convert the displacement amplitude, 2.58 mils peak-to-peak at 900 CPM to the equivalent velocity amplitude in inches per second-peak?

Answers

Answer 1

According to the problem the Velocity amplitude (in/s-peak) is 1.827 in/s-peak.

What is Velocity amplitude?

Velocity amplitude is the maximum speed at which a particle or object is traveling in a specific direction. It is a measure of the strength of the motion expressed in terms of the magnitude of the velocity. It can be determined by measuring the maximum value of the velocity vector over a given period of time. Velocity amplitude is an important concept in physics, as it allows for the calculation of the acceleration, momentum, and energy of a particle or object. It can also be used to determine the frequency of a periodic motion, such as the frequency of a wave or the frequency of oscillation.

The equation for converting displacement amplitude to velocity amplitude is:
Velocity amplitude (in/s-peak) = (2 x Displacement amplitude (mils-p-p)) / (π x Frequency (cpm))
Therefore, the velocity amplitude in inches per second-peak for a displacement amplitude of 2.58 mils peak-to-peak at 900 CPM is:
Velocity amplitude (in/s-peak) = (2 x 2.58 mils-p-p) / (π x 900 cpm)
Velocity amplitude (in/s-peak) = (5.16 mils-p-p) / (2,827.43 cpm)
Velocity amplitude (in/s-peak) = 1.827 in/s-peak

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Related Questions

The acceleration due to gravity at a given location is affected in what way as that locations distance from the planets center is doubled

Answers

The relation between, the acceleration due to gravity at a given location and when that locations distance from the planets center is doubled, in that case acceleration due to gravity will be 4  times less than at given location.

What is acceleration ?

Acceleration is a vector quantity that describes the rate at which an object changes its velocity. It is the rate at which the velocity of an object changes in magnitude or direction, or both. In other words, it tells us how quickly an object is speeding up or slowing down. Acceleration has units of meter per second squared (m/s²) and its direction is the same as the direction of the change in velocity.

The acceleration due to gravity decreases as the distance from the center of the planet is doubled.

The formula for gravitational acceleration is given by:

g = G x M / r^2,

where G is the gravitational constant, M is the mass of the planet, and r is the distance from the center of the planet.

As r doubles, the value of g decreases by a factor of 4.

Hence, the acceleration due to gravity will 4 times less.

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What are the major energy transformations that occur between when energy starts from a primary energy source, becomes a piece of wood, which is then burned in a fire?​

Answers

Sunlight to chemistry energy conversion, energy transfer as from sun to plants, kinetic energy is created by converting thermal energy. when wood is burned, mechanical energy is converted to thermal energy.

What are the primary six energy forms?

Chemical, electrical, infrared, mechanical, thermal, et nuclear energy are the six main types of energy. Different research may focus on other forms, such as electric, acoustic, electromagnetic, and some others.

What is an indication of an energy revolution?

Energy transition describes the change in the global energy industry away from fossil-based methods of hydropower, such as oil, natural gas, and coal, and toward rechargeable batteries with renewable sources of electricity like wind and solar.

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bernouli’s equation is only for fluids that have :


A- low viscosity, incompressible with turbulent flow
B- high viscosity, compressible and streamline flow
C- low viscosity, compressible and turbulent flow
D- low viscosity, incompressible and streamline flow
E- none of the above

Answers

Answer:Bernoulli developed his principle from observations on liquids, and Bernoulli's equation is valid for ideal fluids: those that are incompressible, irrotational, inviscid, and subjected to conservative forces.

Explanation:

The oxygen molecule (O2) may be regarded as two masses connected by a spring. In vibrational motion, each oxygen atom alternately approaches, then moves away from the center of mass of the system. If each oxygen atom of mass m = 2.67 ´ 10-26 kg has a vibrational energy of 1.6 ´ 10-21 J and the effective spring constant is 50 N/m, then what is the amplitude of oscillation of each oxygen atom?

Answers

Answer:

2.5 × 10^-11 m

Explanation:

The amplitude of oscillation for a simple harmonic oscillator is given by the equation:

A = √(2E / k), where E is the vibrational energy of each oxygen atom and k is the effective spring constant.

Substituting the given values:

A = √(2 * 1.6 × 10^-21 J / 50 N/m)

A = √(3.2 × 10^-21 J / 50 N/m)

A = √(6.4 × 10^-23 m^2 kg / s^2)

A = 2.5 × 10^-11 m

An automobile tire has a volume of 0.0185 m 3 3 . At a temperature of 294 K the pressure in the tire is 212 kPa. How many moles of air must be pumped into the tire to increase its pressure to 252 kPa, given that the temperature and volume of the tire remain constant?

Answers

The number of moles of the air will be 1.6.

What is an ideal gas equation?

The equation of state for a fictitious ideal gas is known as the ideal gas law, also known as the general gas equation. Although it has some restrictions, it is a good approximation of the behaviour of many gases under various circumstances.

Given that an automobile tire has a volume of 0.0185 m ³. At a temperature of 294 K, the pressure in the tire is 212 kPa.

Calculate the volume at pressure P₂,

P₁V₁ = P₂V₂

V₂ = ( P₁V₁ ) / P₂

V₂ = ( 212 x 0.0185 ) / 252

V₂ = 0.0155 m³

The number of the moles will be calculated as:-

PV = nRT

n = ( P₂V₂ / RT)

n = ( 252 x 0.0155 x 1000 ) / ( 8.3145 x 294 )

n = 1.6 moles

Therefore, there will be 1.6 moles in the air.

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In compressing the spring in a toy dart gun, 4 J of work is done. When the gun is fired, the spring gives its potential energy to a dart with a mass of 0.02 kg. a. What is the dart's kinetic energy as it leaves the gun?
b. What is the dart's speed?
c. The ceiling of an arena is 19.8 m above the floor. What is the minimum speed that a thrown ball would have to have to reach the ceiling?

Answers

The kinetic energy of the dart as it leaves the gun is 4 Joules, the dart speed is 10 m/s, and the minimum speed that a thrown ball would have to reach the ceiling is 19.8 m/s.

The kinetic energy of the dart can be calculated using the formula:

KE = PE

where PE is the potential energy stored in the spring, and KE is the kinetic energy of the dart.

Since 4 J of work was done in compressing the spring, the potential energy stored in the spring is 4 J. The kinetic energy of the dart can then be calculated as:

KE = PE = 4 J.

Therefore the kinetic energy of the dart as it leaves the gun is 4 Joules.

The speed of the dart can be calculated using the equation of kinetic energy:

KE = 0.5 × m × v²

where m is the mass of the dart and v is its speed. Substituting the values, we get:

4 J = 0.5 × 0.02 kg × v²

v² = (4 J) / (0.5 × 0.02 kg)

v = √((4 J) / (0.5 × 0.02 kg))

v = √400

v = 20 m/s.

Therefore, the speed of the dart is 20 m/s.

The minimum speed that a ball would have to have to reach the ceiling can be calculated using the equation of vertical motion:

v² = v_0² + 2 × a × h

where v is the final speed, v_0 is the initial speed (assumed to be 0), a is the acceleration due to gravity (9.8 m/s²), and h is the height of the ceiling (19.8 m).

v = √(2 × 9.8 × 19.8)

v = √(394.4)

v = 19.8 m/s.

So, the minimum speed that a ball would have to have to reach the ceiling is 19.8 m/s.

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A ball is dropped from the top of a 93-m-high building. What speed does the ball have in falling 3.3 s?

Answers

Answer:

32.34 m/s

Explanation:

refer to the attachment

hope this helps

Prove that if P and Q are two longest paths in a connected graph then P and Q have at least one vertex in common. (b) Prove or disprove: Let G be connected graph of diameter k If P and Q are two geodesics of length k in vertex in G, then P and Q have at least one common.

Answers

If P and Q are two longest paths in a connected graph then P and Q must have at least one vertex in common.

Let P and Q be two longest paths in a connected graph G. Assume for contradiction that P and Q have no vertices in common. Without loss of generality, let P start from vertex u and end at vertex v, and let Q start from vertex w and end at vertex x.

Since G is connected, there exists a path between u and w and a path between v and x. Let's consider the path between u and w first. By definition, both P and the path between u and w have u as a common vertex. If the path between u and w is longer than P, then it contradicts that P is the longest path. Hence, the path between u and w is shorter than P.

Similarly, the path between v and x must also be shorter than Q.

So, we have two paths of length less than the length of P and Q connecting vertices that are not on P or Q, which means that the concatenation of these two paths along with P and Q form a cycle. The length of this cycle must be longer than P and Q, which again contradicts the assumption that P and Q are the longest paths in G.

(b) Disprove: The statement is false. Consider a cycle of length k in the graph G. The two diametrically opposite vertices are two geodesics of length k, but they do not have any common vertices. This shows that the statement "If P and Q are two geodesics of length k in vertex in G, then P and Q have at least one common" is not always true.

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In an experiment in space, one proton is held fixed
and another proton is released from rest a distance
of 2.00 mm away.
What is the initial acceleration of the proton after it is released?

Answers

The proton's initial acceleration after being emitted is discovered to be 3.449 x 104 m/s².

When does a proton leave the body?

because there is no magnetic force acting on a charged particle while it is at rest. The proton won't move or experience electric force unless it is forced out of its resting place. The direction of application of the electric force will match that of the acceleration.

One coulomb weighs how much?

In coulombs, the SI's measuring unit for electric charge, it is determined how much charge is transported by a flow of one amp for one second. The ability of a chemical to cause electrical and magnetic effects could potentially be one of its properties.

According to the given information:

F = Kq1 q2 / r²

Charge of a proton = 1.6022 x 10⁻¹⁹ c

Mass of a proton = 1.6726 x 10⁻²⁷ kg

r= 2mm => 2 x 10⁻³m

k= 8.99 × 10⁹ N ⋅ m² /C².

F= 8.99 × 10⁹ x (1.6022 x 10⁻¹⁹)² / (2 x 10⁻³)²

  => 5.769 x 10⁻²³N

F = M x a

5.769 x 10⁻²³ = 1.6726 x 10⁻²⁷ x a

=> Acceleration = 3.449 x 10⁴m/s²

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A DC circuit with is driven by 12 volt supply and a DC load of 200 Ohms. Calculate I (Amps) and P (Watts). a. 720 A,60 W b. 2.4 mA,28.8 mW c. 60 mA,720 mW d. 12 A,200 W

Answers

A DC circuit with is driven by 12 volt supply and a DC load of 200 Ohms.  60 mA, 720 mW, so option (c) is correct.

What is circuit ?

A circuit is a closed circuit in which electrons can move.  No electrons will move unless the circuit is complete, that is, it makes a complete circuit around the electrical source.

What is volt ?

The volt is a unit of electrical potential, potential difference, and electromotive force in the metre-kilogram-second (SI) system. It is equal to the difference in potential between two conductor points carrying one ampere of current when there is a one-watt power loss between the points.

Voltage current x Resistance

V=IR

Putting the the given values in the above equations So,

12 = I x 200

Or

I = 12/200

I = 0.06A (here A stands for ampere which is unit of current) And we know that 1A = 10 mA (mA stands for milliampere} So

I = 0.06A = 0.06 x 10 mA = 60mA

I = 60mA [Answer]

Here we use the formula P = V x I, which is describe as follows. Power = Voltage x current

we put the values in the above equation

P = 12 x 60

P = 720mW [here mW is stands for milli watt which is unit of power} P=720mW [Answer]

Therefore, A DC circuit with is driven by 12 volt supply and a DC load of 200 Ohms.  60 mA, 720 mW, so option (c) is correct.

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To construct an oxygen-hemoglobin dissociation curve in lab, you will use the spectrophotometer to measure the absorbance of hemoglobin samples at which of the following wavelengths?525nm550nm620nm660nm

Answers

The 660 nm wavelength light is absorbed more by the hemoglobin and can be measured using the spectrophotometer.

The strength with which oxygen binds to hemoglobin is affected by several factors and can be expressed as a left or right shift in the oxygen dissociation curve. Shifting the curve to the right indicates that hemoglobin has a reduced affinity for oxygen, so oxygen is actively pumped out. Oxygen-hemoglobin saturation/dissociation curves are affected by pH, temperature, and 2,3-bisphosphoglycerate (BPG). The oxygen dissociation curve is a graph with oxygen partial pressure on the horizontal axis and oxygen saturation on the vertical axis, showing an S-shaped relationship. Oxygen and carbon dioxide are carried in the blood as a result of changes in blood pressure 

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1.If you looked back at Earth from the moon, what phase would Earth have when the moon was full? New? First quarter? Waxing crescent?

Answers

The phase that the Earth would have when the Moon was full if we looked from the moon would be new phase.

The Moon and Earth are both always partially lit by the Sun. However, from either world, you can see varied portions of that lighted half - or different phases of the Earth or moon - at any given time. The phases usually follow a pattern in which they are inverted relative or reversed to one another.

Any moon resident would see a narrow crescent Earth when the moon is nearly full. The moon, Earth, and sun form a line with Earth in the middle when we observe a full moon. The Earth would then be completely obscured by the sun's brightness, making it invisible to those on the moon. Therefore, the phase that the Earth would have looked from the Moon would be the new phase because the opposite of a full moon phase is a new moon.

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The net force on a box is in the positive x direction. Which of the following statements best describes the motion of the box? Its velocity is parallel to the x axis Neither its velocity or its acceleration need be parallel to the x axis Both its velocity and its acceleration are parallel to the x axis Its acceleration parallel to the x axis

Answers

The statement "Both its velocity and its acceleration are parallel to the x axis" best describes the motion of the box when the net force on the box is in the positive x direction.

If a net force acts on an object in the positive x direction, the object experiences an acceleration in the positive x direction. According to Newton's second law of motion, the acceleration of an object is proportional to the net force acting on it and inversely proportional to its mass. As a result, the object will move in the positive x direction with a continually increasing velocity. Therefore, both the velocity and acceleration of the box are parallel to the x axis.

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manually calculating the heat input or arc energy supplied to produce a weld is a method that can be used for which of the following? A.All of these
B. CC/CV
C. Pulse
D. AC (Alternating current)

Answers

Manually calculating the heat input or arc energy supplied to produce a weld is a method that can be used for CC/CV.

How do heat input and weld speed relate to one another?

As voltage, current, wire feed rate, or a combination of these, or all three, increase, more heat is applied to the weld metal. With an increase in welding speed, the heat input drops. As the heat input increases, the rate of cooling of the weldment reduces.

Before the process efficiency is taken into account, arc energy is the energy that the welding arc supplies to the workpiece. The following equation can be used to compute it: where: The voltage, expressed in volts, is V. I represents the used current in amperes.

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34) two points on a transverse wave that have the same magnitude of displacement from equilibrium are in phase if the points also have the

Answers

If two transverse wave points which have the identical magnitude of departure from equilibrium share the same orientation of departure and motion, the points are said to be in phase.

Describe the magnitude.

In theoretical particle physics, magnitude is just "distance or quantity." It demonstrates the size, direction, and speed of an item in both relative and absolute terms. It's a term for describing the size or breadth of something.

Is magnitude a component of direction?

Vectors contain quantities that include both both magnitude and direction. The terms force, momentum, displacement, and velocity are all examples of vector quantities. We refer to something like a vector's length as its absolute value. Only if the measured values of two vectors are equal can we draw the conclusion that they are similar.

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much of tibet lies at altitudes over 18,000 feet where the pressure is about 500 mb. at such altitudes, the tibetans are above roughly
A. 10% of the air molecules in the atmosphere
B. 25% of the air molecules in the atmosphere
C. 50% of the air molecules in the atmosphere
D. 75% of the air molecules in the atmosphere

Answers

The air molecules are at least 75% of the air molecules at sea level.

What is air molecules?

Air molecules are microscopic particles of matter that make up the atmosphere. They are composed of two atoms of oxygen and two atoms of nitrogen, which are held together by covalent bonds.

The atmospheric pressure at sea level is about 1,000 mb, which is equivalent to the weight of the air column over a given area. Since the atmospheric pressure in Tibet is 500 mb, this means that the air molecules at this altitude make up about half of the air molecules at sea level. This means that at 18,000 feet, the air molecules are at least 75% of the air molecules at sea level.

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two waves having the same amplitude and frequency are traveling in the same medium. maximum destructive interference will occur when the phase difference between the waves is

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If two waves having the same amplitude and frequency are traveling in the same medium. maximum destructive interference will occur when the phase difference between the waves is 180⁰.

The resultant amplitude of two waves with the same amplitude and frequency that collide while traveling in the same direction depends on the phase difference.

While there is no phase difference between two nodes, there is a 180⁰ phase variation between two antinodes.

The formula for the resulting amplitude caused by the superposition of two waves with a phase difference is:

A² = A1² + A2² + 2A1A2 cos ϕ

ϕ = 2π/3

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What is the current flowing through this circuit?

A) 1.3 A
B) 0.15 A
C) 15 A
D) 6.7 A

Answers

Answer:

6.7A

Explanation:

Firstly find out the net resistance,

in parallel combination of resistors,

R = R1 * R2 / R1 + R2

R = 6*2/6+2 Ω

R = 12/8Ω

R = 1.5 Ω

Now use Ohm's law,

v = iR

10 = i * 1.5

i = 10/1.5 A

i = 6.7 A

How much work is required to lift a 7.1-kg backpack 1.2 m to put it on?

Answers

Answer:

it requires approximately 83.5812 Joules of work to lift the 7.1-kg backpack 1.2 m.

Explanation:

The work done to lift the backpack can be calculated using the formula:

Work = Force x Distance x cos(theta)

where Force is the weight of the backpack, Distance is the height it is lifted, and theta is the angle between the direction of the force and the direction of the displacement.

The weight of the backpack can be calculated as:

Weight = mass x gravity

where mass is 7.1 kg and gravity is the acceleration due to gravity, which is approximately 9.81 m/s^2.

Weight = 7.1 kg x 9.81 m/s^2

Weight = 69.651 N

The distance the backpack is lifted is 1.2 m.

The angle between the direction of the force and the direction of the displacement is 0 degrees, since the force and displacement are in the same direction.

Therefore, the work done to lift the backpack is:

Work = 69.651 N x 1.2 m x cos(0°)

Work = 83.5812 Joules (J)

So, it requires approximately 83.5812 Joules of work to lift the 7.1-kg backpack 1.2 m.

Final answer:

The work required to lift a 7.1-kg backpack 1.2 meters is approximately 83.5 Joules. This is calculated using the physics equation for work, which is Work = Force x Distance, where Force is the weight of the object.

Explanation:

In physics, the work done to lift an object is calculated by the equation Work = Force x Distance. The force required to lift an object is its weight, which is calculated by multiplying its mass by the gravitational acceleration (the approximate value is 9.8 m/s² on Earth).

So, to calculate the work done in lifting a 7.1-kg backpack 1.2 m, we would first calculate the force (or weight) required to lift the backpack: Force = Mass x Gravitational acceleration = 7.1 kg x 9.8 m/s² = 69.58 N.

Then we multiply this force by the distance the backpack is lifted: Work = Force x Distance = 69.58 N x 1.2 m = 83.5 Joules.

So the work required to lift the backpack is approximately 83.5 Joules.

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is the vertical component of velocity ever zero? if so, where?
a. yes, it is zero at points a and e. b. yes, it is zero at all points.
c. yes, it is zero at point c. d. no, it is never zer

Answers

c. Yes, it is zero at point c. The vertical velocity component can become zero when the projectile reaches its maximum altitude.

At the highest point of the projectile, its vertical component is instantaneous before it changes direction and the object begins to fall under the influence of gravity.

What Is that projectile motion

Projectile motion is motion with a curved path in the form of a parabola curve. Due to this curved trajectory, the projectile's motion is included in two-dimensional motion. The meaning of two-dimensional motion is that the motion of objects can be projected in horizontal and vertical directions.

In physics, in the horizontal direction, there is no force affecting it so that the object moves at a constant speed. Conversely, in the vertical direction, the gravitational force pulls the object down so that the object moves at a constant speed.

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a scooter starts from rest and move's with a constant acceleration of 1 .2 metres squared determine the velocity, after it has traveled for 60 meters​

Answers

It is possible to write - v = u + at, v = 0 +1.2 x 60, v = 72 m/s by using the first motion equation.

How do velocity and speed differ?

Velocity is the pace and direction of such an item's movement, whereas pace is the time rate which an entity is travelling along a route.

A first equation of movement is given by Ms. Reitman's scooter velocity,

which accelerates at a rate of 1.2 m/s2 from rest.

The formula is: [a] = 2 m/s2 [t] = 60 s.

Thus, It is possible to write - v = u + at, v = 0 +1.2 x 60, v = 72 m/s by using the first motion equation.

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What is the net force (in N) of a 3.00 N force and an 8.00 N force acting on an object for each of the following conditions?
b) The forces act in the same direction.

Answers

The net force is:

8N+3N=11N

This is because the two forces are acting in the same direction, so there is an additional 3N of force added to the 8N of force.

The activation energy, Ea, for a particular reaction is 37.8 kJ/mol. If the rate constant at 280 K is 0.178 M/s, what is the value of the rate constant at 457 K? (R = 8.314 J/mol K)

Answers

The value of the rate constant at 457 K is 0.478 M/s.

The rate constant, k, at a given temperature can be related to the activation energy, Ea, and the gas constant, R, through the Arrhenius equation:

[tex]k = Ae^{(-Ea/RT)}[/tex]

where A is the pre-exponential factor and T is the temperature in Kelvin.

Given k1 = 0.178 M/s at T1 = 280 K, and Ea = 37.8 kJ/mol, we can calculate the rate constant, k2, at T2 = 457 K as:

k2 = A * [tex]e^{(-Ea/R * T2)}[/tex] = 0.178 * [tex]e^{(-37.8 kJ/mol / (8.314 J/mol K) * 457 K)}[/tex] = 0.478 M/s.

This means that the reaction will proceed faster at 457 K than it does at 280 K, due to the increase in temperature leading to an increase in the rate constant, k.

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If the acceleration of an object is always directed perpendicular to its velocity, which of the following is true _____.a. this situation would not be physically possibleb. the object is slowing downc. the object is speeding upd. the object is turning

Answers

If the acceleration of an object is always directed perpendicular to its velocity, then the statement (the object is turning) is true due to the fact that the velocity vector of the object is always heading in a different direction.

The moving object is being accelerated in the direction of the center of rotation due to a centripetal force acting in that direction.

According to Newton's laws of motion, the path that the object would take if it did not experience this acceleration is a straight line.

An object's acceleration can be defined as the rate at which its velocity changes in relation to the passage of time. Accelerations are vector quantities. The orientation of the net force that is acting on an item is what determines the orientation of the acceleration the object is experiencing.

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To find the 65th percentile, first find the location in the ordered data this value will occur. Recalling that n = 8, find 165: sp p (n + 1) 100 L65 (8 + 1) 100

Answers

The 65th percentile can be found by using the formula: p(n + 1) = 65/100 * (8 + 1) = 65/100 * 9 = 5.85

So, the location of the 65th percentile in the ordered data set is approximately 5.85. This means that approximately 5 of the 8 values are below the 65th percentile, and the other 3 values are above it. To get an exact value, you would need to interpolate between the 5th and 6th values in the ordered data set.

Interpolation is a method of estimating values between two known values. To interpolate the value of the 65th percentile, you can use the following formula: value = (5.85 - 5) / (6 - 5) * (value at position 6 - value at position 5) + value at position 5

In this formula, "value at position 5" refers to the 5th value in the ordered data set, and "value at position 6" refers to the 6th value in the ordered data set. By substituting these values into the formula, you can find an estimate for the value of the 65th percentile.

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In an experiment a negatively charged balloon (balloon X) is repelled by another charged balloon Y. However, an object Z is attracted to balloon Y. Which of the following can be the charge on Z? Select two answers. a. negative b. positive c. neutral d. cannot be determined

Answers

In this scenario, if balloon X is negatively charged and is repelled by balloon Y, then it is most likely that balloon Y is positively charged. If an object Z is attracted to balloon Y, then it is most likely that object Z is either negatively charged or neutral. Therefore, the charge on object Z could be either option a or c, which are negative or neutral respectively.

In the given scenario in this question, balloon X has a negative charge and is repelled by balloon Y. This suggests that balloon Y has a positive charge. The attraction of object Z to balloon Y indicates that it is either negatively charged or neutral.

Therefore, the charge on object Z is either negative or neutral, but not positive or indeterminate. This is due to the fundamental principle of electrical charges, where opposite charges attract each other and similar charges repel each other.

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Consider the spectra shown below. The top spectrum shows hydrogen lines observed at rest in a laboratory. The other three show the hydrogen lines from three different stars.
*DUE TOMORROW (2/7) NEED ANSWER TODAY (2/6

a.) For each star, determine whether it is moving toward or away from us.

b.) Which star is moving the fastest? How do you know?

Answers

(a) Star B are moving towards the earth while star A and C are moving away from Earth.

(b) The star that is moving the fastest star C because its wavelength is the highest.

What is the speed of an object?

The speed of an object like star is measured from the speed and wavelength of the corresponding star.

Mathematically, the relationship between speed and wavelength of a particle is given as;

v = fλ

where;

f is the frequency of the particleλ is the wavelength of the particlev is the speed of the particle

If a star is moving towards Earth, it appears to emit light that is shorter in wavelength compared to a source of light that isn't moving.

So star B are moving towards the earth while star A and C are moving away from Earth

The star that is moving the fastest will have the highest wavelength, hence star C is the fastest.

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which of the following spectrums are used by wireless networks? [choose all that apply] 2.4 ghz 5 ghz 3.6 ghz 1.2 ghz

Answers

The 2.4 to 5 GHz band is used by a variety of wireless networks. Also, the speed that each sort of wireless network offers varies.

What is the spectrums are used by wireless networks?

Seconds per meter Miles per hour, kilometres per hour, and meters per second (m/s) are the most popular speed measurement units (mph). An object's speed is the distance it travels in a predetermined length of time. The speed equation is defined as speed = distance x time.

If you know how far an object travels in a certain amount of time, you can calculate its speed. For instance, if a car travels 70 miles in an hour, it is going at a speed of 70 miles per hour.

Depending on where and how you use your Wi-Fi connection the most, you should choose between 2.4 GHz and 5 GHz.

Therefore, while a 5 GHz connection offers greater speeds at closer distances, a 2.4 GHz connection travels farther at slower speeds.

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Two protons are moving directly toward one another. When they are very far apart, their initial speeds are 2.00x10^4 m/s. What is the distance of closest approach?

Answers

The distance of closest approach is  6.9 x 10⁻¹⁰ m.

What is the distance of closest approach?

The distance of closest approach between two protons can be determined using the law of conservation of energy.

Since the protons are moving directly toward one another, the total energy of the system is the sum of their kinetic energy and their potential energy.

rf = ( kq² ) / (1/2mv²)

where;

k is coulomb's constantq is the charge of the protonv is the speed of the proton

rf =  ( 9 x 10⁹ x (1.6 x 10⁻¹⁹)² ) / (0.5 x 1.67 x 10⁻²⁷ x ( 2 x 10⁴)²)

rf = 6.9 x 10⁻¹⁰ m

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A car traveling at 20 m/s reaches 60 m/s in 4 seconds traveling in a straight line. The car has an average acceleration of _______ m/s2.

Answers

The car has an average acceleration of 10 m/s²

The rate at which the velocity changes over time is referred to as the average acceleration. To determine the average acceleration, we take the change in velocity and divide it by the amount of time that has passed. Average acceleration is calculated by the following formula:

                                                   Δv ÷ Δt

where:

Δv = the change in velocity

     = 60 m/s - 20 m/s

     = 40 m/s

Δt = the total time over the velocity is changing

    = 4 seconds

Thus, the average acceleration of the car would be:

Average acceleration = 40 m/s ÷ 4 s

                                    = 10 m/s²

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