, the Reynolds number, which is the dimensionless quantity that characterizes the flow regime, remains the same because the fluid velocity, viscosity, and density remain constant. Therefore, the flow remains laminar.

The volume flow rate (Q) in laminar flow is given by:

Q = (π/8) * (d^4) * ΔP / μL

where d is the tube diameter, ΔP is the pressure difference between the ends of the tube, μ is the fluid viscosity, and L is the tube length.

If both d and L double, we have:

Q' = (π/8) * (2d)^4 * ΔP / μ(2L)

Q' = 16 * (π/8) * d^4 * ΔP / μL

Q' = 2 * Q

Therefore, the volume flow rate increases by a factor of 2.

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The author advises to make sure the red and black cables are connected to the corresponding terminals, and to connect the red cable to the dead battery first.

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The semimajor axis of the comet's orbit is approximately 3.53 x 10^13 meters.the greatest distance from the Sun of the Woo Woo day comet, expressed in terms of the mean orbit radius R_p​ of Pluto, is approximately 12.2.

      (a) The semimajor axis of the comet's orbit can be calculated using the formula:T^2 = (4π^2 a^3)/(G(M + m))
where T is the period of the comet's orbit, a is the semimajor axis, G is the gravitational constant, M is the mass of the Sun, and m is the mass of the comet (which we assume to be negligible compared to the mass of the Sun). Rearranging the formula, we get:
a = (T^2 G(M + m))/(4π^2)
Substituting the given values, we get:
a = [(1420 years x 365.25 days/year x 24 hours/day x 3600 s/hour)^2 x 6.6743 x 10^-11 N m^2/kg^2 x (1.9891 x 10^30 kg)]/(4π^2) ≈ 3.53 x 10^13 m

Therefore, the semimajor axis of the comet's orbit is approximately 3.53 x 10^13 meters.
(b) The greatest distance from the Sun (aphelion distance) can be calculated using the formula:
r_a = a(1 + e)
where r_a is the aphelion distance and e is the eccentricity of the orbit. Substituting the given values, we get:
r_a = a(1 + e) ≈ 3.53 x 10^13 m x (1 + 0.9932) = 7.19 x 10^13 m

To express the result in terms of the mean orbit radius R_p​ of Pluto, we can divide the result by the mean distance of Pluto from the Sun:

r_a/R_p​ = (7.19 x 10^13 m)/(5.91 x 10^12 m) ≈ 12.2

Therefore, the greatest distance from the Sun of the Woo Woo day comet, expressed in terms of the mean orbit radius R_p​ of Pluto, is approximately 12.2.

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To calculate the power wasted when electricity is delivered at different voltages, we can use the formula:

Power wasted = (I^2) * R

Where:

I is the current flowing through the wires

R is the total resistance of the wires

First, let's calculate the current flowing through the wires using Ohm's Law:

I = V / R

Where:

V is the voltage

For the first case, where the electricity is delivered at 50,000 V:

I = 50,000 V / 3.0 Ω

Calculating the current:

I ≈ 16,667 A

Now, we can calculate the power wasted using the formula:

Power wasted = (I^2) * R

Power wasted = (16,667 A)^2 * 3.0 Ω

Power wasted ≈ 0.835 MW

Now, let's calculate the power wasted when the electricity is delivered at 12,000 V:

I = 12,000 V / 3.0 Ω

Calculating the current:

I ≈ 4,000 A

Power wasted = (4,000 A)^2 * 3.0 Ω

Power wasted ≈ 48 MW

To calculate the difference in power wasted, we subtract the power wasted at 50,000 V from the power wasted at 12,000 V:

Difference in power wasted = Power wasted (12,000 V) - Power wasted (50,000 V)

Difference in power wasted ≈ 48 MW - 0.835 MW

Difference in power wasted ≈ 47.165 MW

Therefore, if the electricity is delivered at 50,000 V instead of 12,000 V, approximately 47.165 MW less power is wasted.

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