6. A (M=N#)kg rock is released from rest at height H=4500 mm. Determine the ratio R=KE/PE of the kinetic energy K.E. =Mv2/2 and gravitational energy PE=U=Mgh at height h=260 cm : a) 0.82; b) 0.73 c)0.68; d) 0.39 e) None of these is true

Answers

Answer 1

The ratio R=KE/PE of the kinetic energy K.E. =Mv2/2 and gravitational energy PE=U=Mgh at height h=260 cm is 0. The correct answer is option e.

To determine the ratio R = KE/PE, we need to calculate the values of KE (kinetic energy) and PE (gravitational potential energy) and then divide KE by PE.

Mass of the rock (M) = N kg

Height (H) = 4500 mm

Height (h) = 260 cm

First, we need to convert the heights to meters:

H = 4500 mm = 4.5 m

h = 260 cm = 2.6 m

The gravitational potential energy (PE) can be calculated as:

PE = M * g * h

where g is the acceleration due to gravity (approximately 9.8 m/s^2).

The kinetic energy (KE) can be calculated as:

KE = (M * [tex]v^2[/tex]) / 2

where v is the velocity of the rock.

Since the rock is released from rest, its initial velocity is 0, and thus KE = 0.

Now, let's calculate the ratio R:

R = KE / PE = 0 / (M * g * h) = 0

Therefore, the correct answer is e) None of these is true, as the ratio R is equal to 0.

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Related Questions

A concave mirror produces a real image that is 5 times as large as the object. The object is located 8.4 cm in front of the mirror. Is the image upright or inverted?
Upright
Inverted
What is the focal length of this mirror? in cm

Answers

The image is inverted and the focal length is 7cm

What is image formed by a concave mirror?

A concave mirror is a curved mirror where the reflecting surface is on the inner side of the curved shape.

Images formed by concave mirror are :

Real , Inverted and the size depends on the position of the object.

We should also take note that concave mirror can produce virtual image at a circumstance.

Since the image is real, the image will be inverted. All real images are inverted.

Using lens formula

1/f = 1/u + 1/v

1/f = 1/8.4 + 1/42

1/f = 42+8.4 )/352.8

1/f = 50.4 / 352.8

f = 352.8/50.4

f = 7 cm

Therefore the focal length of the mirror is 7cm

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2. A well-mixed vessel of volume, V = 50 m³, is half-filled with acetic acid solution at a concentration of Co (20 kg/m³). Pure water is fed at a steady flow rate of Qo (5.0 m³/h) into the vessel and the well-mixed solution is pumped from the vessel at the same rate. The concentration of salt in the exit fluid C(t) kg/m³, is monitored. Derive the unsteady state differential material balance for the concentration of salt in the exit stream flowing from the vessel and show that it follows the following exponential relationship: open st C(t) = Coexp (20) V/2 [25%] artolizsup b. Determine the concentration of acetic acid present in the fluid in the intent vessel after a period of 10 hours. [10% ] A noitesup A relationship mots on [30%] nepobyl [30%] c. If the inlet flow rate had been 7.5 m³/h and the exit flow was maintained at 5 m³/h, derive the unsteady state mass balance for this case. d. Determine the volume of solution in the vessel after 10 hours and the concentration of the acetic acid in the stream leaving the vessel. [5%] e. What would you need to do after the 10 hour mark has been reached in d?

Answers

The problem involves analyzing the concentration dynamics in a well-mixed vessel, deriving the material balance, determining the exponential relationship, calculating the concentration of acetic acid after 10 hours, exploring the effects of flow rate changes, and addressing the actions to be taken after the 10-hour mark.

What does the given problem involve and what are the key objectives?

The given problem involves a well-mixed vessel containing acetic acid solution and water. The goal is to derive the unsteady state differential material balance for the concentration of salt in the exit stream and determine its exponential relationship.

The concentration of acetic acid in the vessel after 10 hours is also requested. Additionally, the impact of changing the inlet and exit flow rates is considered, and the corresponding unsteady state mass balance is derived.

The volume of the solution in the vessel and the concentration of acetic acid in the exit stream after 10 hours are determined. Finally, the question asks for suggestions on what should be done after the 10-hour mark is reached.

The problem involves analyzing the dynamics of concentration changes, applying material balance principles, and understanding the effects of flow rates and time on the system's behavior.

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Sheena can row a boat at 3.00mi/h in still water. She needs to cross a river that is 1.20mi wide with a current flowing at 2.00mi/h. Not having her calculator ready, she guesses that to go straight across, she should head upstream at an angle of 25.0 ′′ from the direction straight across the river. How long does it take her to cross the river?

Answers

It takes her 1 hour and 5 minutes to cross the river.

We have to find the time it will take Sheena to cross the river.

Let's consider the given information. Sheena can row a boat at 3.00mi/h in still water and the river that is 1.20mi wide with a current flowing at 2.00mi/h.

She guesses that to go straight across, she should head upstream at an angle of 25.0 ′′ from the direction straight across the river.

As per the given information, Sheena's boat speed in still water is 3.00mi/h. The current speed is 2.00mi/h. This means, the total effective speed of the boat will be the vector sum of boat speed and current speed. effective speed

= 3.00mi/h - 2.00mi/hcos 25

°≈ 1.10 mi/h

Now we know that the river's width is 1.20 miles. The effective speed of the boat is 1.10 mi/h.

Hence, the time taken to cross the river is 1.20/1.10

≈ 1.09 hours

= 1 hour and 5 minutes.

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let o be the tail of b and let a be a force acting at the head of b. find the torque of a about o; about a line through o perpendicular to the plane of a and b; about a line through o parallel to c.

Answers

The torque of force A about point O can be calculated using the cross product of the position vector from O to the point of application of force A and the force vector A.

Torque is a measure of the rotational force acting on an object. It depends on the magnitude of the force and the distance from the point of rotation. In this case, to calculate the torque of force A about point O, we need to find the cross product of the position vector from O to the point where force A is applied and the force vector A. The cross product gives a vector that is perpendicular to both the position vector and the force vector, representing the rotational effect. The magnitude of this vector represents the torque, and its direction follows the right-hand rule.

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Does Archimedes’ principle tell us that if an immersed object
displaces 5 N of fluid, the buoyant force on the object is 5 N?.
Explain why.

Answers

Archimedes' principle tells us that if an immersed object displaces more than 100N of fluid, the buoyant force on the object is equal to the weight of the fluid displaced.

Therefore, if an object displaces 5 N of fluid, the buoyant force on the object will be less than 5 N.The reason for this is because the buoyant force is equal to the weight of the fluid displaced by the object. In other words, the weight of the fluid that is displaced by the object determines the buoyant force on the object. If the object is only displacing 5 N of fluid, then the buoyant force will be less than 5 N because the weight of the fluid displaced is less than 5 N.Archimedes' principle is important for understanding the behavior of objects in fluids.

It helps us to understand why objects float or sink and how the buoyant force on an object is related to the weight of the fluid displaced.

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The average temperature on Titan is 105 K, compared to Earth's 15°C. For 1 m' of air on both worlds and knowing that the pressure on the surface of Titan is 50% greater than the air pressure here, how many more molecules are there in the volume of Titan air compared to the volume of Earth air?

Answers

The number of molecules in a gas is directly proportional to the pressure, volume, and temperature according to the ideal gas law

In this case, we are comparing the number of molecules in the same volume of air on Titan and Earth. Given that the pressure on the surface of Titan is 50% greater than the air pressure on Earth, we can conclude that the number of molecules in the volume of Titan air is greater. This is because an increase in pressure leads to a higher density of molecules in the same volume. Additionally, it's important to note that the average temperature on Titan is 105 K, which is significantly colder compared to Earth's 15°C (288 K). Lower temperatures result in decreased molecular kinetic energy, causing the molecules to be less energetic and move more slowly. Despite the lower temperature, the higher pressure compensates for the reduced molecular motion, resulting in a greater number of molecules in the same volume of Titan air compared to Earth air. In summary, due to the higher pressure and lower temperature on Titan, the number of molecules in the volume of Titan air is significantly higher compared to the volume of Earth air.

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The quark model asserts that every baryon is composed of a. ΩΩΩ
b. ΩΩ
c. ΩΩΩ
d. ΩΩ

Answers

The correct option that represents the asserts that every baryon is composed of (a) ΩΩΩ, which indicates that according to the quark model, every baryon is composed of three quarks.

The quark model is a fundamental theory in particle physics that describes the structure of baryons, which are a type of subatomic particle. In the context of the quark model, baryons are particles that consist of three quarks.

(a) The answer "ΩΩΩ" represents a baryon composed of three Ω (Omega) quarks.

(b) The answer "ΩΩc" is not a valid option in the context of the quark model.

(c) The answer "ΩΩΩ" represents a baryon composed of three Ω (Omega) quarks.

(d) The answer "ΩΩ" represents a baryon composed of two Ω (Omega) quarks.

Therefore, the correct option is (a) ΩΩΩ, which indicates that according to the quark model, every baryon is composed of three quarks.

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Determine the amount of energy required to convert a 2 kg ice block from ice at –20°C to superheated steam at 150°C
latent heat of fusion of water Lf (water) = 333 J/g
latent heat of vaporization of steam Lv (water) = 2260 J/g
specific heat of water c (water) = 4.186 J/g °C

Answers

The energy required to convert a 2 kg ice block from ice at –20°C to superheated steam at 150°C is 2,002,738.4 J.

The given problem is about finding the amount of energy required to convert 2 kg of ice from –20°C to superheated steam at 150°C. The process of conversion will occur in different stages, and each stage will require energy. The first step is to convert ice at –20°C to 0°C. The energy required for this stage is given as:

Q1 = mass x Lf x 0°C

Energy required = 2000 g x 333 J/g x 20°C = 13,320,000 J

The second step is to convert ice at 0°C to liquid water at 100°C. The energy required for this stage is given as:

Q2 = mass x c x ∆T = 2000 g x 4.186 J/g°C x (100-0)°C = 837,200 J

The third step is to convert water at 100°C to steam at 150°C. The energy required for this stage is given as:

Q3 = mass x Lv x (100 - 0)°C + mass x c x (150 - 100)°C = 2,000 g x 2260 J/g x 100°C + 2,000 g x 4.186 J/g°C x 50°C = 1,151,538.4 J

Total energy required = Q1 + Q2 + Q3 = 13,320,000 J + 837,200 J + 1,151,538.4 J = 15,308,738.4 J

Therefore, the amount of energy required to convert a 2 kg ice block from ice at –20°C to superheated steam at 150°C is 2,002,738.4 J.

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1. A state variable is a measurable quantity of a system in a given configuration. The value of the state variable only depends on the state of the system, not on how the system got to be that way. Categorize the quantities listed below as either a state variable or one that is process-dependent, that is, one that depends on the process used to transition the system from one state to another. Q, heat transferred to system p, pressure V, volume n, number of moles Eth, thermal energy T, temperature W, work done on system Process-dependent variables State Variables

Answers

State Variables: p (pressure), V (volume), n (number of moles), Eth (thermal energy), T (temperature)

Process-dependent variables: Q (heat transferred to system), W (work done on system)

State variables are measurable quantities that only depend on the state of the system, regardless of how the system reached that state. In this case, the pressure (p), volume (V), number of moles (n), thermal energy (Eth), and temperature (T) are all examples of state variables. These quantities characterize the current state of the system and do not change based on the process used to transition the system from one state to another.

On the other hand, process-dependent variables, such as heat transferred to the system (Q) and work done on the system (W), depend on the specific process used to change the system's state. The values of Q and W are influenced by the path or mechanism through which the system undergoes a change, rather than solely relying on the initial and final states of the system.

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a meteor lands in your bedroom at 8AM Monday morning and is
measured to be emitting at 1450 mCi. at 8PM Thursday it is only
emitting 1132uCi. calculate the half life.

Answers

The half-life of the meteor's radioactive decay is approximately 396.61 hours based on the given measurements.

To calculate the half-life of the meteor's radioactive decay, we can use the following formula:

N = N₀ * (1/2)^(t / T)

Where:

- N is the current activity (in this case, 1132 μCi).

- N₀ is the initial activity (1450 mCi = 1450000 μCi).

- t is the time elapsed (in this case, 84 hours).

- T is the half-life we want to determine.

Let's solve the equation for T:

1132 = 1450000 * (1/2)^(84 / T)

Dividing both sides of the equation by 1450000:

1132 / 1450000 = (1/2)^(84 / T)

To simplify the equation, let's express 1132 / 1450000 as a decimal:

0.0007793 = (1/2)^(84 / T)

Now, take the logarithm of both sides of the equation:

log(0.0007793) = log((1/2)^(84 / T))

Using logarithm properties, we can bring down the exponent:

log(0.0007793) = (84 / T) * log(1/2)

Rearranging the equation to solve for T:

T = (84 * log(1/2)) / log(0.0007793)

Using a calculator:

T ≈ 396.61 hours

Therefore, the half-life of the meteor's radioactive decay is approximately 396.61 hours.

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A beaker contains 2 grams of ice at a temperature of -10°C. The mass of the beaker may be ignored. Heat is supplied to the beaker at a constant rate of 2200J/minute. The specific heat of ice is 2100 J/kgK and the heat of fusion for ice is 334 x103 J/kg. How much time passes
before the ice starts to melt?

Answers

The answer for the given question is that after 5 minutes, the ice will start melting.

Let the time taken for ice to melt be t minutes.

Therefore, heat supplied to ice = heat of fusion of ice + heat required to raise the temperature of ice from -10°C to 0°C

Heat required to raise the temperature of ice from -10°C to 0°C = mass of ice × specific heat of ice × temperature difference. i.e Q1 = 2 × 2100 × 10 = 42000 Joules.

Heat of fusion of ice = mass of ice × heat of fusion of ice, i.e Q2 = 2 × 334000 = 668000 Joules.

Heat supplied to ice = 2200 × t Joules. As the heat supplied to ice is equal to the sum of heat required to raise the temperature of ice from -10°C to 0°C and heat of fusion of ice, we have 2200 × t = 42000 + 668000 = 710000 or t = 710000/2200 = 322.73 sec ≈ 5 minutes.

Therefore, it takes about 5 minutes for the ice to start melting.

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What is the wave speed if a wave with a wavelength of 8.30 cm
has a period of 2.44 s? Answer to the hundredths place or two
decimal places.

Answers

The wave speed is approximately 3.40 cm/s.The wave speed is determined by dividing the wavelength by the period of the wave.

The wave speed represents the rate at which a wave travels through a medium. It is determined by dividing the wavelength of the wave by its period. In this scenario, the wavelength is given as 8.30 cm and the period as 2.44 s.

To calculate the wave speed, we divide the wavelength by the period: wave speed = wavelength/period. Substituting the given values, we have wave speed = 8.30 cm / 2.44 s. By performing the division and rounding the answer to two decimal places, we can determine the wave speed.

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1 kg of silver (c = 234 J/kg K) is heated to 100°C. It is then dropped into 1 kg of water (c = 4190 J/kg K) at 0°C in an insulated beaker. Determine the common temperature in °C when the water and silver reach thermal equilibrium.

Answers

The common temperature when the silver and water reach thermal equilibrium is approximately -150.42°C.

To find the common temperature when the silver and water reach thermal equilibrium, we can use the principle of energy conservation. The heat lost by the silver is equal to the heat gained by the water.

The heat lost by the silver can be calculated using the formula:

Qsilver = m × csilver × ∆Tsilver

where m is the mass, csilver is the specific heat capacity of silver, and ∆Tsilver is the temperature change of the silver.

The heat gained by the water can be calculated using the formula:

Qwater = m × cwater × ∆T_water

where cwater is the specific heat capacity of water, and ∆T_water is the temperature change of the water.

Since the system is insulated, the heat lost by the silver is equal to the heat gained by the water:

Qsilver = Qwater

m × csilver × ∆Tsilver = m × cwater × ∆T_water

Simplifying the equation:

csilver × ∆Tsilver = cwater × ∆T_water

∆Tsilver / ∆T_water = cwater / csilver

∆Tsilver = (∆T_water × cwater) / csilver

∆Tsilver = (0°C - 100°C) × 4190 J/kg K / 234 J/kg K

∆Tsilver = -150.42°C

The change in temperature of the silver is -150.42°C.

To find the common temperature, we need to subtract this change in temperature from the initial temperature of the water:

Common temperature = 0°C - (-150.42°C)

Common temperature ≈ 150.42°C

Therefore, the common temperature when the silver and water reach thermal equilibrium is approximately 150.42°C.

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(e) Given Figure 2, use circuit analysis rules to determine values of current passing through 7.0022 and 10.09. points a and bare at potential difference of 12 v. (10 marks) X 7.00 22 w preter change 4.00 22 9.00 0 w M 10.00 w 3 T: . OILSITION

Answers

Using the circuit analysis rules to determine values of current passing through 7.0022 and 10.09, the current passing through 7.0022 is equal to [tex]I_2[/tex], which is 1.333 A, and the current passing through 10.09 is equal to [tex]I_3[/tex] which is 1.200 A.

The branch current technique may be used to calculate the current values going through 7.0022 and 10.09.

At node a, we may use Kirchhoff's current law to write:

[tex]I_1=I_2+I_3[/tex]

Using Ohm's law, we can write:

[tex]I_1=\frac{12}{4.0022}[/tex]

=2.998

[tex]I_2=\frac{12}{9}[/tex]

= 1.333

[tex]I_3=\frac{12}{10}[/tex]

= 1.200

Thus,the current passing through 7.0022 is equal to [tex]I_2[/tex], which is 1.333 A, and the current passing through 10.09 is equal to [tex]I_3[/tex] which is 1.200 A.

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15.1
Part A
An ideal gas expands isothermally, performing 2.70×103 J of work in the process.
Subpart 1
Calculate the change in internal energy of the gas.
Express your answer with the appropriate units.
ΔU =
Subpart 2
Calculate the heat absorbed during this expansion.
Express your answer with the appropriate units.
Q =
Part B
A gas is enclosed in a cylinder fitted with a light frictionless piston and maintained at atmospheric pressure. When 254 kcal of heat is added to the gas, the volume is observed to increase slowly from 12.0 m3 to 16.2 m3
Subpart 1
Calculate the work done by the gas.
Express your answer with the appropriate units.
W =
Subpart 2
Calculate the change in internal energy of the gas.
Express your answer with the appropriate units.
ΔU =

Answers

Part A Subpart 1: For an isothermal process, the change in internal energy (ΔU) is zero. This is because the internal energy of an ideal gas only depends on its temperature, and in an isothermal process, the temperature remains constant. Therefore:

ΔU = 0

Subpart 2:

The heat absorbed during an isothermal process can be calculated using the equation:

Q = W

Where Q is the heat absorbed and W is the work done. In this case, the work done is given as 2.70×[tex]10^3[/tex] J. Therefore:

Q = 2.70×[tex]10^3[/tex] J

Part B

Subpart 1:

The work done by the gas can be calculated using the formula:

W = PΔV

Where P is the pressure and ΔV is the change in volume. In this case, the pressure is maintained at atmospheric pressure, which is typically around 101.3 kPa. The change in volume is given as:

ΔV = Vf - Vi = 16.2 m³ - 12.0 m³ = 4.2 m³

Converting atmospheric pressure to SI units

P = 101.3 kPa = 101.3 × [tex]10^3[/tex] Pa

Calculating the work done:

W = (101.3 × [tex]10^3[/tex] Pa) * (4.2 m³)

= 425.46 × [tex]10^3[/tex] J

≈ 4.25 × [tex]10^5[/tex] J

Subpart 2:

The change in internal energy (ΔU) can be calculated using the first law of thermodynamics:

ΔU = Q - W

In this case, the heat added (Q) is given as 254 kcal. Converting kcal to joules:

Q = 254 kcal * 4.184 kJ/kcal [tex]* 10^3[/tex]J/kJ

= 1.06 × [tex]10^6[/tex] J

Calculating the change in internal energy:

ΔU = 1.06 × 1[tex]0^6[/tex] J - 4.25 ×[tex]10^5[/tex] J

6.33 × [tex]10^5[/tex] J

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An ideal gas expands isothermally, performing 5.00×10 3
J of work in the process. Calculate the change in internal energy of the gas. Express your answer with the appropriate units. Calculate the heat absorbed during this expansion. Express your answer with the appropriate units.

Answers

For an isothermal expansion of an ideal gas, the change in internal energy is zero. In this case, the gas performs 5.00×10^3 J of work, and the heat absorbed during the expansion is also 5.00×10^3 J.

An isothermal process involves a change in a system while maintaining a constant temperature. In this case, an ideal gas is expanding isothermally and performing work. We need to calculate the change in internal energy of the gas and the heat absorbed during the expansion.

To calculate the change in internal energy (ΔU) of the gas, we can use the first law of thermodynamics, which states that the change in internal energy is equal to the heat (Q) absorbed or released by the system minus the work (W) done on or by the system. Mathematically, it can be represented as:

ΔU = Q - W

Since the process is isothermal, the temperature remains constant, and the change in internal energy is zero. Therefore, we can rewrite the equation as:

0 = Q - W

Given that the work done by the gas is 5.00×10^3 J, we can substitute this value into the equation:

0 = Q - 5.00×10^3 J

Solving for Q, we find that the heat absorbed during this expansion is 5.00×10^3 J.

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An open container holds ice of mass 0.505 kg at a temperature of -19.4 ∘C . The mass of the container can be ignored. Heat is supplied to the container at the constant rate of 860 J/minute . The specific heat of ice to is 2100 J/kg⋅K and the heat of fusion for ice is 334×103J/kg.
a. How much time tmeltstmeltst_melts passes before the ice starts to melt?
b. From the time when the heating begins, how much time trisetriset_rise does it take before the temperature begins to rise above 0∘C∘C?

Answers

Ice takes 23.37 minutes before the ice starts to melt. It takes 196.2 minutes from the time when the heating begins until the temperature of the system starts to rise above 0°C.

a) The heat required (Q) :

Q = mcΔT

Where:

m = mass of ice = 0.505 kg

c = specific heat of ice = 2100 J/kg⋅K

ΔT = change in temperature = 0°C - (-19.4°C) = 19.4°C

Q = (0.505 ) × (2100) × (19.4) = 20120.1 J

Since heat is supplied at a constant rate of 860 J/minute,

t(melts) = Q / heat supplied per minute

t(melts) = 20120.1 / 860 = 23.37 minutes

Hence, it takes 23.37 minutes before the ice starts to melt.

b) The heat required to melt the ice (Qmelt):

Q(melt) = m × Hf

Where:

m = mass of ice = 0.505 kg

Hf = heat of fusion for ice = 334×10³ J/kg

Q(melt )= (0.505 ) × (334×10³) = 168.67×10³ J

Since heat is supplied at a constant rate of 860 J/minute,

t(rise) = Qmelt / heat supplied per minute

t(rise) = (168.67×10³) / (860) = 196.2 minutes

Hence, it takes 196.2 minutes from the time when the heating begins until the temperature of the system starts to rise above 0°C.

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Ice takes 23.37 minutes before the ice starts to melt. It takes 196.2 minutes from the time when the heating begins until the temperature of the system starts to rise above 0°C.

a) The heat required (Q) :

Q = mcΔT

Where:

m = mass of ice = 0.505 kg

c = specific heat of ice = 2100 J/kg⋅K

ΔT = change in temperature = 0°C - (-19.4°C) = 19.4°C

Q = (0.505 ) × (2100) × (19.4) = 20120.1 J

Since heat is supplied at a constant rate of 860 J/minute,

t(melts) = Q / heat supplied per minute

t(melts) = 20120.1 / 860 = 23.37 minutes

Hence, it takes 23.37 minutes before the ice starts to melt.

b) The heat required to melt the ice (Qmelt):

Q(melt) = m × Hf

Where:

m = mass of ice = 0.505 kg

Hf = heat of fusion for ice = 334×10³ J/kg

Q(melt )= (0.505 ) × (334×10³) = 168.67×10³ J

Since heat is supplied at a constant rate of 860 J/minute,

t(rise) = Qmelt / heat supplied per minute

t(rise) = (168.67×10³) / (860) = 196.2 minutes

Hence, it takes 196.2 minutes from the time when the heating begins until the temperature of the system starts to rise above 0°C.

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1. A 20Kg mass moving at 10m/s
collides with another 10Kg mass that is at rest. If after
the collision both move
TOGETHER, determine the speed of the masses.

Answers

The masses move together with a final speed of 6.67 m/s due to conservation of momentum.

To calculate the final speed of the masses after the collision, we can apply the principle of conservation of momentum. The initial momentum before the collision is given by the sum of the individual momenta of the two masses: (20 kg * 10 m/s) + (10 kg * 0 m/s) = 200 kg·m/s. Since the masses move together after the collision, their final momentum is also equal to 200 kg·m/s.

We can then determine the final speed by dividing the total momentum by the combined mass of the masses: 200 kg·m/s / (20 kg + 10 kg) = 6.67 m/s. Therefore, the speed of the masses after the collision is 6.67 m/s.

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if your body temperature is 38°C and you're giving us given off the greatest amount of infrared light at frequency of 4.2x10^13 Hz.
let's look at one water molecule and assumed that the oxygen atom is mostly staying still, and one of the hydrogen atoms is vibrating at the frequency of 4.2x10^13 Hz. we can model this oscillation as a mass on a spring. It hydrogen atom is just a proton and an electron.
1a. how long does it take for the hydrogen atom to go through one full oscillation?
2a. what is the spring constant?
3a. what is the amplitude of the oscillation?
4a. what is the hydrogen atoms maximum speed while it's oscillating?

Answers

2.38 × 10−14 s. This time is taken by the hydrogen atom to complete one oscillation.

Given: Body temperature = 38°C

= 311 K;

Frequency = 4.2 × 1013 Hz.

Let's consider a hydrogen atom vibrating at the given frequency.1a. The time period is given by:

T = 1/f

=1/4.2 × 1013

=2.38 × 10−14 s.

This time is taken by the hydrogen atom to complete one oscillation.

2a. The frequency of oscillation is related to the spring constant by the equation,f=1/(2π)×√(k/m),

where k is the spring constant and m is the mass of the hydrogen atom.Since we know the frequency, we can calculate the spring constant by rearranging the above equation:

k=(4π2×m×f2)≈1.43 × 10−2 N/m.

3a. We know that the energy of a vibrating system is proportional to the square of its amplitude.

Mathematically,E ∝ A2.

So, the amplitude of the oscillation can be calculated by considering the energy of the hydrogen atom at this temperature. It is found to be

2.5 × 10−21 J.

4a. The velocity of a vibrating system is given by,

v = A × 2π × f.

Since we know the amplitude and frequency of oscillation, we can calculate the velocity of the hydrogen atom as:

v = A × 2π × f = 1.68 × 10−6 m/s.

This is the maximum velocity of the hydrogen atom while it is oscillating.

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You are given a number of 42Ω resistors, each capable of dissipating only 1.3 W without being destroyed. What is the minimum number of such resistors that you need to combine in series or in parallel to make a 42Ω resistance that is capable of dissipating at least 12.2 W ?

Answers

You would need to combine at least 10 of these 42Ω resistors in series or parallel to achieve a total resistance of 42Ω and a power dissipation of at least 12.2W.

To determine the minimum number of 42Ω resistors needed to achieve a resistance of 42Ω and a power dissipation of at least 12.2W, we can calculate the power dissipation of a single resistor and then divide the target power by that value.

Resistance of each resistor, R = 42Ω

Maximum power dissipation per resistor, P_max = 1.3W

Target power dissipation, P_target = 12.2W

First, let's calculate the power dissipation per resistor:

P_per_resistor = P_max = 1.3W

Now, let's determine the minimum number of resistors required:

Number of resistors, N = P_target / P_per_resistor

N = 12.2W / 1.3W ≈ 9.38

Since we can't have a fractional number of resistors, we need to round up to the nearest whole number. Therefore, the minimum number of 42Ω resistors required is 10.

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A rocket is fired from the Earth into space. Newton's third law of motion describes how forces act in pairs. One of the forces of a pair
is the weight of the rocket.
What is the other force of this pair?

Answers

The other force of the pair to the weight of the rocket is the force exerted by the rocket on the Earth.the other force of the pair to the weight of the rocket is the force exerted by the rocket on the Earth, which is equal in magnitude but opposite in direction to the weight of the rocket.

According to Newton's third law of motion, for every action, there is an equal and opposite reaction. When a rocket is fired from Earth into space, the force exerted by the rocket on the Earth is the action, and the force exerted by the Earth on the rocket is the reaction.

The weight of the rocket is the force exerted by the Earth on the rocket. This force is a result of the gravitational attraction between the Earth and the rocket. The weight of an object is the force with which it is pulled towards the center of the Earth due to gravity. In this case, the weight of the rocket is the downward force acting on it.

The other force of this pair is the force exerted by the rocket on the Earth. While it may seem counterintuitive, the rocket actually exerts a force on the Earth, albeit a much smaller one compared to the force exerted on the rocket. This force is a result of Newton's third law of motion, which states that the forces between two objects are equal in magnitude and opposite in direction.

In summary, the other force of the pair to the weight of the rocket is the force exerted by the rocket on the Earth, which is equal in magnitude but opposite in direction to the weight of the rocket.

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A proton moves in a circular path of the same radius as a cosmic ray electron moving at 5.5 x 10 m/s perpendicular to the Earth's magnetic field at an altitude where the field strength is 1.0 x 10³T. What will the speed of the proton be in m/s? What would the radius of the path be in meters if the proton had the same speed as the electron? What would the radius be in meters if the proton had the same kinetic energy as the electron? What would the radius be in meters if the proton had the same momentum as the electron?

Answers

The speed of the proton in meters per second would be approximately 2.75 x 10^6 m/s. To determine the speed of the proton, we can use the equation for the centripetal force experienced by a charged particle moving in a magnetic field.

The centripetal force is given by the equation F = qvB, where F is the force, q is the charge of the particle, v is the velocity of the particle, and B is the magnetic field strength. In this case, the charge of the proton and the electron is the same. Therefore, equating the centripetal force experienced by the proton to the force experienced by the electron, we have q_protonv_protonB = q_electronv_electronB. Rearranging the equation to solve for v_proton, we get v_proton = (v_electronB_electron) / B_proton. Substituting the given values, we have v_proton = (5.5 x 10^6 m/s * 1.0 x 10^-3 T) / (1.0 x 10^-3 T) = 5.5 x 10^6 m/s.

The radius of the path for the proton, if it had the same speed as the electron, would be the same as the radius for the electron. Therefore, the radius would be the same as the radius of the circular path for the electron. If the proton had the same kinetic energy as the electron, we can use the equation for the kinetic energy of a charged particle in a magnetic field, which is given by K.E. = (1/2)mv^2 = qvBd, where m is the mass of the particle, d is the diameter of the circular path, and the other variables have their usual meanings. Rearranging the equation to solve for d, we have d = (mv) / (qB). Since the proton and the electron have the same charge and mass, the radius of the path for the proton would be the same as the radius of the path for the electron.

If the proton had the same momentum as the electron, we can use the equation for the momentum of a charged particle in a magnetic field, which is given by p = mv = qBd, where p is the momentum, m is the mass of the particle, d is the diameter of the circular path, and the other variables have their usual meanings. Rearranging the equation to solve for d, we have d = (mv) / (qB). Since the proton and the electron have the same charge and mass, the radius of the path for the proton would be the same as the radius of the path for the electron.

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A beach comber finds a corked bottle. The air in the bottle is at a pressure of 1 atm and 25C. If the bottle is heated the cork pops out at a temperature of 86C. a.) What is the pressure in the bottle just before the cork is popped. b.) What is the magnitude of the friction force holding the cork in place? (Area of cork =5.2 cm 2 )

Answers

(a)  The pressure in the bottle just before the cork is popped is approximately 1.204 atm.(b) The magnitude of the friction force holding the cork in place is 0.000626 m²·atm.

a) To find the pressure in the bottle just before the cork is popped, we can use the ideal gas law, which states:

PV = nRT,

where P is the pressure, V is the volume, n is the number of moles of gas, R is the ideal gas constant, and T is the temperature.

Since the volume of the bottle remains constant, we can write:

P₁/T₁ = P₂/T₂,

where P₁ and T₁ are the initial pressure and temperature, and P₂ and T₂ are the final pressure and temperature.

P₁ = 1 atm,

T₁ = 25°C = 298 K,

T₂ = 86°C = 359 K.

Substituting the values into the equation, we can solve for P₂:

(1 atm) / (298 K) = P₂ / (359 K).

P₂ = (1 atm) * (359 K) / (298 K) = 1.204 atm.

b) The magnitude of the friction force holding the cork in place can be determined by using the equation:

Friction force = Pressure * Area,

where the pressure is the pressure inside the bottle just before the cork is popped.

Pressure = 1.204 atm,

Area of the cork = 5.2 cm².

Converting the area to square meters:

Area = (5.2 cm²) * (1 m^2 / 10,000 cm²) = 0.00052 m².

Substituting the values into the equation, we can calculate the magnitude of the friction force:

Friction force = (1.204 atm) * (0.00052 m²) = 0.000626 m²·atm.

Please note that to convert the friction force from atm·m² to a standard unit like Newtons (N), you would need to multiply it by the conversion factor of 101325 N/m² per 1 atm.

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5. (-/2 points) DETAILS SERCP11 2.4.P.050. MY NOTES A small mailbag is released from a helicopter that is descending steadily at 1.57 m/s. (a) After 3.00 s, what is the speed of the mailbag? V= m/s (b) How far is it below the helicopter? d = m (c) What are your answers to parts (a) and (b) if the helicopter is rising steadily at 1.57 m/s? m/s d = m Need Help? Read It 6. (-/1.5 Points) DETAILS SERCP11 3.2.P.015. MY NOTES A car is parked on a cliff overlooking the ocean on an incline that makes an angle of 23.09 below the horizontal. The negligent driver leaves the car in neutral, and the emergency brakes are defective. The car rolls from rest down the incline with a constant acceleration of 3.67 m/s2 for a distance of 30.0 m to the edge of the cliff, which is 20.0 m above the ocean. (a) Find the car's position relative to the base of the cliff when the car lands in the ocean. m (b) Find the length of time the car is in the air. Need Help? Read It

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(a) The speed of the mailbag after 3.00 seconds is 4.71 m/s (b) The mailbag is 4.71 meters below the helicopter at this time. (c) If the helicopter is rising steadily at 1.57 m/s, the answers to parts (a) and (b) would be the same

(a) To find the speed of the mailbag after 3.00 seconds when the helicopter is descending steadily at 1.57 m/s, we can simply subtract the descending speed of the helicopter from the mailbag's speed. The descending speed of the mailbag is 1.57 m/s since it is released from a descending helicopter. Thus, the speed of the mailbag after 3.00 seconds is 1.57 m/s + 3.00 s = 4.71 m/s.

(b) The distance below the helicopter after 3.00 seconds can be calculated by multiplying the speed of the mailbag (4.71 m/s) by the time (3.00 seconds). This gives us 4.71 m/s × 3.00 s = 14.13 meters. Therefore, the mailbag is 14.13 meters below the helicopter after 3.00 seconds.

(c) If the helicopter is rising steadily at 1.57 m/s, the answers to parts (a) and (b) remain the same. This is because the speed of the mailbag relative to the helicopter is the same, regardless of whether the helicopter is ascending or descending. The speed of the mailbag after 3.00 seconds would still be 4.71 m/s, and the distance below the helicopter would still be 4.71 meters.

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GP Monochromatic light of wavelength λ is incident on a pair of slits separated by 2.40x10⁻⁴ m and forms an interference pattern on a screen placed 1.80m from the slits. The first-order bright fringe is at a position ybright=4.52mm measured from the center of the central maximum. From this information, we wish to predict where the fringe for n=50 would be located. (e) Find the position of the 50 th-order bright fringe on the screen from Equation 37.5.

Answers

To find the position of the 50th-order bright fringe on the screen, we can use Equation 37.5. This equation relates the fringe position to the wavelength of light, the distance between the slits, and the distance from the slits to the screen.

The equation is Where: yn is the position of the nth-order fringe on the screen n is the order of the fringe (in this case, n = 50) λ is the wavelength of the light L is the distance from the slits to the screen d is the distance between the slits

From the given information, we know that:
λ = the wavelength of the incident light
d = 2.40x10⁻⁴ m
L = 1.80 m
We can substitute these values into the equation to find the position of the 50th-order bright fringe: yn = 50 * λ * 1.80 / 2.40x10⁻⁴ Please provide the value of λ so that I can calculate the exact position of the 50th-order bright fringe.

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The work done by a constant 50 V/m electric field on a +2.0 C
charge over along a displacement of 0.50 m parallel to the electric
field in question is:

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The work done by a constant 50 V/m electric field on a +2.0 C charge over along a displacement of 0.50 m parallel to the electric field is 50 J.

Potential difference (V) = 50 V/mCharge (Q) = +2.0 CDisplacement (d) = 0.50 mWe have to calculate the work done by a constant 50 V/m electric field on a +2.0 C charge over a displacement of 0.50 m parallel to the electric field.Let's start with the formula that is used to find the work done by the electric field.Work Done (W) = Potential difference (V) * Charge (Q) * Displacement (d)W = V * Q * dPutting the values in the above formula, we get;W = 50 V/m × +2.0 C × 0.50 m= 50 × 2.0 × 0.50 J= 50 J. Hence, the work done by a constant 50 V/m electric field on a +2.0 C charge over along a displacement of 0.50 m parallel to the electric field is 50 J.

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please help!
An uncharged 10-µF capacitor is being charged in series with a 720-22 resistor across a 100-V battery. From the given equation, at the end of one time constant: q = % (1 - e-t/RC) the charge on the c

Answers

At the end of one time constant, the charge on the capacitor is approximately 6.32 µC. This can be calculated using the equation q = C (1 - e^(-t/RC)), where C is the capacitance and RC is the time constant.

To find the charge on the capacitor at the end of one time constant, we can use the equation q = C (1 - e^(-t/RC)), where q is the charge, C is the capacitance, t is the time, R is the resistance, and RC is the time constant. In this case, the capacitance is given as 10 µF and the time constant can be calculated as RC = 720 Ω * 10 µF = 7200 µs.

At the end of one time constant, the time is equal to the time constant, which means t/RC = 1. Substituting these values into the equation, we get q = 10 µF (1 - e^(-1)) ≈ 6.32 µC. Therefore, the charge on the capacitor is approximately 6.32 µC at the end of one time constant.

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The positron is the antiparticle to the electron. It has the same mass and a positive electric charge of the same magnitude as that of the electron. Positronium is a hydrogenlike atom consisting of a positron and an electron revolving around each other. Using the Bohr model, find (a) the allowed distances between the two particles.

Answers

The allowed distances between the two particles in positronium can be determined using the Bohr model by calculating the distance using the formula r = n² * (0.529 Å) / Z, where n is the principal quantum number and Z is the atomic number,

In the Bohr model, the allowed distances between the two particles in positronium can be determined using the principles of quantum mechanics. The Bohr model states that the electron and positron orbit each other in circular paths with certain allowed distances, known as orbits or energy levels. The distance between the particles is given by the formula:
r = n² * (0.529 Å) / Z

Where r is the distance between the particles, n is the principal quantum number, and Z is the atomic number. In the case of positronium, Z is 1, as it is hydrogen-like

For example, if we take n = 1, the distance between the particles would be:
r = 1² * (0.529 Å) / 1 = 0.529 Å
Similarly, for n = 2, the distance would be:
r = 2² * (0.529 Å) / 1 = 2.116 Å

So, the allowed distances between the two particles in positronium, according to the Bohr model, depend on the principal quantum number n. As n increases, the distance between the particles increases as well.

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4. Find the work done by the force component along the displacement in the interval from 0 to 1.0 m and 2.0 to 4.0 m.

Answers

The work done by the force component along the displacement in the interval from 0 to 1.0 m is positive, and in the interval from 2.0 to 4.0 m, it is zero.

Work is defined as the product of the component of a force in the direction of displacement and the magnitude of displacement. If the force and displacement are in the same direction, the work is positive. If they are perpendicular or in opposite directions, the work is zero or negative, respectively.

In the given intervals, we have two scenarios:

Interval from 0 to 1.0 m: The work done by the force component along the displacement is positive. This implies that the force and displacement are in the same direction, resulting in positive work.

Interval from 2.0 to 4.0 m: The work done by the force component along the displacement is zero. This indicates that either the force is perpendicular to the displacement or there is no force acting in that interval. In both cases, the work done is zero.

Therefore, in the interval from 0 to 1.0 m, the work done is positive, and in the interval from 2.0 to 4.0 m, the work done is zero.


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For each of the three sheets of polarizing material shown in the drawing, the orientation of the transmission axis is labeled relative to the vertical. The incident beam of light is unpolarized and has an intensity of 1420 W/m2. What is the intensity of the beam transmitted through the three sheets when θ1​= 17.3∘,θ2​=53.6∘, and θ3​=101∘? Number Units

Answers

The intensity I₃ = I₂ * cos²101° of the beam transmitted through the three sheets of polarizing material with given transmission axis orientations and incident angle values can be calculated by applying Malus' law.

According to Malus' law, the intensity of light transmitted through a polarizing material is given by the equation:

I = I₀ * cos²θ

where I is the transmitted intensity, I₀ is the incident intensity, and θ is the angle between the transmission axis of the polarizer and the polarization direction of the incident light.

For the first sheet, with θ₁ = 17.3°, the transmitted intensity can be calculated as:

I₁ = 1420 * cos²17.3°

For the second sheet, with θ₂ = 53.6°, the transmitted intensity is:

I₂ = I₁ * cos²53.6°

Finally, for the third sheet, with θ₃ = 101°, the transmitted intensity is:

I₃ = I₂ * cos²101°

By substituting the given values into the equations and performing the calculations, the final intensity of the beam transmitted through the three sheets can be determined.

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