explain why only a handful of solids exhibit ferromagnetic or ferrimagnetic behavior

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Answer 1

Ferromagnetic or ferrimagnetic behavior is exhibited by only few solids because of the strong exchange interaction and high concentration of unpaired electrons required, as well as low temperature to prevent thermal disruptions.

Ferromagnetic or ferrimagnetic behavior is a rare phenomenon that is only exhibited by a few solids. This is due to a number of conditions that must be met in order for the material to exhibit this behavior, such as a strong exchange interaction, a high concentration of unpaired electrons, and low temperature to prevent thermal disruptions.

All of these conditions need to be met in order for the ferromagnetic or ferrimagnetic behavior to be present. Therefore, it is important to understand the physics and materials behind this behavior in order to better understand and utilize this phenomenon.

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a system of two wheels fixed to each other is free to rotate about a frictionless axis through the common center of the wheels and perpendicular to the page. four forces are exerted tangentially to the rims of the wheels, as shown below what is the magnitude of the net torque on the system about the axis? select all that apply

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The torque on the system of two wheels fixed to each other rotated about the frictionless axis is 2FR.

The force that can cause an object to rotate along an axis is measured as torque. There are four forces shown in the diagram. The forces on the outer wheel of radius 3R are, 2F, F, and F. And the forces on the inner wheel of radius 2R are F.

To calculate the total torque, calculate the torque due to each force and add the values. Use the formula, [tex]\tau = \vec{R} \times \vec{F}[/tex].

[tex]\tau = (3R)(2F)(\hat{j} \times \hat{i}) + (3R)(F)(-\hat{i} \times -\hat{j}) + (3R)(F)(-\hat{j} \times \hat{i}) + (2R)(F)(-\hat{j} \times \hat{i})\\\tau = -(6RF)\hat{k} + (3RF)\hat{k} + (3RF)\hat{k} + (2RF)\hat{k} \\\tau = 2RF\hat{k}[/tex]

The magnitude of torque is, 2FR in the z-direction.

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describe the processes occurring in a nebula and explain why rocky planets are formed closer to the center of the solar system.

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The processes occurring in a nebula include gravitational collapse, fragmentation, and accretion. Rocky planets, such as Earth, are formed closer to the center of the solar system because the temperature in the inner regions is high.

A nebula is a cloud of gas and dust in space where stars and planets are formed.

Gravitational collapse refers to the contraction of a cloud of gas and dust under its own gravity, which causes the material to become denser and hotter. This process leads to the formation of a dense core, known as a protostar.

Rocky planets, such as Earth, are formed closer to the center of the solar system because the temperature in the inner regions is higher, allowing the metals and silicates that make up rocky planets to condense and form solid bodies. In contrast, the outer regions are cooler and dominated by lighter elements, such as hydrogen and helium, which form gas giants like Jupiter. This is why the inner region of the solar system is dominated by rocky planets and the outer region by gas giants.

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what is the relation between the conic definition and the points definition of a parabola

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It is the line on a parabola whose distance from any point is equal to the distance from that point to the focus.

It is the line whose distance from any point on the conic makes a constant ratio with the distance between that point and the focus when the conic is defined in polar terms.

What is parabola?

A parabola is an approximately U-shaped, mirror-symmetrical plane curve in mathematics.

It corresponds to a number of seemingly unrelated mathematical descriptions, all of which can be shown to define the same curves. A parabola can be described using a point and a line.

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A mass M is split into two parts m and (M−m), which are, then separated by a certain distance. The ratio m/M which maximizes the gravitational force between the parts isA. 1:4B. 1:3C. 1:2D. 1:1

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The ratio of m/M which maximizes the gravitational force between the parts is calculated to be 1:2.

A mass is split into two parts, m and (M - m).

Let the distance by which they are separated is r.

The gravitational force between two parts is given by,

F = G m (M - m)/r²

To get the maximum value of gravitational force, we should differentiate F.

dF/dm = 0

d/dm [G m (M - m)/r²] = 0

d/dm (mM - m²) = 0

M - 2m = 0

m = M/2

m:M = 1:2

Thus, the force between them is maximum when the ratio between m and M is 1:2.

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prisms are capable of separating white light into separate colors because: prisms are capable of separating white light into separate colors because: a. the material used has a low refractive index. b. the material used is dispersive. c. the prism has a specific shape. both a

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Prisms are capable of separating white light into separate colors. prisms are capable of separating white light into separate colors. a and b options are correct. The options are a. the material used has a low refractive index. b. the material used is dispersive.

The separation of white light into its component colors is called refraction, and it occurs because the different colors of light are bent at different angles as they pass through the prism. This is due to the fact that different colors of light have different wavelengths, and therefore different refractive indices, so they bend differently as they pass through the prism. The material used for the prism, being dispersive, exacerbates this effect, which leads to the separation of the colors of light. The specific shape of the prism is also important, as it determines how much refraction occurs and how the light is separated.

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when charging the guide block sphere, why do we have to remove our finger before removing the charged rod? in other words, would the sphere be charged if we removed the rod before removing our finger? why or why not?

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Answer:

if the finger were removed "after" removing the charged rod then any charge due to the charged rod will be removed by the finger, and there will be no net charge on the sphere.

Conduct online research to learn about new developments in forensic science and the scientists responsible for these developments. This can include new methods, technology, instruments, and so on.

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New advancements in forensic science and the scientists responsible for these advancements are detailed below.

What is technology?

Technology is the use of knowledge to achieve practical goals in a repeatable manner. The term technology may also refer to the products of such endeavors, which can include both tangible things like utensils or machinery and immaterial ones like software. Technology is the application of scientific knowledge to the practical goals of human existence, or, as it is sometimes referred to, to the modification and manipulation of the human environment. Technology is the practical application of scientific knowledge. It comprises machines (such as computers) as well as procedures and processes (like the way we produce computer chips). It may appear that all technology is electronic, but that is only true of most current technology.

Here,

Researchers can now read evidence such as footprints, fingerprints, and striking marks thanks to image enhancement technology. Data mining databases, such as the Connected DNA Index System (CODIS) and the Automated Fingerprint Identification Systems (AFIS), help solve situations that were previously unsolvable.

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what are recording meters used to detect?

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Recording metres are used to detect voltage or current or both for a single phase. A kilowatt-kiloVARs recording meter will record true power (kilowatts) or reactive power (kiloVARs) on a time share basis.

A device that is typically powered by clockwork and has a chart on which fluctuations (such as current or pressure) are recorded.

The term recording instrument refers to a device that continuously records the magnitude variation of an electrical quantity over a specified time. It is utilised in settings where it is necessary to continuously monitor the state of the circuit. The record is utilised for computational or future reference purposes.

The graphed readings of the physical values are taken by the recording devices. Additionally, it keeps track of how the amounts change over time. Examples of recording instruments include the galvanometer recorder, thermoscope, ECG machine, and voltmeter.

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The height of a satellite at perigee is 300 km above the earth's surface and it is 3000 km at apogee. Find the orbit's eccentricity. If we take the orbit to define the xy plane and the major axis in the x direction with the earth at the origin, what is the satellite's height when it crosses the y axis? The earth's radius is Re = 6.4 Times 10^6 m. You will also need to know GM_e, but you can find this if you remember that GM_e / R_e^2 = g.]

Answers

Satellite moves in an elliptic orbit with Earth being in one focus.

The orbit's eccentricity is 0.1677

we know that

|CF|=|FB|=R=6400|PC||AB||FC|=300=3000=|FB|=R=6400

unit of km has been omitted, we will restore it in the end. let a and b be semi-major and semi- minor axes of the ellipse. Let c be the distance from the focus, we have

2a = |AB|+2R+|PC| = 2R+3300

a =8050 = C+R+ |PC|

=c+6700

c = 1350

Since eccentricity is defined as e = c/a combining (4) and (5) we find

13508050 = 0.1677 e =ac=80501350= 0.1677

We can find b from the known relation 2b = c2-a2.

since we have a and b, we can set up the ellipse equation as

a2(x-c)2 + b2y2 = 1

we can set x = 0 and solve for y in equation(7)

y = a (1-a2c2) = a(1-e2)

  = 7800

satellite's height is h, then h = y-R

h = y- R = 1400 km

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f the spring constant is 200 n/m and applied force is -50 n, how much will the spring be stretched or displaced?

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The spring will be stretched or displaced by -0.25 m. A negative displacement indicates that the spring is being compressed rather than stretched.

The amount of displacement, x, of a spring can be calculated using the equation:

x = F / k

where k is the spring constant and F is the applied force. In this case, the applied force is -50 N and the spring constant is 200 N/m. Plugging in the values, we get:

x = -50 N / 200 N/m = -0.25 m

The equation used to calculate the displacement of a spring is based on Hooke's Law, which states that the force required to stretch or compress a spring is proportional to the amount of displacement.

The proportionality constant, k, is called the spring constant, and it is unique to each spring and determines the stiffness of the spring. The higher the spring constant, the more force is required to produce a given amount of displacement.

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galileo's contributions to astronomy included group of answer choices discovering the laws of planetary motion discovering the law of gravity making observations and conducting experiments that dispelled scientific objections to the sun-centered model. sending a spacecraft to jupiter.

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Galelio's contribution to astronomy is to make observations and experiments that overcome scientific objections to the heliocentric model.

Galileo's telescopic discoveries helped prove that the Sun was the center of the solar system, not the Earth. His observations strongly supported the heliocentric model previously proposed by astronomers such as Nicolaus Copernicus. Heliocentricity (also called the heliocentric model) is an astronomical model in which the Earth and planets revolve around the Sun at the center of the universe. Historically, heliocentrism contrasted with geocentrism, which places the earth at the center. He had discovered that the Sun has dark-colored spots which are called sunspots.

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there are five different common overcurrent protection trip types that a circuit breaker may incorporate. which type is intended for overcurrents that can persist for many seconds to minutes without damaging the conductors or electrical equipment and is considered overload and low-level fault protection?

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Overcurrent refers to a sudden and rapid increase in current over a short period of time (also known as a short circuit or ground fault) (fractions of a second).

Fuse or circuit breakers are used to safeguard equipment and circuits from overcurrent conditions.

The current value is much higher than the nominal line current and can range from six times to hundreds of times higher than the typical rated current value.

Thermal energy: High current levels generate a lot of heat, which can harm cables and equipment. I2t (current squared times time) can be used to express thermal energy;

Mechanical forces: Busbars and other equipment may become warped or experience other issues due to the high-fault currents' ability to produce strong magnetic fields.

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Describe how you could show that the strength of an electromagnet depends on the current in the coil.

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Answer:

The strength of the current passing through the coil, the greater the current, the greater the strength. This because the current increases there is more flow of electrons which in turn increases the magnetic field around it. The number of turns in the coils, the greater the number of coils, the greater the strength.

Explanation:

sorry if im wrong

what is the vapor pressure of sicl4 in mmhg at 30.0 ∘c ? the vapor pressure of sicl4 is 100 mmhg at 5.4 ∘c , and δhvap = 30.2 kj/mol .

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Using the Clausius-Clapeyron equation, at 30°C, the vapor pressure of SiCl4 was found to be 205.4 mmHg.

The Clausius-Clapeyron equation can be used to describe the effect of temperature on the vapor pressure of a volatile compound. The heat of vaporization must be known in order to use the Clausius-Clapeyron equation. The Clausius-Clapeyron equation is shown in the attached picture.

According to question:-

T1 = 5.4 ∘c = 278.55 K

P1 = 100 mmHg

T2 = 30.0 ∘c = 303 K

δHvap = 30.2 kj/mol = 30200 J/mol

Also, we know that R (gas constant) = 8.314 J/mol-K

This is a straightforward application of the Clausius-Clapeyron equation to determine the vapor pressure of a compound at various temperatures. We can rewrite the equation to get: P2 = P1 . eˣ

where x = δHvap/R [1/T1 - 1/T2]

Hence, we get, x = 30200/8.314 [1/278.55 - 1/303]

x = 3632.42 [0.0035 - 0.0033]

x = 3632.42 [0.0002]

x = 0.726

Putting this value in modified Clausius-Clapeyron equation :

P2 = P1 . e⁰·⁷²⁶

P2 = 100  . e⁰·⁷²⁶

P2 = 100 x 2.054

P2 = 205.4 mmHg

Hence, at 30°C, the vapor pressure of SiCl4 is 205.4 mmHg.

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if i have two charges, both positive, what happens to the net potential energy if i bring in a 3rd equal charge to form an equilateral triangle?

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The net potential energy decreases when a third equal positive charge is brought in to form an equilateral triangle with the two original charges because the charges are now closer to each other, reducing their potential energy due to their repulsive electrostatic force.

When two positive charges are brought close to each other, the net potential energy between them increases due to their repulsive electrostatic force. However, when a third equal positive charge is introduced and they form an equilateral triangle, the net potential energy decreases.

This happens because the charges are now more evenly distributed and the repulsive forces between them are reduced. As a result, the total potential energy of the system decreases, which is a measure of the work required to bring the charges to their current positions. To put it simply, the equilateral arrangement of the charges reduces the overall repulsion between them, leading to a decrease in potential energy.

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why are they called projectile electrons and not just electrons? do we have another type of electrons?

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Projectile electrons are called as such because they are electrons that are emitted from a sample and are used as a projectile to ionize other species in a mass spectrometer.

The term "projectile electrons" serves as a descriptor of their function and is used to differentiate them from other types of electrons in the mass spectrometer.

Yes, there are other types of electrons, such as bound electrons that are associated with atoms and molecules, free electrons that are not associated with any species, and photoelectrons, which are electrons that are emitted when a material absorbs light.

Projectile electrons are just one type of electron, used specifically in mass spectrometry for ionization purposes.

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the wavelength of a certain laser is 0.66 microns, where 1 micron = 1 x 10-6 m. what is this wavelength in nanometers? (1 nm = 10^-9m) ?

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The wavelength in nanometers is 660 nm, if the wavelength in micron is 0.66 micron.

Micron is the unit of length measurement of the atomic level. It is equal to 10⁻⁶ m. It is denoted by μ. Whereas nanometer is also a unit of length measurement but shorter than the micron. it is denoted by "nm". It is 1000 time shorter than the micron. 1 nanometer is equal to 10⁻³ micron or 10⁻⁹ meter. Both these units are used in measuring the radius of atoms, orbital radius of electrons, wavelength of light waves, sound waves etc.

If the wavelength in micron = 0.66 micron = 0.66 × 10⁻⁶ m

Then wavelength in nanometer, = (0.66 × 10⁻⁶)/(10⁻⁹) = 660 nm

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4x consider the differential equation with initial condition . a. use euler's method with two steps to estimate when : (be sure not to round your calculations at each step!) now use four steps: (be sure not to round your calculations at each step!) b. what is the solution to this differential equation (with the given initial condition)? c. what is the magnitude of the error in the two euler approximations you found? magnitude of error in euler with 2 steps

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At two steps the approximate solution is 3.25, and after four steps, it is 4.5

To find an approximate solution to the given differential equation with the given initial condition, you can use Euler's method with two steps.

At t = 2, the approximate solution is 3.25, and after four steps, it is 4.5. The difference between the two estimates, which is 1.25, would reflect the size of the mistake in the two Euler approximations you discovered.

The idea of numerical errors must be understood in order to fully investigate Euler's method. Numerical mistakes happen during the numerical solution of a differential equation when the approximate solution is not sufficiently close to the genuine solution. Numerous variables, such as the chosen numerical approach, the number of steps executed, the step size, and the precision of the beginning circumstances, might contribute to these inaccuracies.

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the racer continues at this velocity to the finish line. if he was 300 m from the finish line when he started to accelerate, how much time (in s) did he save

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The amount of time that the racer saved by the acceleration is 5.27 s.

From the question, we are given that Initial velocity = 11.5 m/s, Acceleration rate = 0.5 m/s², and Time = 7s.

First, calculate the final velocity of the racer using the equation of motion:

  v = u + a * t

  v = 11.5 + 0.5 * 7 = 15 m/s

Use the formula as follows to calculate the distance :

  s = v * t + 1/2 * a * t²

  s = 11.5 * 7 + 1/2 * 0.5 * 7²

  s = 92.75 m

Then calculate the distance traveled by the racer with the final velocity:

  d = 300 - 92.75

     = 207.25 m

After that, calculate the time spent traveling the 207.25m distance:

  t = 207.25 / 15 = 13.82 s

And the total time spent traveling the whole 300 m distance:

  t = 7 + 13.82 = 20.82 s

From here, we can calculate the time required to travel 300m with the initial velocity:

  t0 = d / v0

  t0 = 300 / 11.5 = 26.09 s

Therefore, the amount of time saved due to acceleration is:

  t = 26.09 - 20.82

  t = 5.27 s

Your question seems to be incomplete. The completed version is most likely as follows:

A bicycle racer sprints at the end of a race to clinch a victory. The racer has an initial velocity of 11.5 m/s and accelerates at the rate of 0.500 m/s2 for 7.00 s. The racer continues at this velocity to the finish line. If he was 300 m from the finish line when he started to accelerate, how much time did he save?

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Let's say that the total energy of the skater is 100 J. a. If Potential Energy at the top of the ramp is 100 J, how much Kinetic energy does the skater have?​

Answers

Answer:

At a start, the potential energy = mgh and kinetic energy = zero because its velocity is zero. Total energy of the object = mgh. As it falls, its potential energy will change into kinetic energy. If v is the velocity of the object at a given instant, the kinetic energy = 1/2mv2.

Have a Nice Day.

If the local government in Parksville, British Columbia, decided to put on a public Canada Day parade, how would the parade be classified?A) a public goodB) rival in consumptionc) a common resourced) excludable

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The Canada Day parade organized by the local government in Parksville, British Columbia would likely be classified as a public good.

The Canada Day parade organized by the local government in Parksville, British Columbia provides a valuable public service. It is a non-excludable and non-rivalrous good that can benefit all members of the community. As a non-excludable good, everyone is free to take part in the parade regardless of their ability to pay.

Similarly, it is a non-rivalrous good, which means that one person's consumption does not reduce the amount available for another. In this way, the Canada Day parade serves as an excellent example of a public good.

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mr kim is driving in his tesla at a velocity of 20m/s. he then slams the accelerator and hits a velocity of 80m/s. by what factor has mr. kim and his tesla changed their kinetic energy?

Answers

Answer: The kinetic energy has increased 16 times.

Explanation:

Kinetic energy is the energy of an object in motion, and is calculated using the formula: kinetic energy = 1/2 * mass * velocity^2.

When Mr. Kim's Tesla was traveling at a velocity of 20 m/s, its kinetic energy was: 1/2 * mass * 20^2 = 1/2 * mass * 400 = 200 * mass joules.

When he accelerated to a velocity of 80 m/s, the kinetic energy of the Tesla increased to: 1/2 * mass * 80^2 = 1/2 * mass * 6400 = 3200 * mass joules.

To find the factor by which the kinetic energy has changed, we can divide the final kinetic energy by the initial kinetic energy:

3200 * mass joules / 200 * mass joules = 16.

Therefore, Mr. Kim and his Tesla have changed their kinetic energy by a factor of 16. This means that the kinetic energy has increased 16 times.

Consider the parallel reactions shown below. The activation energies are 45.3 kJ mol-1 for k1 and 69.8 kJ mol-1 for k2. If the rate constants are equal at 320 K, at what temperature will k1/k2 =2.00?

Answers

The required temperature at which the ratio of rate constants become two is 298 K.  

The Arrhenius equation for changing A into B is as follows:

k₁ = A₁ e⁻^(Ea)₁/RT

The equation becomes for converting A to C is,

k₂ = A₂ e⁻^(Ea)₂/RT

These equations allow for the following expression for the ratio of rate constants of the parallel reactions,

k₁/ k₂ = A₁ e⁻^[(Ea)₁/RT]/A₂ e⁻^[(Ea)₂/RT] = A₁/A₂ e^[(Ea)₂ - (Ea)₁]/RT

Substituting the known values in the ratio, we get,

k₁/ k₂ = A₁/A₂ e^[(Ea)₂ - (Ea)₁]/RT = A₁/A₂ e^[69.8 × 10³- 45.3 × 10³]/8.314 T

⇒ A₁/A₂ e^ (2.95 × 10³/T)

The rate constants are equal when the reaction is carried out at 350 K. Therefore, the ratio of rate constants becomes one.

Now, the equation can be given as,

1 = A₁/A₂ e^ (2.95 × 10³/320)

1 = A₁/A₂ e^9.21

1 = A₁/A₂ (9.985 × 10³)

A₁/A₂ = 1/(9.985 × 10³) = 1.001 × 10⁻⁴

The temperature at which the rate constant (K) ratio becomes 2 can be calculated as,

2 = (1.001 × 10⁻⁴) e^(2.95 × 10³/T)

e^(2.95 × 10³/T) = 1.997 × 10⁴

Therefore, 2.95 × 10³/T = ln(1.997 × 10⁴) = 9.902

The temperature (T) at which the ratio becomes 2 can be calculated as,

T = 2.95 × 10³/9.902 = 297.6 K ≈ 298 K

Thus, the temperature at which the ratio of rate constants becomes two is 298 K.

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what will h be for water at 20°c if w = 0.5 mm?

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The capillary height change h can be calculated as h = 2Ycos(θ) / (ρg), so the h will be 30mm.

Consider the balance of forces operating on a fluid in a narrow cylindrical tube to calculate the capillary height change h. The surface tension of the fluid, represented by Y, operates at the fluid-air contact to reduce the fluid's surface area. The force of gravity, denoted by [tex]\rho gh[/tex], acts downward and attempts to increase the volume of the fluid. The contact angle, denoted by [tex]\theta[/tex], is the angle formed by the liquid-air interface and the solid surface.

The equation for the capillary height change is [tex]h=\frac{2Ycos\theta}{\rho g}[/tex],

For water at 20°c, Y≈0.0728 N/m, [tex]\rho g \approx 9790[/tex] [tex]N/m^{3}[/tex], and [tex]\theta \approx 0^\circ[/tex].

Thus, for W = 0.5 mm, then the capillary height change h can be found by multiplying the above result by [tex]\frac{W}{2}[/tex].

[tex]h = \frac{{2(0.728N/m)\cos \theta ^\circ }}{{(9790N/{m^3})(0.0005m)}} \approx 0.030m \approx 30mm[/tex]

Hence, h will be 30mm.

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The given question is incorrect. The correct question is given as:

Derive an expression for the capillary height change h, as shown, for a fluid of surface tension Y and contact angle [tex]\theta[/tex]  between two parallel plates W apart. Evaluate h for water at 20°c if W = 0.5 mm.

two small balls of the same material, one of mass m and the other of mass 2m , are dropped simultaneously from the leaning tower of pisa. on which ball does earth exert a bigger force?

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Two small balls of the same material, one of mass m and the other of mass 2m , are dropped simultaneously from the leaning tower of Pisa. Earth exerts a bigger force on the ball with mass 2m.

The force exerted by Earth on an object is its weight, which is equal to the mass of the object multiplied by the acceleration due to gravity. The acceleration due to gravity is constant for all objects, regardless of their mass, so the force exerted by Earth on an object is directly proportional to its mass. Therefore, the ball with mass 2m will experience a force due to gravity that is twice as great as the force experienced by the ball with mass m. So, the Earth exerts a bigger force on the ball with mass 2m. Force is a physical quantity that describes the interaction between two objects. It is a vector quantity that has both magnitude and direction. Force can cause a change in the motion of an object, either by changing its velocity or by causing it to rotate.

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if glider 1 is moving at 6.0 m/s and glider two is stationary (not moving), what will happen when they collide?

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After the two gliders collide with each other, both the two gliders start to move as a single body and it moves with a speed of 3m/s.

The glider 1 is moving with velocity,v₁= 6m/s. The glider 2 is stationary so, v₂=0. After the collision, both the two gliders stick to each other and start moving as a single body. If the mass of both the glider is the same and is equal to m. According to the conservation of momentum, the initial momentum will be equal to the final momentum. The initial momentum is, pi= m×6+ m×0=m×6. The final momentum after the collision is, pf=(m+m)×v=2m×v. Now, pi=pf, 6m=2m×v, v= 3m/s.

So after the collision both the gliders move together at a speed of 3m/s.

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you apply a constant horizontal force (directed to the right) on the left cylinder. let a be the acceleration you give to the system. for what range of a will all three cylinders remain in contact with each other?

Answers

The range of acceleration (a) for which all three cylinders will remain in contact with each other is determined by the maximum and minimum static friction forces between the cylinders.

The maximum static friction force between two cylinders is given by the formula:

f_max = μ_s * N

where μ_s is the coefficient of static grating between the two surfaces and N is the typical power following up on the chambers (equivalent to the gravitational power following up on every chamber). Assuming that the even power applied on the left chamber is more prominent than the most extreme static grating power between any two chambers, they will begin to slide on one another, and the framework won't stay in touch. Consequently, the speed increase ought to be to such an extent that:

f_max >= m * a

where m is the all out mass of the framework. Settling for a, we get:

a <= μ_s * g

where g is the speed increase because of gravity. Subsequently, the scope of speed increase (a) for which every one of the three chambers will keep in touch with one another is from 0 to μ_s * g.

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which one of the following is part of the basic physical movements of a job?

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The cost of staffing work schedules is a topic covered by the economics subfield of ergonomics. An operations chart, often known as a right-hand/left-hand chart, highlights unnecessary movement and downtime.

Employees' working conditions may impact their quality of life, but it has little bearing on how well they perform or how safe they are.

Extent flexibility is the type of flexibility required when a profession necessitates extremely wide motions.

In jobs dispersed over longer time periods, extent flexibility is essential whereas dynamic flexibility is needed for shorter time periods.

Simple movements, using movement as the main method in physical education.

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A ball thrown straight up takes 2.25 s to reach a height of 36.8 m (a) What was the initial speed? b What is its speed at this height? (c) How much higher will the ball go?

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The balls initial speed is 27.3 and final speed is zero and the height till which ball has gone is 38m.

Ball height at a specific time, x = 36.8m.

The ball's height-achieving time was 2.25 seconds.

Gravitational acceleration is 9.8[tex]\frac{m}{s^{2} }[/tex], or g.

Let's assume that [tex]v_{o}[/tex] represents the ball's starting speed. The height x with time t and initial speed [tex]v_{o}[/tex] can be related using the equation of kinematics as follows:

[tex]s=ut+\frac{1}{2}at^{2}[/tex]

The ball will decelerate so that it acts in the opposite direction to that with initial velocity since it is moving upward under the influence of gravity. This deceleration will be equivalent to the size of the acceleration caused by gravity.

Consequently, a = -g.

If we suppose that the ball was thrown upward at time t = 0, then [tex]x_{o}[/tex] = 0. Replace the starting circumstances and the the following supplied values in the equation above:

[tex]36.8=u(2.25)+\frac{1}{2}(-g)2.25^{2}[/tex]

Therefore, on solving we get

u=27.3[tex]\frac{m}{s}[/tex]

The ball's final speed (v) is zero when it reaches the highest point, let's say h. The greatest height can be calculated using the same initial speed, v0, as follows:

We have the kinematics equation as

[tex]v^{2} -v_{o} ^{2} =2ax[/tex]

Where v denotes the object's end speed, a denotes its acceleration, [tex]v_{o}[/tex] denotes the object's starting speed, and t is the study period.

The ball's maximum height is reached when x = h, v = 0 m/s, and a = -g.

Replace the specified numbers in the aforementioned equation to obtain

[tex]h=\frac{0-27.3}{-2g}[/tex]

On solving we get, h=38m

As a result, the ball soars to a height of 38 m.

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The adiabatic approximation makes which assumption?

1. The particles do not move from near the peaks towards the bottom of pressure waves.

2. The temperature is the same in a trough as in a peak of a pressure wave.

3. No energy is exchanged between the particle in the trough and particle at the peak of a pressure wave.

With a brief explanation please.

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The adiabatic approximation makes assumption of option 3. No energy is exchanged between the particle in the trough and particle at the peak of a pressure wave.

The term "adiabatic approximation" in quantum mechanics relates to Schrödinger equation responses that utilize a time-scale distinction between fast and slow levels of freedom and use this to identify approximations as product states in the fast and slow levels of freedom.

Energy, which is observable in the execution of labour as well as in the form of heat and light, is the quantitative quality that is transmitted to a body or to a physical system in physics.

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