Martha jumps from a high platform. If it takes her 1.2 seconds to hit the water, find the height of the platform.

Answers

Answer 1

The height of the platform is approximately 7.056 meters.

The equation of motion for an object in free fall is h = (1/2) * g * t^2, where h is the height, g is the acceleration due to gravity, and t is the time of descent. By rearranging the equation, we have h = (1/2) * g * t^2.

Substituting the given value of the time of descent (1.2 seconds), and the known value of the acceleration due to gravity (approximately 9.8 m/s^2), we can calculate the height of the platform from which Martha jumps.

Plugging in the values, we have h = (1/2) * 9.8 m/s^2 * (1.2 s)^2 = 7.056 meters.

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Related Questions

Three resistors, 4.0-Ω, 8.0-Ω, 16-Ω, are connected in parallel in a circuit. What is the equivalent resistance of this combination of resistors? Show step by step solution A) 30 Ω B) 10 Ω C) 2.3 Ω D) 2.9 Ω E) 0.34 Ω

Answers

The equivalent resistance of this combination of resistors is 2.3Ω, option c.

Three resistors, 4.0-Ω, 8.0-Ω, 16-Ω, are connected in parallel in a circuit.

The equivalent resistance of this combination of resistors is given by the following formula:

1/R = 1/R1 + 1/R2 + 1/R3

Here

R1 = 4.0-Ω,

R2 = 8.0-Ω,

R3 = 16-Ω

Hence, substituting the values, we get;

1/R = 1/4 + 1/8 + 1/16

Adding the above three fractions, we get;

1/R = (2 + 1 + 0.5) / 8= 3.5/8

∴ R = 8/3.5Ω ≈ 2.29Ω ≈ 2.3Ω

Therefore, the equivalent resistance of this combination of resistors is 2.3Ω.

Hence, option C is the correct answer.

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A particle is moving toward the origin along the positive direction of the X axis. The displacement of this particle is negative. O it depends on the speed. O positive. O it depends on the frame of reference.

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The displacement of a particle moving towards the origin in the positive direction of the x-axis is negative.

A frame of reference is a coordinate system in which motion is observed. In the case of a particle moving towards the origin in the positive direction of the x-axis, the displacement is negative.The displacement of a particle moving towards the origin in the positive direction of the x-axis is negative.

A frame of reference is a coordinate system in which motion is observed. In the case of a particle moving towards the origin in the positive direction of the x-axis, the displacement is negative.If we assume that the particle is moving with a uniform speed, the displacement is negative in all reference frames.

If the particle moves faster or slower with respect to the reference frame, its displacement may be positive or negative.

However, the speed is constant in all reference frames. In the case of a particle moving towards the origin along the positive direction of the x-axis, the displacement is always negative regardless of the reference frame. It is the direction of motion that determines the sign of the displacement.

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You are viewing two light sources of the same size at the same distance. One is 1900.0 K and the other is 4900.0 K. How many times brighter is the hotter light source?

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The

intensity of light

emitted by an object is proportional to the fourth power of its temperature.

Therefore, the hotter light source is much brighter than the cooler light source by a significant factor. To determine how much brighter, we must first calculate the ratio of their

intensities

.The Stefan-Boltzmann law states that the amount of energy emitted by a black body is proportional to the fourth power of its absolute

temperature

. Hence, we have,$I∝T^4$$\frac{I_1}{I_2}=\frac{(T_1/T_2)^4}{1}$ where I1 and I2 are the intensities of light from the two sources, T1 and T2 are their temperatures, respectively. Substituting the values in the equation, we have:$\frac{I_1}{I_2}=\frac{(4900.0/1900.0)^4}{1}$Calculating the ratio,$$\frac{I_1}{I_2} \approx 46.49$$Therefore, the hotter light source is approximately 46.49 times brighter than the cooler light source.

Thus, we can conclude that the hotter light source is much brighter than the cooler light source by a factor of about 46.5.

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The hotter light source is approximately 56.9 times brighter than the cooler light source. So, the hotter light source is about 56.9 times brighter than the cooler light source.

The brightness of a light source is determined by its temperature, which is measured in Kelvin (K). To compare the brightness of two light sources, we can use the Stefan-Boltzmann law, which states that the total power radiated by a blackbody is proportional to the fourth power of its temperature.
In this case, we have two light sources of different temperatures: 1900.0 K and 4900.0 K. To find out how many times brighter the hotter light source is, we can calculate the ratio of their powers.
The ratio of the powers is given by the equation:
[tex](4900.0/1900.0)^4[/tex]


It is important to note that this calculation assumes that both light sources have the same size and are at the same distance. Additionally, the Stefan-Boltzmann law applies to idealized blackbodies, which may not perfectly represent all real light sources. However, it provides a useful approximation for comparing the brightness of light sources.

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the centre of earth is a distance of 1.50x10^11 m away from the centre of the sun and it takes 365 days for earth to orbit the sun once. what is the mass of the sun?

Answers

Therefore, the mass of the Sun is 1.99 x 1030 kg.

Given that the centre of the Earth is a distance of 1.50×1011 m away from the centre of the Sun, and it takes 365 days for Earth to orbit the Sun once. We are to find the mass of the Sun. The gravitational force between the Earth and the Sun is given by:Fg = G (Mm)/R2 …… (1)Where; M = Mass of the Sun m = Mass of the Earth R = Distance between the centres of the Earth and Sun. G = Universal gravitational constant. We know that Earth takes 365 days to complete one revolution around the Sun. The distance covered by the Earth in one revolution around the Sun is the circumference of the Earth's orbit. Circumference = 2πR ….. (2)The time taken to complete one revolution = 365 days = 365 × 24 × 60 × 60 seconds. Substituting equations (2) into (1), we get; M = FR2/GT2⇒M = (mR2G)/T2On substituting the given values, we get: M = (5.97 x 1024 kg x (1.50 x 1011 m)2 x 6.6743 x 10-11 N m2/kg2)/(365 x 24 x 60 x 60 s)2= 1.99 x 1030 kg. Therefore, the mass of the Sun is 1.99 x 1030 kg.

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A 30-kg boy puts his entire weight on the small plunger of a hydraulic press. What weight can the larger piston lift if the diameters of both pistons are 1 cm and 12 cm?

Answers

The larger piston can lift a weight of 1686.42 N

The ratio of the diameter of the larger piston to the diameter of the smaller piston is 12: 1. So the ratio of the area of the larger piston to the area of the smaller piston will be (12/1)² : 1² = 144:1.

Therefore, the larger piston can lift a weight that is 144 times heavier than the weight placed on the smaller piston. Now, the smaller piston has a surface area of: (1/2)²π = 0.785 sq cm. So, if the 30 kg boy puts his entire weight on the small plunger, then the force exerted on the small plunger will be 30 kg x 9.8 m/s² = 294 N. And, this force will act over the surface area of the small plunger.

Thus, the pressure in the system will be: Pressure = Force / Area of the small piston = 294 N / 0.785 sq cm = 374.52 N/sq cm. And, this pressure will be transmitted uniformly throughout the hydraulic system.

Finally, using the formula: Pressure = Force / Area of the large piston, we can calculate the weight that the larger piston can lift.

So, the weight that the larger piston can lift will be:

Force = Pressure x Area of the large piston = 374.52 N/sq cm x (6 cm)²π / 4 = 1686.42 N.

So, the larger piston can lift a weight of 1686.42 N if the diameters of both pistons are 1 cm and 12 cm.

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You are handed a solid sphere of an unknown alloy. You are told its density is 10,775 kg/m3, and you measure its diameter to be 14 cm. What is its mass (in kg)?

Answers

The mass of the sphere is 15.48 kg.

Given,The density of the sphere = 10,775 kg/m³

Diameter of the sphere = 14 cm

The diameter of the sphere can be used to find its radius.

The formula to find the radius of a sphere is, Radius (r) = Diameter (d) / 2= 14 cm / 2= 7 cm

We can use the formula to find the volume of the sphere:

Volume of sphere = 4/3 πr³

The formula for mass is,

Mass (m) = Volume (V) × Density (ρ)

Therefore,Mass (m) = 4/3 × πr³ × ρ

Substitute the values and solve the equation.Mass (m) = 4/3 × π × (7 cm)³ × (10,775 kg/m³)

Remember to convert cm to m because the density is given in kilograms per meter cube.

1 cm = 0.01 m

Volume (V) = 4/3 × π × (7 cm)³= 4/3 × π × (0.07 m)³= 1.437 × 10⁻³ m³

Mass (m) = Volume (V) × Density (ρ)= 1.437 × 10⁻³ m³ × 10,775 kg/m³= 15.48 kg

Therefore, the mass of the sphere is 15.48 kg.

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Starting from rest at the top of a frictionless inclined plane, a block takes 2 s to slide down to the bottom The incline angle is 0, where sin 0 = 3/4 and cos 0 = 2/3. What is the length of this inclined plane? 7.5 m 10 m 15 m 30 m 20 m

Answers

Starting from rest at the top of a frictionless inclined plane, a block takes 2 s to slide down to the bottom The incline angle is 0, where sin 0 = 3/4 and cos 0 = 2/3.  Thus, the length of the inclined plane is 20 m

The given incline angle is θ = 0 where sin θ = 3/4 and cos θ = 2/3 and the block slides down without any friction.

We are to find out the length of the inclined plane.

Let L be the length of the inclined plane, and g be the acceleration due to gravity.

As per the given statement, the block takes 2 seconds to slide down to the bottom of the inclined plane.

The acceleration of the block will be the same as the acceleration due to gravity in the direction of the inclined plane.

Therefore, the time t it takes for the block to slide down the incline plane of length L, starting from rest at the top of the inclined plane, is given by;         L = 1/2gt² (since initial velocity, u = 0)At θ = 0, sin θ = 3/4 and cos θ = 2/3.

Therefore, the length of the inclined plane is; L = 1/2 × 9.8 m/s² × (2 s)² = 19.6 m

Thus, the length of the inclined plane is 20 m (approximated to one significant figure).Hence, the correct option is (e) 20 m.

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An LRC circuit reaches resonance at frequency 8.92 Hz. If the resistor has resistance 138Ω and the capacitor has capacitance 3.7μF, what is the inductance of the inductor? A. 3400H B. 340H C. 8.6×10 −5
H D. 86H

Answers

The inductance of the inductor is the option is D) 86H.

Given data:Resonance frequency f = 8.92 HzResistance R = 138 ΩCapacitance C = 3.7 μFWe need to find out the inductance L of the inductor. At resonance frequency, the capacitive reactance Xc = Inductive reactance XlThus, we can write;Xc = XlOr, 1 / (2πfC) = 2πfLor, L = 1 / (4π²f²C)Now, putting the values of f and C;L = 1 / (4π² × 8.92² × 3.7 × 10⁻⁶)≈ 86H.

Thus, the correct option is D) 86H.Note:In an LRC circuit, L stands for inductor or coil, R stands for resistor and C stands for the capacitor.

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A parallel-plate vacuum capacitor has 6.34 J of energy stored in it. The separation between the plates is 3.90 mm. If the separation is decreased to 1.50 mm, You may want to review (Page). For related problem-solving tips and strategies, you may want to view a Video Tutor Solution of Stored energy. Part A what is the energy now stored if the capacitor was disconnected from the potential source before the separation of the plates was changed? hat is the energy now stored if the capacitor remained connected to the potential source while the separation of the plates was changed

Answers

The energy now stored if the capacitor was disconnected from the potential source before the separation of the plates was changed is 6.34 J and the energy now stored if the capacitor remained connected to the potential source while the separation of the plates was changed is 11.20 J.

Energy stored in vacuum capacitor (U₁) = 6.34 JInitial separation between the plates (d₁) = 3.90 mm

Final separation between the plates (d₂) = 1.50 mm

Part A: If the capacitor was disconnected from the potential source before the separation of the plates was changed, then the energy stored will remain constant as the charge stored in the capacitor will not change.

Thus, Energy stored in the capacitor after changing the separation of the plates = 6.34 J.

Part B: If the capacitor remained connected to the potential source while the separation of the plates was changed, then the charge stored in the capacitor will increase as the capacitance of the capacitor is inversely proportional to the distance between the plates

i.e., as the separation decreases the capacitance increases.

The formula to find the capacitance of the capacitor is given by,C = ε₀A/d

Where C is the capacitance, A is the area of each plate, d is the separation between the plates, and ε₀ is the permittivity of free space.

The energy stored in the capacitor can be given as,U = 1/2 CV²where V is the potential difference between the plates

Substituting the value of C in the above equation, we get:U = (ε₀A/2d) V²As the capacitor remains connected to the potential source, the potential difference between the plates will also remain constant and equal to the potential difference provided by the potential source.

Now, the capacitance after changing the separation of the plates can be calculated as:C' = ε₀A/d₂

Substituting the values of A, d₁ and d₂ in the above equation, we get:C' = 8.854 x 10⁻¹² x 0.003²/0.0015C' = 3.542 x 10⁻¹⁰ F

The energy stored in the capacitor after changing the separation of the plates can be calculated as:U' = (ε₀A/2d₂) V²Substituting the values of A, d₂ and V in the above equation,

we get:U' = (8.854 x 10⁻¹² x 0.003²/2 x 0.0015) (V)²U' = 1.77 (V)²

Therefore, the energy now stored if the capacitor remained connected to the potential source while the separation of the plates was changed is 1.77 times the initial energy stored i.e.,U' = 1.77 x 6.34U' = 11.20 J.

Hence, the energy now stored if the capacitor was disconnected from the potential source before the separation of the plates was changed is 6.34 J and the energy now stored if the capacitor remained connected to the potential source while the separation of the plates was changed is 11.20 J.

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A parallei-phate capacitor with arca 0.140 m 2
and phate separatioh of 3.60 mm is connected to a 3.20.V battery. (a) What is the tapacitance? F (b) How much charge is stared on the plates? C (c) What is the electric field between the plates? N/C (d) Find the madnitude of the charge density an each piate. c/m 2
(e) Without disconnecting the battery, the plates are moved farther apart. Qualitatively, whot happens to each of the previous answers?

Answers

(a) The capacitance of the parallel-plate capacitor is approximately 7.42 pF.(b) The charge stored on the plates is approximately 2.37 nC.(c) The electric field between the plates is approximately 888.89 N/C.

(a) The capacitance of a parallel-plate capacitor can be calculated using the formula C = ε₀A/d, where ε₀ is the vacuum permittivity, A is the area of the plates, and d is the plate separation. Substituting the given values, we find C ≈ 7.42 pF.

(b) The charge stored on the plates can be determined using the formula Q = CV, where Q is the charge, C is the capacitance, and V is the voltage across the capacitor. Substituting the given values, we find Q ≈ 2.37 nC.

(c) The electric field between the plates can be calculated using the formula E = V/d, where E is the electric field, V is the voltage, and d is the plate separation. Substituting the given values, we find E ≈ 888.89 N/C.

(d) The magnitude of the charge density on each plate can be determined by dividing the charge stored on the plates by the area of each plate. Since the charge is evenly distributed on the plates, the charge density on each plate is the same. Substituting the given values, we find the magnitude of the charge density on each plate is approximately 16.93 μC/m².

(e) When the plates are moved farther apart without disconnecting the battery, the capacitance increases because the plate separation increases. The charge stored on the plates decreases because the voltage remains constant while the capacitance increases. The electric field between the plates decreases because the voltage is divided by the increased plate separation. The magnitude of the charge density on each plate remains the same because it depends on the charge stored on the plates, which does not change unless the battery is disconnected.

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Select all the correct answers. Which two types of waves can transmit energy through a vacuum? a. radio waves b. seismic waves c. sound waves d. water waves
e. x-rays

Answers

a. Radio waves

e. X-rays

Radio waves and X-rays are the two types of waves that can transmit energy through a vacuum.

1. Radio waves: Radio waves are a type of electromagnetic wave that can travel through a vacuum. They have long wavelengths and low frequencies, typically used for communication and broadcasting.

2. X-rays: X-rays are another type of electromagnetic wave that can pass through a vacuum. They have much shorter wavelengths and higher frequencies compared to radio waves. X-rays are commonly used in medical imaging and industrial applications.

The other options listed, seismic waves, sound waves, and water waves, require a medium (such as air, water, or solid materials) to propagate and transfer energy. These waves rely on the interaction and transmission of particles within the medium for their propagation.

3. Seismic waves: Seismic waves are generated by earthquakes and other geological phenomena. They require the presence of solid or fluid materials, such as the Earth's crust or water bodies, to propagate. Seismic waves cannot travel through a vacuum.

4. Sound waves: Sound waves are mechanical waves that require a medium, typically air or other gases, liquids, or solids, for their transmission. They propagate through the vibration and compression of particles in the medium. Sound waves cannot travel through a vacuum.

5. Water waves: Water waves, also known as surface waves or ocean waves, are a type of mechanical wave that propagates on the surface of water bodies. They require the presence of water as a medium for their transmission. Water waves cannot travel through a vacuum.

In summary, only electromagnetic waves, such as radio waves and X-rays, have the ability to transmit energy through a vacuum. Mechanical waves like seismic waves, sound waves, and water waves require a medium and cannot propagate in a vacuum.

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When moving on level ground, cross-country skiers slide their skis along the snow surface to stay moving. The coefficients of friction for a given set of skis and given snow conditions can be modified by various types of waxes. Part A In order to move across the snow as fast as possible should you choose a wax that makes the coefficient of static friction between skis and snow as high as possible or as low as possible? O Choose wax that makes the coefficient of static friction between skos and snow as low as possible Choose wax that makes the coefficient of static friction between skis and snow as high as possible. Submit Request Answer Part B Should you choose a wax that makes the coefficient of kinetic friction between these two surfaces as high as possible or as low as possible? O Choose wax that makes the coefficient of kinetic friction between these two surfaces as high as possible. O Choose wax that makes the coefficient of kinetic friction between these two surfaces as low as possible

Answers

The answer to this question is as follows:

Part A - The wax chosen should make the coefficient of static friction between skis and snow as low as possible. The lower the static friction coefficient, the easier it is to overcome the forces that keep the skis at rest and start moving.

Part B - The wax chosen should make the coefficient of kinetic friction between these two surfaces as low as possible. The lower the kinetic friction coefficient, the easier it is to keep moving once you have started.

Coefficient of friction is defined as the ratio of the force required to move one surface over another surface to the force that is pressing them together. In simple terms, it is the measure of how difficult it is to slide one object over another.

The lower the coefficient of friction between two surfaces, the easier it is to move one over the other. The snow ski race is one of the most popular sports that demonstrate this principle. In cross country ski racing, skiers slide their skis along the snow surface to stay moving.

To make the movement of skis easier, various types of waxes are used. When choosing a wax for skiing, it is important to understand the effect of different waxes on the coefficient of friction between the skis and snow surface.

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Design a second-order low pass filter to filter signals with more
than 100KHz frequencies by using multisim or proteus

Answers

To design a second-order low-pass filter capable of attenuating frequencies above 100kHz, software tools like Multisim or Proteus can be utilized.

To design a second-order low pass filter to filter signals with more than 100KHz frequencies by using Multisim or Proteus, follow the steps given below:

Step 1: Choose the type of filter

The first step in designing a filter is to select the type of filter you want to use. A second-order low pass filter will be used in this case.

Step 2: Determine the cut-off frequency

The cut-off frequency determines the point at which the filter begins to attenuate signals. In this case, we need a cut-off frequency of 100kHz, so we will set this value for our filter.

Step 3: Calculate the component values

Once you have determined the cut-off frequency, you can calculate the values of the components you will need for your filter. For a second-order low pass filter, you will need two capacitors and two resistors. The formulae for calculating the component values are as follows:
For the resistor (R):

R = 1 / (2 * π * f * C)

For the capacitor (C):

C = 1 / (2 * π * f * R)
where R is the resistance, C is the capacitance, and f is the cut-off frequency.
For example, if we want a cut-off frequency of 100kHz and we have a capacitor of 1uF, we can calculate the value of the resistor as follows:

R = 1 / (2 * π * (100,000 Hz) * (1e-6 F))

We can use this value to calculate the other resistor and capacitor values.

Step 4: Build the circuit

Once you have calculated the component values, you can build the circuit using Multisim or Proteus. The circuit will consist of two capacitors and two resistors connected in a specific way to create the desired filter.

Step 5: Test the circuit

Finally, you can test the circuit to ensure that it is working properly. You can input signals with frequencies greater than 100kHz and observe the output to ensure that the filter is attenuating these signals. If the filter is working properly, the output signal should be lower than the input signal.

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. A ray of light traveling in transparent material 1 with index of refraction n 1

=1.20 makes an angle θ 1

=51.0 ∘
with the normal to a flat interface with transparent material 2, which has index of refraction n 2

=1.70, as shown. What is the angle of refraction θ 2

? A. 68.1 ∘
B. 37.5 ∘
C. 29.1 ∘
D. 33.3 ∘

Answers

The angle of refraction θ2 with respect to the surface is 45.76°.Therefore, the correct option is (A) 68.1 ∘.

When a ray of light travels from one medium to another, it bends, this is known as refraction. The angle of refraction is given by Snell's law that states that the ratio of the sine of the angle of incidence to the sine of the angle of refraction is equal to the ratio of the refractive indices of the two media.

Here, the incident ray of light is traveling in transparent material 1 with an index of refraction n1=1.20. It makes an angle θ1=51.0∘ with the normal to a flat interface with transparent material 2, which has an index of refraction n2=1.70.Now, we need to find the angle of refraction θ2.The correct option is (A) 68.1 ∘

According to Snell's law, we can write that,n1 sin θ1 = n2 sin θ2n1=1.20, θ1=51.0∘, n2=1.70Let's put these values in Snell's law and calculate the value of θ2.n1 sin θ1 = n2 sin θ2sin θ2 = n1 / n2 sin θ1sin θ2 = 1.20 / 1.70 sin 51.0sin θ2 = 0.70sin θ2 = sin -1 (0.70)θ2 = 44.24°The angle of refraction is θ2 = 44.24°.

However, this angle is measured with respect to the normal. But the question asks about the angle of refraction with respect to the surface, which is given by (90 - θ2) = (90 - 44.24) = 45.76°.

Therefore, the angle of refraction θ2 with respect to the surface is 45.76°.Therefore, the correct option is (A) 68.1 ∘.

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A ²²Na source is labeled 1.50 mci, but its present activity is found to be 1.39 x 10⁷ Bq. (a) What is the present activity in mci? mci (b) How long ago (in y) did it actually have a 1.50 mci activity?

Answers

The present activity in mCi is 3.75 x 10⁵ mCi. It has 1.50 mci activity from 27.19 years.

A ²²Na source is labeled 1.50 mCi, but its present activity is found to be 1.39 x 10⁷ Bq.

(a) Present activity in mCi:

1 mCi = 37 MBq

So, 1.39 x 10⁷ Bq = 1.39 x 10⁷/37

mCi= 3.75 x 10⁵ mCi.

(b) Decay equation: A = A₀e⁻ᵦᵗwhere, A₀ = initial activity, A = present activity, t = time, and β = decay constant or disintegration constant.

Radioactive decay is first-order, so its decay constant is given by the equation:

β = 0.693/T₁/₂

where, T₁/₂ = half-life of ²²Na.

Half-life of ²²Na is 2.6 years.

So,

β = 0.693/2.6 = 0.2666 year⁻¹.

Using the decay equation:

A₀ = A/e⁻ᵦᵗ

A₀ = 1.50 mCi, A = 3.75 x 10⁵ mCi, and β = 0.2666 year⁻¹.

Substituting these values in the above equation and solving for t, we get:

t = [ln (A₀/A)]/β= [ln (1.50/3.75 x 10⁵)]/0.2666

= 27.19 years

Therefore, the ²²Na source had a 1.50 mCi activity 27.19 years ago.

Present activity in mCi = 3.75 x 10⁵ mCi

It has 1.50 mci activity from 27.19 years.

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An unstable high-energy particle enters a detector and leaves a track 1.15 mm long before it decays. Its speed relative to the detector was 0.956c. What is its proper lifetime in seconds? That is, how long would the particle have lasted before decay had it been at rest with respect to the detector? Number __________ Units _________

Answers

Proper Lifetime is the lifetime of a particle is the time for which it will exist before its decay if it were at rest. That is the time measured in the rest frame of the particle itself.

1. In formula, proper lifetime (τ) can be given as follows: τ = t/γwhere, t is the time interval between the emission and absorption of the particle, and γ is the Lorentz factor of the particle.

2. The Lorentz factor is defined as the ratio of the proper time of an event to the coordinate time of that event. It is a function of the relative velocity v between two frames of reference.γ = 1/√(1- v²/c²)where, c is the speed of light in vacuum.γ = 1/√(1- (0.956c)²/c²)γ = 1/√(1- 0.956²)γ = 1/√(0.044)γ = 1/0.2108γ = 4.739So, τ = t/γ⇒ t = τγ⇒ t = (1.15 × 10⁻³ m)/(0.956 × c) × γ = 4.739.  Answer: 5.12 Units: × 10⁻¹³ s.

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A copper wire is stretched with a stress of 50MPa at 20 ∘
C. If the length is held constant, to what temperature must the wire be heated to reduce the stress to 20MPa ? The value of α 1

for copper is 17.0×10 −6
( ∘
C) −1
, the modulus of elasticity is equal to 110 GPa. ∘
C

Answers

A copper wire is stretched with a stress of 50MPa at 20 ∘C. the change in temperature (ΔT') needed to reduce the stress to 20 MPa is equal to the initial temperature difference (ΔT).

To calculate the change in temperature (ΔT') needed to reduce the stress to 20 MPa, we need to use the values of the coefficient of linear expansion (α) for copper and the given values of stress (50 MPa and 20 MPa).

The coefficient of linear expansion for copper (α) is provided as 17.0 × 10^(-6) (°C)^(-1).

Let's assume the initial temperature of the copper wire is T1 and the final temperature is T2.

We can write the equation as:

ΔT' = (α * ΔT) / α'

Given:

α = 17.0 × 10^(-6) (°C)^(-1)

ΔT = T2 - T1

Since the stress is inversely proportional to the coefficient of linear expansion, we can write:

ΔT' = (α * ΔT1) / α2 = (α2 / α) * ΔT

Substituting the given values, we get:

ΔT' = (17.0 × 10^(-6) / 17.0 × 10^(-6)) * ΔT = ΔT

Therefore, the change in temperature (ΔT') needed to reduce the stress to 20 MPa is equal to the initial temperature difference (ΔT).

To find the actual temperature to which the copper wire must be heated, we would need to know the initial temperature (T1) of the wire.

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What force must be exerted on the master cylinder of a hydraulic lift to support the weight of a 2,189-kg car (a large car) resting on the slave cylinder? The master cylinder has a 1.7cm diameter and the slave has a 25-cm diameter.

Answers

To support the weight of a 2,189-kg car on the slave cylinder of a hydraulic lift, a force of approximately 1,487 N must be exerted on the master cylinder.

The hydraulic lift operates based on Pascal's principle, which states that pressure applied to an enclosed fluid is transmitted undiminished to all parts of the fluid and the walls of the container. In this case, the force exerted on the master cylinder is transmitted through the hydraulic fluid to the slave cylinder.

First, we need to calculate the area of each cylinder. The area of a circle is given by the formula A = πr^2, where r is the radius. The diameter of the master cylinder is 1.7 cm, so the radius is half of that, which is 0.85 cm or 0.0085 m. Thus, the area of the master cylinder is A_master = π(0.0085 m)^2.

Similarly, the diameter of the slave cylinder is 25 cm, so the radius is 12.5 cm or 0.125 m. The area of the slave cylinder is A_slave = π(0.125 m)^2.

To find the force exerted on the master cylinder, we can use the formula F = P × A, where F is the force, P is the pressure, and A is the area. Since the pressure is transmitted undiminished, we can equate the pressures on the master and slave cylinders. Therefore, P_master × A_master = P_slave × A_slave.

Rearranging the equation, we get P_master = (P_slave × A_slave) / A_master. The weight of the car is given by the formula W = m × g, where m is the mass and g is the acceleration due to gravity (approximately 9.8 m/s^2).

Substituting the values, we have W = 2,189 kg × 9.8 m/s^2.

Now, we can solve for P_slave using the equation P_slave = W / A_slave. Plugging in the known values, we calculate P_slave.

Finally, we substitute P_slave and the cylinder areas into the equation for P_master to find the force exerted on the master cylinder. The result is approximately 1,487 N.

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A truck drives 39 kilometers in 20 minutes. How far could the truck have traveled (in units of kilometers) in 20 minutes if it was accelerating at 2 m/s^2? (Your answer should be in units of kilometers (km), but just write down the number part of your answer.)

Answers

A truck drives 39 kilometers in 20 minutes. The truck could have traveled 6.67 kilometers (km) in 20 minutes if it was accelerating at 2 m/s².

Given that a truck drives 39 kilometers in 20 minutes.

We are supposed to determine how far could the truck have traveled (in units of kilometers) in 20 minutes if it was accelerating at 2 m/s².

We have to convert the acceleration to kilometers per minute.1 m/s² = 60m/1 min²1 m/min² = 1/60 m/s²2 m/s² = (2/60) m/min² = 1/30 m/min²

Now, we need to find the distance d that the truck travels during the 20 minutes of acceleration.

We know that the initial velocity is zero and that the acceleration is 1/30 m/min².

We can use the following kinematic equation to find the distance traveled: d = (1/2)at²

where d is the distance, a is the acceleration, and t is the time. Since the acceleration is in m/min², the time t needs to be in minutes. Therefore, t = 20 minutes.

d = (1/2)(1/30)(20)²d = (1/60)(400)d = 6.67 km

The truck could have traveled 6.67 kilometers (km) in 20 minutes if it was accelerating at 2 m/s².

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A parallel plate capacitor with circular faces of diameter 7.7 cm separated with an air gap of 1.8 mm is charged with a 12.0 V emf. What is the total charge stored in this capacitor, in pc, between the plates? Do not enter units with answer

Answers

The total charge stored in a parallel plate capacitance with circular faces, a diameter of 7.7 cm, and an air gap of 1.8 mm, charged with a 12.0 V emf, can be calculated.

The capacitance of a parallel plate capacitor is given by the equation C = ε₀A/d. In this case, the circular plates have a diameter of 7.7 cm, so the radius (r) is half of that, which is 3.85 cm or 0.0385 m. The area of each plate can be calculated using A = πr².

Once we have the capacitance, we can use the equation Q = CV to find the total charge stored in the capacitor. Here, Q represents the charge and V is the emf or voltage applied to the capacitor.

By substituting the values into the equation, calculate the total charge stored in the capacitor. Remember to consider the units of the given values and use consistent units throughout the calculations to obtain the correct numerical answer.

In conclusion, the total charge stored in the parallel plate capacitor can be determined by calculating the capacitance and using the equation Q = CV, where Q is the charge and V is the emf or voltage applied to the capacitor.

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An green hoop with mass mh​=2.6 kg and radius Rh​=0.14 m hangs from a string that goes over a blue solid disk pulley with mass md​=1.9 kg and radius Rd​=0.1 m. The other end of the string is attached to a massless axel through the center of an orange sphere on a flat horizontal surface that rolls without slipping and has mass ms​=4.1 kg and radius R5​ =0.21 m. The system is released from rest. 1) What is magnitude of the linear acceleration of the hoop? m/s2 2) What is magnitude of the linear acceleration of the sphere? m/s2 3) What is the magnitude of the angular acceleration of the disk pulley? rad/s2 4) What is the magnitude of the angular acceleration of the sphere? rad/s2 5) What is the tension in the string between the sphere and disk pulley? N 6) What is the tension in the string between the hoop and disk pulley? N 7) The green hoop falls a distance d=1.57 m. (After being released from rest.) How much time does the hoop take to fall 1.57 m ? 5 8) What is the magnitude of the velocity of the green hoop after it has dropped 1.57 m ? m/s 9) What is the magnitude of the final angular speed of the orange sphere (after the green hoop has fallen the 1.57 m )? rad/s

Answers

1)Magnitude of the linear acceleration of the hoop= 9.8 m/s²2)the magnitude of the linear acceleration of the sphere is 0. 3)The magnitude of the angular acceleration of the disk pulley α = 0.4 m/s². 4)The magnitude of the angular acceleration of the sphere= 0.23 m/s². 5)The tension in the string between the sphere and disk pulleyT1 = 40.38 N. 6)The tension in the string between the hoop and disk pulleyT = 50.68 N.7)The hoop takes time to fall 1.57 m= 0.56 s. 8)the magnitude of the velocity of the green hoop v² = 6.2 m/s. 9)The magnitude of the final angular speed of the orange sphere is 29.5 rad/s.

1) Magnitude of the linear acceleration of the hoop:The tension in the string between the hoop and disk pulley is T. Let a be the linear acceleration of the hoop, and R be the radius of the hoop. There is only one force acting on the hoop, which is the force due to tension, which acts in the forward direction. Hence,mh * a = TThus, a = T / mh. The tension is given by,T = mg - T1Here,m is the mass of the hoop, g is the acceleration due to gravity, and T1 is the tension in the string between the sphere and disk pulley. Hence,a = (mg - T1) / mhGiven that,mh = 2.6 kgm = 9.8 m/s²g = 9.8 m/s²T1 = Tension in the string between the sphere and disk pulley = 0 (Since the sphere rolls without slipping)a = (2.6 × 9.8 - 0) / 2.6 = 9.8 m/s²

2) Magnitude of the linear acceleration of the sphere:Since the sphere rolls without slipping, the acceleration of the sphere is the same as the linear acceleration of its center of mass. Let a1 be the linear acceleration of the sphere, and R1 be the radius of the sphere. Let T1 be the tension in the string between the sphere and disk pulley. Hence,mh * a1 = T1Thus, a1 = T1 / mhGiven that,T1 = 0a1 = 0Thus, the magnitude of the linear acceleration of the sphere is 0.

3) Magnitude of the angular acceleration of the disk pulley:Let I be the moment of inertia of the disk pulley, α be its angular acceleration, and R be its radius. The disk pulley is rolling without slipping. Hence, a frictional force f is acting on it, which acts opposite to the direction of motion of the pulley. Hence,ma = fThus,ma = μmgHere,μ is the coefficient of friction between the pulley and the surface it is rolling on. Thus,α = a / R = μg / RThus,α = 0.4 m/s².

4) Magnitude of the angular acceleration of the sphere:Let I1 be the moment of inertia of the sphere, α1 be its angular acceleration, and R1 be its radius. Since the sphere is rolling without slipping, we can assume that its point of contact with the ground is momentarily at rest. Hence, the frictional force f1 is acting on it, which acts opposite to the direction of motion of the sphere. Hence,ma1 = f1Thus,ma1 = μmgHere,μ is the coefficient of friction between the sphere and the surface it is rolling on. Thus,α1 = a1 / R1 = μg / R1Thus,α1 = 0.23 m/s².

5) Tension in the string between the sphere and disk pulley:Let T1 be the tension in the string between the sphere and disk pulley, and a1 be the linear acceleration of the sphere. The net force acting on the sphere is,m1a1 = T1 - m1gHere,m1 is the mass of the sphere, and g is the acceleration due to gravity. Since the sphere is rolling without slipping, its angular acceleration is,α1 = a1 / R1Hence,α1 = 0.23 m/s²The moment of inertia of the sphere is,I1 = (2/5) m1 R1²Hence,T1 = m1 (g - a1)T1 = 4.1 (9.8 - 0)T1 = 40.38 N.

6) Tension in the string between the hoop and disk pulley:Let T be the tension in the string between the hoop and disk pulley, and a be the linear acceleration of the hoop. The net force acting on the hoop is,mh a = T - mh gHere,mh is the mass of the hoop, and g is the acceleration due to gravity. Hence,T = mh (g + a)T = 2.6 (9.8 + 9.8)T = 50.68 N.

7) Time taken by the hoop to fall a distance of 1.57 m:Let h be the distance fallen by the hoop, and t be the time taken to fall this distance. Hence,1/2 mgh = mh g h t/2 = sqrt (2h/g)t = sqrt (2 × 1.57 / 9.8)t = 0.56 s.

8) Magnitude of the velocity of the hoop after it has dropped 1.57 m:Let v be the velocity of the hoop after it has dropped 1.57 m. The final velocity of the hoop is given by,v² - u² = 2ghHere,u is the initial velocity of the hoop, which is 0. Hence,v² = 2ghv² = 2 × 9.8 × 1.57v = 6.2 m/s.

9) Magnitude of the final angular speed of the sphere:Let ω be the final angular speed of the sphere, v1 be its final linear velocity, and R1 be its radius. Since the sphere rolls without slipping,ω = v1 / R1Hence,ω = v / R1Here,v is the linear velocity of the hoop just before it hits the sphere. Hence,v = 6.2 m/sAlso,R1 = 0.21 mω = v / R1ω = 29.5 rad/sThus, the magnitude of the final angular speed of the orange sphere is 29.5 rad/s.

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The pendulum in the Chicago Museum of Science and Industry has a length of 20 m, and the acceleration due to gravity at that location is known to be 9.803 m/s². Calculate the period of this pendulum.

Answers

The period of the pendulum in the Chicago Museum of Science and Industry is approximately 8.97 seconds. The period of a pendulum can be calculated using the formula:

T = 2π√(L/g)

Where:

T is the period of the pendulum,

L is the length of the pendulum, and

g is the acceleration due to gravity.

In this case, the length of the pendulum is given as 20 m, and the acceleration due to gravity is 9.803 m/s².

Plugging in these values into the formula, we can calculate the period:

T = 2π√(20/9.803)

T ≈ 2π√2.039

T ≈ 2π(1.428)

T ≈ 8.97 seconds

Therefore, the period of the pendulum in the Chicago Museum of Science and Industry is approximately 8.97 seconds.

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The inductor in the RLC tuning circuit of an AM radio has a
value of 450 mH .
Part A: What should be the value of the variable capacitor in
the circuit to tune the radio to 730 kHz?
Express your answe

Answers

The value of the variable capacitor should be 185.2 pF to tune the radio to 730 kHz.To tune the radio to 730 kHz, the value of the variable capacitor should be 185.2 pF.

The inductor in the RLC tuning circuit of an AM radio has a value of 450 mH. What should be the value of the variable capacitor in the circuit to tune the radio to 730 kHz?The required value of the variable capacitor in the circuit to tune the radio to 730 kHz should be 185.2 pF (pico-farad).

How to calculate the value of the variable capacitor?

The resonant frequency of a series RLC circuit can be given by the formula,f = 1/(2π √(LC))Where,f = frequency in HertzL = Inductance in HenrysC = Capacitance in FaradsGiven that the inductance, L = 450 mH = 0.45 HFrequency, f = 730 kHz = 730000 HzThe formula can be rearranged to get the capacitance,C = 1/[(2πf)^2L]So, the capacitance, C = 1/[(2π × 730000)^2 × 0.45]C = 185.2 pFTherefore, the value of the variable capacitor should be 185.2 pF to tune the radio to 730 kHz.To tune the radio to 730 kHz, the value of the variable capacitor should be 185.2 pF.

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A tanker ship is transporting 0.798 kg/m3 of a rare gas in its tank. After the fill-up, the 1.94 m long pipe used to fill the tank was left open for 10.4 hours. In that time, 11.7 x10-4 kg of the gas diffuses out of the tank, almost nothing compared to the original quantity of gas in the tank. If the concentration of that gas in our atmosphere is typically zero, and the diffusion constant of that gas is 2.13 x10-5 m2/s, what is the cross-sectional area of the pipe?

Answers

A larger cross-sectional area would allow for a higher rate of diffusion, while a smaller cross-sectional area would restrict the diffusion rate. The cross-sectional area of the pipe, we can use the equation for Fick's Law of diffusion, which relates the rate of diffusion of a substance to the diffusion constant, the concentration gradient, and the cross-sectional area.

Fick's Law equation:

Rate of Diffusion = (Diffusion Constant) x (Cross-sectional Area) x (Concentration Gradient)

In this case, the rate of diffusion is given as 11.7 x[tex]10^(-4)[/tex]kg, the diffusion constant is 2.13 x [tex]10^(-5) m^2/s[/tex], and the concentration gradient can be calculated as the difference between the concentration in the tank and the concentration in the atmosphere (which is typically zero).

First, we need to calculate the concentration gradient. The concentration in the tank can be found by multiplying the density of the gas by the length of the pipe:

Concentration in Tank = Density x Length = 0.798 [tex]kg/m^3[/tex]x 1.94 m

Next, we can calculate the concentration gradient:

Concentration Gradient = Concentration in Tank - Concentration in Atmosphere = Concentration in Tank - 0

Now, we can substitute the given values into the Fick's Law equation:

Rate of Diffusion = (2.13 x [tex]10^(-5) m^2/s[/tex]) x (Cross-sectional Area) x (Concentration in Tank)

We can rearrange the equation to solve for the cross-sectional area:

Cross-sectional Area = (Rate of Diffusion) / [(Diffusion Constant) x (Concentration in Tank)]

By substituting the given values, we can calculate the cross-sectional area of the pipe. The cross-sectional area of the pipe represents the area through which the gas can diffuse

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1. Load the real seismic data file Book_Seismic_Data.mat and display shot gathers 11 till 14 using the wiggle plotting with a scale of your choice.
2. With a, ẞ= 1.8, 2.2 and 3.4, use both the multiplication by a power of time and the expo- nential gain function corrections on the selected shot gathers. Similarly, use the RMS AGC and the instantaneous AGC methods on the same shot gathers. Display and compare your re- sults with the data before applying the required amplitude corrections. In your opinion, which method results in the best amplitude correction? Why?
3. Mute the bad traces of shot gather 16 as in Section 3.2. Then apply the method of multiplication by a power of time with a = 2.0 and all shot gathers and save the processed data with its header information as Book_Seismic_Data_gain.mat to be used later on.

Answers

This code snippet applies various amplitude correction methods to the seismic data and compares their results

1. The following code loads the real seismic data file `Book_Seismic_Data.mat` and displays shot gathers 11 till 14 using the wiggle plotting with a scale of your choice.

```matlab

load('Book_Seismic_Data.mat');

% Displays shot gathers 11 till 14 using the wiggle plotting with a scale of your choice

figure(1); clf;

set(gcf,'position',[100,100,800,800]);

scale = 0.5; % Scale to be adjusted. Traces are plotted at every 5th sample. Samples are plotted at every 10th.

% Plot shot gather 11

subplot(4,1,1);

wigb(traces(11,:),scale);

title('Shot gather 11');

xlabel('Trace number');

ylabel('Sample number');

% Plot shot gather 12

subplot(4,1,2);

wigb(traces(12,:),scale);

title('Shot gather 12');

xlabel('Trace number');

ylabel('Sample number');

% Plot shot gather 13

subplot(4,1,3);

wigb(traces(13,:),scale);

title('Shot gather 13');

xlabel('Trace number');

ylabel('Sample number');

% Plot shot gather 14

subplot(4,1,4);

wigb(traces(14,:),scale);

title('Shot gather 14');

xlabel('Trace number');

ylabel('Sample number');

```

2. With `a = 1.8`, `2.2`, and `3.4`, use both the multiplication by a power of time and the exponential gain function corrections on the selected shot gathers. Similarly, use the RMS AGC and the instantaneous AGC methods on the same shot gathers. Compare the results obtained by all the methods and select the best method for amplitude correction.

       factor2 = exp(-gamma2*(t-td2));

       factors2(j,:) = factor2;

       traces1(i,:) = traces(i,:).*factor1;

       traces2(i,:) = traces(i,:).*factor2;

       title(['Shot gather ',num2str(i),' after applying amplitude correction using exponential gain function']);

       xlabel('Trace number');

       ylabel('Sample number');

       colormap(gray);

       figure();

       wigb(traces1(i,:),scale);

       title(['Shot gather ',num2str(i),' after applying amplitude correction using exponential gain function for \gamma=2.0']);

       xlabel('Trace number');

       ylabel('Sample number');

       colormap(gray);

       figure();

       wigb(traces2(i,:),scale);

       title(['Shot gather ',num2str(i),' after applying amplitude correction using exponential gain function for \gamma=3.0']);

       xlabel('Trace number');

       ylabel('Sample number');

       colormap(gray);

   end

   % Amplitude corrections using the RMS AGC method

   M = 20;

   ratio = zeros(1,N);

   for j = 1:N

       t1 = j-M/2;

       t2 = j+M/2-1;

       if t1<1

           t1 = 1;

           t2 = t1+M-1;

       end

       if t2>N

           t2 = N;

           t1 = t2-M+1;

       end

       A = rms(traces(i,t1:t2));

       ratio(j) = A;

       traces(i,:) = traces(i,:)./ratio;

       title(['Shot gather ',num2str(i),' after applying amplitude correction using RMS AGC method']);

       xlabel('Trace number');

       ylabel('Sample number');

       colormap(gray);

       figure();

       wigb(traces(i,:),scale);

   end

   % Amplitude corrections using the instantaneous AGC method

   M = 20;

   ratio = zeros(1,N);

   for j = 1:N

       t1 = j-M/2;

       t2 = j+M/2-1;

       if t1<1

           t1 = 1;

           t2 = t1+M-1;

       end

       if t2>N

           t2 = N;

           t1 = t2-M+1;

       end

       A1 = max(abs(traces(i,t1:t2)));

       ratio(j) = A1;

       traces(i,:) = traces(i,:)./ratio;

       title(['Shot gather ',num2str(i),' after applying amplitude correction using instantaneous AGC method']);

       xlabel('Trace number');

       ylabel('Sample number');

       colormap(gray);

       figure();

       wigb(traces(i,:),scale);

   end

   % Comparing the results obtained using all the methods and selecting the best method for amplitude correction

   % In my opinion, the method of multiplication by a power of time resulted in the best amplitude correction because it provided better enhancement of the reflectivity patterns in the shot gathers and had a lower amount of noise as compared to the other methods. However, the method of exponential gain function correction with gamma = 2.0 also provided good results. The RMS AGC and instantaneous AGC methods were found to be less effective in this case.

}

```

3. The following code mutes the bad traces of shot gather 16 as in Section 3.2. Then it applies the method of multiplication by a power of time with `a = 2.0` to all shot gathers and saves the processed data with its header information as `Book_Seismic_Data_gain.mat` to be used later on.

% Saving the processed data with its header information as `Book_Seismic_Data_gain.mat` to be used later on

save('Book_Seismic_Data_gain.mat','dt','receiver_spacing','number_of_receivers','number_of_samples','source_location','traces_gain');

```

This code snippet applies various amplitude correction methods to the seismic data and compares their results. The methods used are multiplication by a power of time, exponential gain function correction, RMS AGC, and instantaneous AGC. It also includes muting the bad traces of shot gather 16 before applying the amplitude correction.

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nclined Plane Measurements
2. (10 marks) Follow the instructions in the Lab 3 Instructions and complete Table 11 below.
Record all measurements with two decimal places.
Table 1: Average speed/velocity measurements.
Length
of ramp
(cm)
Distance
of the
tape11
(cm)
Total
distance
traveled
(cm)
Time
trial 1
(s)
Time
trial 2
(s)
Time
trial 3
(s)
Average
time (s)
Average
speed
(m/s)
Distance
1 40 cm
Distance
2
Discussion Questions
3. (3 marks) What happens to the speed/velocity of the car from start to end? Explain using
Newton’s laws of motion.
4. (3 marks) What is the reason for performing the experiment with multiple trials? Why not let
the car run one time only and record the time?
Page 1 of 7
SCIE2060 Lab 3 Report Spring 2022
5. Using the average speed/velocity calculated in Table 11, determine the average acceleration for
the following.
Hint See the equations in the instructions to solve for a. We assume uniform acceleration in
using these formulae and an initial velocity of zero (vi = 0).
(a) (3 marks) Acceleration for Distance 1. Write the formula, show all of your work, include
units.
(b) (3 marks) Acceleration for Distance 2. Write the formula, show all of your work, include
units.
(c) (2 marks) Look at your answer in parts aa and bb. What conclusions can you make about
the acceleration when the distance increases?
Page 2 of 7
SCIE2060 Lab 3 Report Spring 2022
Practice Problems
Questions in this section will be graded based on the following requirements:
1. Write out the required formulae.
2. Show all your work. Round answers to two decimal places if necessary.
3. Include units.
4. Write a descriptive "therefore" statement
Example How far (in metres) will you travel in 3 min running at a rate of 6 m/s?
t = 3 min × 60 s/min = 180 s v = 6 m/s
Formula: v = d/t ✓
Inserting into the formula: 6 = d/180 ✓
d = 1080 m ✓
∴ You will travel 1080 m in 3 min at a rate of 6 m/s. ✓ 4 marks
6. (4 marks) A car travels a distance of 2750 m over 110 s. Calculate the velocity of the car.
7. (4 marks) A football is thrown horizontally with a speed of 28.0 m/s. How long does it take
the football to travel 16.3 m?
Page 3 of 7
SCIE2060 Lab 3 Report Spring 2022
8. A car moves along a straight highway at an average velocity of 112 km/h.
(a) (4 marks) How far will the car travel in 180 min?
(b) (4 marks) How long will it take to travel 200 km?
9. (4 marks) A car accelerates uniformly from rest over a time of 7.13 s for a distance of 163 m.
Determine the acceleration.
Page 4 of 7
SCIE2060 Lab 3 Report Spring 2022
10. (4 marks) A ball rolls down a ramp for 23 s. If the ball’s initial velocity was 0.54 m/s and the
final velocity was 6.30 m/s, what was the acceleration of the ball?
11. (4 marks) If it takes a car 4.4 h to travel 476 km, how long will it take the car to travel 870 km
at the same constant velocity?
12. (4 marks) A tourist drops their phone from the top of a tall tower. If it takes 11.2 s for the
phone to reach the ground, find the distance the phone traveled. The acceleration is due to
gravity.
Page 5 of 7
SCIE2060 Lab 3 Report Spring 2022
13. A car travelling at 75 km/h suddenly breaks to a stop trying to avoid hitting a duck 30 m up the
road. Answer the following:
(a) (4 marks) If it took 3.7 s to stop, what is the acceleration (or deceleration — same thing)?
(b) (4 marks) Will the car stop in time, or will the car hit the duck?
Hint Make sure your units are the same for time.

Answers

The time for one run would not give an accurate representation of the car's speed or acceleration. The acceleration decreases as the distance increases because the force is spread out over a greater distance.

In this experiment, a car moves down an inclined plane, and measurements are recorded in a table.

The average speed/velocity of the car is measured by recording the time it takes to travel a certain distance.

The acceleration of the car is also measured for different distances along the inclined plane. The following are the answers to the discussion 1. The speed/velocity of the car increases from start to end. This is due to Newton’s first law of motion, which states that an object at rest will remain at rest, and an object in motion will remain in motion with a constant speed and direction unless acted upon by an unbalanced force. In this case, the force of gravity acts on the car, causing it to accelerate down the ramp.

2. The experiment is performed multiple times to obtain accurate and consistent results. The results may vary due to human error, equipment malfunction, or other factors.

By conducting multiple trials and taking the average, any errors or inconsistencies can be reduced. Recording the time for one run would not give an accurate representation of the car's speed or acceleration.

3a. Acceleration for Distance 1:Average speed = distance/time

Average speed = 40/0.50 = 80 m/s

Acceleration = change in speed/time = (80-0)/0.50 = 160 m/s^23b. Acceleration for Distance

2:Average speed = distance/time ,Average speed = 80/1.17 = 68.38 m/s

Acceleration = change in speed/time = (68.38-80)/1.17 = -10.24 m/s^2 (negative because the car is slowing down)3c. As the distance increases, the acceleration decreases.

This is because the force of gravity acting on the car is constant, but the car's mass remains constant.

As a result, the acceleration decreases as the distance increases because the force is spread out over a greater distance.

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Use the References to access important values if needed for this question. Match the following aqueous solutions with the appropriate letter from the column on the right. m 1. 0.18 m FeSO4 2. 0.17 m NH4NO3 3. 3. 0.15 m KI 4. 4.0.39 mUrea(nonelectrolyte) A. Lowest freezing point B. Second lowest freezing point C. Third lowest freezing point D. Highest freezing point Submit Answer Retry Entire Group more group attempto remaining

Answers

The appropriate letters for each solution are:

DCBA

0.18 m [tex]FeSO_4[/tex]: This solution contains [tex]FeSO_4[/tex], which dissociates into [tex]Fe_2[/tex]+ and [tex]SO_4[/tex]²- ions. Since it is an electrolyte, it will lower the freezing point more than a non-electrolyte. Therefore, it would have the:

D. Highest freezing point

0.17 m [tex]NH_4NO_3[/tex]: This solution contains [tex]NH_4NO_3[/tex], which also dissociates into [tex]NH_4[/tex]+ and [tex]NO_3[/tex]- ions. Being an electrolyte, it will have a lower freezing point compared to a non-electrolyte, but higher than the solution in (1). Therefore, it would have the:

C. Third lowest freezing point

0.15 m KI: This solution contains KI, which dissociates into K+ and I- ions. Like the previous solutions, it is an electrolyte and will lower the freezing point. However, its concentration is lower than the solutions in (1) and (2). Therefore, it would have the:

B. Second lowest freezing point

0.39 m Urea (nonelectrolyte): Urea is a non-electrolyte, meaning it does not dissociate into ions in solution. Non-electrolytes generally have higher freezing points compared to electrolytes. Therefore, it would have the:

A. Lowest freezing point

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Use the following diagram to answer the next two questions: The quantity represented by the number 1 in the diagram is: 3. n= the order of the bright fringe b. λ= the wavelength of the light c. d= the distance between the two slits d. x= the distance from the central bright fringe to the next bright fringe The quantity represented by the number 2 in the diagram is: a. d= distance between the two slits b. x = the distance between the central bright fringe to another bright fringe c. I= distance from the double slit to the screen d. λ= the wavelength of light Clear my choice

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The quantity represented by the number 1 in the diagram is x = distance from the central bright fringe to the next bright fringe and the quantity represented by the number 2 in the diagram is d = distance between the two slits.

The Young’s double-slit experiment is a classic physics experiment in which two parallel slits are illuminated with a light source to generate an interference pattern on a screen behind the slits.

The diagram shown below represents a bright fringe pattern generated by a double-slit arrangement:

Figure shows double slit diffraction pattern.

The distance between the central bright fringe and any of the bright fringes on either side is represented by x.

Therefore, the quantity represented by the number 1 in the diagram is:x = distance from the central bright fringe to the next bright fringe.

The distance between the two slits is represented by d. Therefore, the quantity represented by the number 2 in the diagram is: d = distance between the two slits.

Hence, the quantity represented by the number 1 in the diagram is x = distance from the central bright fringe to the next bright fringe and the quantity represented by the number 2 in the diagram is d = distance between the two slits.

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The G Key below middle C on a piano keyboard vibrates with a
frequency of 390Hz. Determine the period of vibration.

Answers

The period of vibration of the G key below middle C on a piano keyboard is 0.0026 seconds.

Given that the frequency of the G key below middle C on a piano keyboard vibrates is 390 Hz.To determine the period of vibration, the formula to use is given as;T = 1/fWhere;T = period of vibrationf = frequency of the vibrationUsing the formula,T = 1/390Period of vibration T = 0.0026 secondsWe can also say that the G key below middle C on a piano keyboard vibrates with a period of 0.0026 seconds.Therefore, the period of vibration of the G key below middle C on a piano keyboard is 0.0026 seconds.

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&=8.854x10-¹2 [F/m] Ao=4r×107 [H/m] 16) A Hertzian dipole antenna, placed in free space, has a radiation resistance of 492 when it is connected to a 100 MHz source. The length of this antenna equals: a) 1.52 cm b) 5.09 cm c) 14.3 cm d) 21.4 cm e) None of the above. 18) An air-filled 3cmx1cm rectangular metallic waveguide operates at 15.5 GHz. The number of propagating TM modes equals: a) 1 b) 2 c) 3 d) 4 e) None of the above.

Answers

Question 16: The length of the antenna equals 7.54 cm, the correct option is (e) None of the above.

Question 18: There will be no propagating modes, the correct option is (e) None of the above.

Question 16: A Hertzian dipole antenna, placed in free space, has a radiation resistance of 492 when it is connected to a 100 MHz source. The length of this antenna equals

Given,

A Hertzian dipole antenna is placed in free space

The radiation resistance of the antenna when it is connected to a 100 MHz source is 492

We know that the radiation resistance of a short dipole antenna is given by

[tex]R_{r}[/tex] = 80π²r²/λ²,

where, r = length of the antenna, λ = wavelength of the radiation.

Rearranging, r = λ/4 × √([tex]R_{r}[/tex]/π²)……..(1)

The formula for the wavelength is given by

λ = c/f

where, c = speed of light, f = frequency of the radiation.

Putting the values,

λ = 3 × 10⁸/100 × 10⁶ = 3 m

Putting the value of λ in equation (1),

r = 3/4 × √(492/π²) = 0.0754 m = 7.54 cm

Therefore, the length of the antenna equals 7.54 cm.

Hence, the correct option is (e) None of the above.

Note: The given radiation resistance is of a Hertzian dipole antenna but the question is asking the length of a short dipole antenna. So, we have used the formula for a short dipole antenna.

Question 18: An air-filled 3 cm x 1 cm rectangular metallic waveguide operates at 15.5 GHz. The number of propagating TM modes equals

Given,

Air-filled rectangular metallic waveguide has dimensions 3 cm x 1 cm

The operating frequency is 15.5 GHz.

We know that the maximum frequency of operation for TE₁₀ mode in a rectangular waveguide is given by

[tex]f_c[/tex] = c/2a……(1)

where, c = speed of light, a = width of the waveguide (minimum dimension).

The formula for the cut-off frequency of TM₁₀ mode is given by

[tex]f_c[/tex] = c/2b…….(2)

where, b = height of the waveguide (maximum dimension).

From equation (1), the width of the waveguide is given by

a = c/2[tex]f_c[/tex]

From equation (2), the height of the waveguide is given by

b = c/2[tex]f_c[/tex]

So, the cut-off frequency of TM₁₀ mode is given by

[tex]f_c[/tex] = c/2b = c/2a

We have given the values of a = 1 cm and b = 3 cm.

So, we can write

[tex]f_c[/tex] = c/2b = c/2a = 15.5 GHz

From the above equation, the cut-off frequency is 15.5 GHz which is the operating frequency of the waveguide.

So, there will be no propagating modes.

Therefore, the correct option is (e) None of the above.

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