The volume of that gas in the 100 degrees temperature will be 100 cubic feet. The condition of the area is isobar or the same pressure. Hence, you have to formulate the solution based on isobars formula.
How to calculate the volume for that condition?As per data given, previous volume (V1) = 20 cubic feet; previous temperature (t1) = 50 degrees; current temperature(t2) = 100 degrees. the condition of the area is in the constant pressure or isobars. The formula we will use in the isobar is V1 : V2 = t1 : t2. So, the calculation would be:
V1 : V2 = t1 : t2
20 : V2 = 20 : 100
20 V2 = 20 x 100
V2 = 100 cubic feet
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QUESTION 9 The Falkirk Wheel makes ingenious use of a. Fermat's Principle b. Pascal's Principle c. Bernoulli's Principle d. The Principle of Parsimony e. Archimedes' Principle QUESTION 10 The approximate mass of air in a Boba straw of cross sectional area 1 cm2 that extends from sea level to the top of the atmosphere is a 1000 kg 6.0.1 kg c. 10 kg d. 1 kg e. 100 kg
Answer to Question 9: The Falkirk Wheel makes ingenious use of Archimedes' Principle.
Answer to Question 10: The approximate mass of air in a Boba straw of cross-sectional area 1 cm2 that extends from sea level to the top of the atmosphere is 10 kg.
The mass of the air in the straw can be calculated by first finding the height of the atmosphere. The atmosphere is approximately 100 km in height. The density of air at sea level is 1.2 kg/m3, and it decreases exponentially with height. Integrating the density over the height of the straw gives the mass of air, which is approximately 10 kg. This calculation assumes that the temperature and pressure are constant along the height of the straw, which is not entirely accurate but provides a rough estimate.
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Suppose you take and hold a deep breath on a chilly day, inhaling 3.0 L of air at 0°C and 1 atm. a. How much heat must your body supply to warm the air to your internal body temperature of 37°C? b. By how much does the air’s volume increase as it warms?
a. The amount of heat is 0.103J
b. The volume is 0.408L
Your body must supply 0.103J of specific heat to warm the 3.0 L of air from 0°C to 37°C. The volume of the air increases by 0.408 L as it warms up.
To calculate the amount of heat required to warm the air, we can use the formula Q = m × c × ΔT, where Q is the heat, m is the mass of the air, c is the specific heat capacity of air, and ΔT is the change in temperature.
First, we need to calculate the mass of the air using the ideal gas law: PV = nRT
where P is the pressure (1 atm), V is the volume (3.0 L), n is the number of moles of air, R is the ideal gas constant, and T is the temperature in Kelvin.
To calculate the heat needed to warm the air, use the formula Q = mcΔT, where Q is heat, m is mass, c is the specific heat capacity of air, and ΔT is the temperature change. First, find the mass of the air using the ideal gas law (PV = nRT). Then, use the mass and temperature change (37°C - 0°C = 37°C) to calculate the heat required. To find the volume increase, use Charles' Law (V1/T1 = V2/T2), where V1 and T1 are the initial volume and temperature, and V2 and T2 are the final volume and temperature. Convert temperatures to Kelvin (273K for 0°C and 310K for 37°C), and solve for V2. The difference between V2 and V1 gives the volume increase.
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An arroyo is a steep-sided, linear trough produced by ________.
A. normal faulting or other extensional processes
B. wind erosion of more susceptible layers
C. scouring erosion by water and sediment during flash floods
D. cliff retreat
An arroyo is a steep-sided, linear trough produced by scouring erosion by water and sediment during flash floods.
Arroyos are common in arid and semi-arid regions where flash floods are frequent. The steep sides of the trough are usually composed of unconsolidated sediment, such as sand and gravel, which can be easily eroded by fast-moving water and sediment. The flash floods occur when intense rain falls on a relatively impermeable surface, causing water to rapidly accumulate and flow across the landscape.
As the water and sediment flow through the arroyo, they continuously erode and transport sediment downstream. Over time, the repeated erosion by flash floods deepens and widens the arroyo, creating a linear trough. Arroyos can pose a hazard to humans and infrastructure during flash floods and are important features to consider in land-use planning and management in arid regions.
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convert the average p-wave speed you found in part b (480 km/min) from km/min to km/sec.
The average P-wave speed in km/sec is 8 km/sec.
To convert the average P-wave speed from km/min to km/sec, you'll need to divide the speed by the number of seconds in a minute.
This conversion allows us to express the speed in a different unit of time, from minutes to seconds. It is important to consider the appropriate units when performing conversions to ensure accurate and meaningful results.
In this case, the average P-wave speed of 8 km/sec provides a measure of how far the P-wave travels in one second. It represents the velocity at which the P-wave propagates through a medium, such as the Earth's crust during an earthquake.
There are 60 seconds in a minute, so:
Average P-wave speed in km/min = 480 km/min
Conversion factor = 1 min / 60 sec
To convert to km/sec, simply divide the speed by the conversion factor:
480 km/min × (1 min / 60 sec) = 480/60 km/sec = 8 km/sec
So, the average P-wave speed in km/sec is 8 km/sec.
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A low-pass filter consists of a 116 μf capacitor in series with a 159 resistor. the circuit is driven by an ac source with a peak voltage of 4.40 v
What is VC when f=12fc?
What is VC when f=fc?
What is VC when f=2fc?
VC = 0.707Vpeak when f = 12fc, VC = 0.5Vpeak when f = fc, and VC = 0.293Vpeak when f = 2fc.
The impedance of a capacitor (ZC) in an AC circuit is given by ZC = 1/(jwC), where j is the imaginary unit, w is the angular frequency, and C is the capacitance. The impedance of a resistor (ZR) is given by ZR = R. The total impedance of a series RC circuit is Z = ZR + ZC = R + 1/(jwC). The voltage across the capacitor (VC) is given by VC = Vpeak × ZC/(ZC + ZR) = Vpeak/(1 + jwRC), where Vpeak is the peak voltage of the AC source.
When f = 12fc, w = 24pi, and
VC = Vpeak/√(1 + (24pi159116e-6)²) = 0.707Vpeak.
When f = fc, w = 2pi, and
VC = Vpeak/√(1 + (2pi159116e-6)²) = 0.5Vpeak.
When f = 2fc, w = 4pi, and
VC = Vpeak/√(1 + (4pi159116e-6)²) = 0.293Vpeak.
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The circuit you are describing is a simple RC series circuit, which acts as a low-pass filter. The voltage across the capacitor, VC, is given by the following equation:
VC = Vpeak / √(1 + (2πfRC)^2)
where V peak is the peak voltage of the AC source, f is the frequency of the AC source, R is the resistance of the resistor, and C is the capacitance of the capacitor.
For this circuit, we have C = 116 μF and R = 159 Ω.
Part A: When f = 12fc
Here, fc is the cutoff frequency of the filter, which is given by:
fc = 1 / (2πRC)
Substituting the given values, we get:
fc = 1 / (2π x 159 Ω x 116 μF) ≈ 91 Hz
Therefore, 12fc = 1,092 Hz.
Substituting these values into the equation for VC, we get:
VC = 4.40 V / √(1 + (2π x 1,092 Hz x 159 Ω x 116 μF)^2) ≈ 0.163 V
Thus, when the frequency is 12 times the cutoff frequency, VC is approximately 0.163 V.
Part B: When f = fc
Substituting fc = 91 Hz into the equation for VC, we get:
VC = 4.40 V / √(1 + (2π x 91 Hz x 159 Ω x 116 μF)^2) ≈ 0.689 V
Thus, when the frequency is equal to the cutoff frequency, VC is approximately 0.689 V.
Part C: When f = 2fc
Substituting 2fc = 182 Hz into the equation for VC, we get:
VC = 4.40 V / √(1 + (2π x 182 Hz x 159 Ω x 116 μF)^2) ≈ 1.15 V
Thus, when the frequency is twice the cutoff frequency, VC is approximately 1.15 V.
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A student bikes to school by traveling first dN = 0.900 miles north, then dW = 0.300 miles west, and finally dS = 0.200 miles south. Take the north direction as the positive y-direction and east as positive x. The origin is still where the student starts biking. Let d⃗ N be the displacement vector corresponding to the first leg of the student's trip. Express d⃗ N in component form. (dN)x, (dN)y= I have already tried -0.3, 0.7 which is incorrect:(
The component form of the displacement vector d⃗ N is (0, 0.9). The x-component is 0, indicating no displacement in the east-west direction (since the student is traveling north).
The y-component is 0.9, representing the displacement of 0.9 miles in the north direction. In the given problem, the student travels 0.9 miles north, 0.3 miles west, and 0.2 miles south. Since the displacement vector d⃗ N corresponds to the northward direction, its x-component would be 0 (no displacement in the east-west direction). The y-component represents the displacement in the north-south direction, which is 0.9 miles. Therefore, the component form of d⃗ N is (0, 0.9).
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A spherical bulb 10 cm in radius is maintained at room temperature (300 K) except for one square centimeter which is kept at liquid nitrogen temperature (77 K). The bulb contains water vapor originally at a pressure of 0.1 mmHg. Assuming that every water molecule striking the cold area condenses and sticks to the surface, estimate the time required for the pressure to decrease to 10^-4 mmHg. [Assume that the gas remains in equilibrium at 300 K, but keeps losing molecules because of the " effusion" of molecules that hit the 1 cm^2 cold patch.]
The time required for the pressure to decrease to 10⁻⁴ mmHg is approximately 0.7 x 10⁵ s.
The rate at which water vapor molecules hit the cold patch and condense can be calculated using the kinetic theory of gases.
The number of water vapor molecules per unit volume in the bulb can be approximated by the ideal gas law:
PV = nRT
where,
P = pressure,
V = volume,
n = number of molecules,
R = gas constant, and
T = temperature.
Solving for n/V, we get:
n/V = P/RT
Given, P = 0.1 mmHg = 0.1/760 atm
T = 300 K
Therefore, number of water vapor molecules per unit volume is:
n/V = (0.1/760 atm) / [(8.31 J/mol K) (300 K)]
= 5.28 × 10⁻⁸ mol/m³
= 5.28 × 10⁻⁸ * (6.02 x 10²³ molecules/mol)
= 3.18 ×10¹⁶ molecules/m³
The rate at which water vapor molecules effuse through the cold patch can be approximated using Graham's law of effusion:
[tex]\frac{r_{1}}{r_{2}} =\sqrt{\frac{M_{2} }{M_{1} } }[/tex]
where rate1 and rate2 are the rates at which two gases effuse through a small hole, and M1 and M2 are their molecular masses.
In given condition,
we can treat the water vapor molecules as effusing through the cold patch into a vacuum,
∴ rate = A* (1/4) * (n/V) * √(8kT/πm)
where, A is the area of the cold patch, k is the Boltzmann constant, T is the temperature, and m is the mass of a water molecule.
Substituting the values, we get:
rate = 1 × 10⁻⁴ * (1/4) * (3.18×10¹⁶) * √[(8 * 1.38x10⁻²³ * 300) / (π * 3.01x10⁻²⁶)]
= 1 × 10⁻⁴ * (1/4) * (3.18×10¹⁶) * 0.59
= 4.69 x 10¹³ molecules/s
This is the rate at which water vapor molecules are removed from the bulb. The time required for the pressure to decrease to 10^-4 mmHg can be approximated by assuming that the pressure decreases exponentially with time:
P(t) = P₀ exp(-kt)
where P₀ is the initial pressure, k is a constant, and t is the time.
The constant k can be calculated from the rate:
k = rate / N
where N is the number of water molecules per unit volume.
Substituting the values, we get:
k = 4.69 x 10¹³ molecules/s / 3.18 ×10¹⁶ molecules/m³
k = 1.47x 10⁻³ s⁻¹
The time required for the pressure to decrease to 10⁻⁴ mmHg can then be calculated:
10⁻⁴ mmHg = 0.1 mmHg exp(-1.47x 10⁻³ * t)
∴ t = 0.7 x 10⁵ s
Therefore, the time required for the pressure to decrease to 10⁻⁴ mmHg is approximately 0.7 x 10⁵ s.
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The conducting path between the right hand and the left hand can be modeled as a 12 cm-diameter, 180cm-long cylinder. The average resistivity of the interior of the human body is 4.7(Omega*m) . Dry skin has a much higher resistivity, but skin resistance can be made negligible by soaking the hands in salt water. If skin resistance is neglected, what potential difference between the hands is needed for a lethal shock of 100 mA across the chest? Your result shows that even small potential differences can produce dangerous currents when the skin is wet.
To calculate the potential difference needed for a lethal shock of 100 mA across the chest, we can use Ohm's law, which states that V = IR, where V is the potential difference, I is the current, and R is the resistance.
First, we need to find the resistance of the conducting path between the hands. We can use the formula for the resistance of a cylinder, which is R = (ρL) / A, where ρ is the resistivity, L is the length, and A is the cross-sectional area.
Using the given values, we get:
R = (4.7 Ω*m * 1.8 m) / [(π/4) * (0.12 m)^2]
R = 3.1 Ω
This is the resistance of the conducting path between the hands, assuming skin resistance is negligible.
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an object is located a distance of d0 = 15 cm in front of a concave mirror whose focal length is f = 11 cm.
Write an expression for the image distance di
The mirror formula is 1/f = 1/d0 + 1/di. Plug in f = 11 cm and d0 = 15 cm to find the image distance, di.
The mirror formula is a relationship between the focal length (f), the object distance (d0), and the image distance (di) in a concave mirror.
It is given by the formula:
1/f = 1/d0 + 1/di
In this problem, the object is located at a distance d0 = 15 cm in front of a concave mirror with a focal length of f = 11 cm.
To find the image distance (di), plug in these values into the mirror formula:
1/11 = 1/15 + 1/di
Now, you need to solve for di. With some algebraic manipulation, you'll find the value of di for this particular problem.
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The mirror formula is 1/f = 1/d0 + 1/di. Plug in f = 11 cm and d0 = 15 cm to find the image distance, di.
The mirror formula is a relationship between the focal length (f), the object distance (d0), and the image distance (di) in a concave mirror.
It is given by the formula:
1/f = 1/d0 + 1/di
In this problem, the object is located at a distance d0 = 15 cm in front of a concave mirror with a focal length of f = 11 cm.
To find the image distance (di), plug in these values into the mirror formula:
1/11 = 1/15 + 1/di
Now, you need to solve for di. With some algebraic manipulation, you'll find the value of di for this particular problem.
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electromagnetic write up of the brave little toaster movie
"The Brave Little Toaster" is an animated movie featuring five household appliances on a journey to find their owner, highlighting the power and importance of electromagnetics as they use electricity and electromagnetic fields to function and communicate with each other.
Electromagnetics is the study of the behavior and interaction of electric and magnetic fields. It includes the study of electromagnetic waves, which are waves of energy that are created by the oscillation of electric and magnetic fields. Electromagnetic waves can travel through empty space and are responsible for many phenomena, such as light, radio waves, microwaves, X-rays, and gamma rays. Electromagnetics is an important field of study in physics and engineering, with applications in many areas, including telecommunications, electronics, medical imaging, and energy production.
"The Brave Little Toaster" is an animated movie that features five household appliances on a journey to find their owner. The appliances include a toaster, a vacuum cleaner, a lamp, a radio, and an electric blanket. Throughout their adventure, they face various challenges and dangers, including a terrifying junkyard and a crushing machine. The movie highlights the power and importance of electromagnetics, as the appliances use electricity and electromagnetic fields to function and communicate with each other.
Therefore, Five household gadgets travel to locate their owner in the animated film "The Brave Little Toaster," which emphasises the relevance and power of electromagnetics because the equipment depend on electricity and electromagnetic fields to function.
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find the area of the region in the first quadrant bounded by the line yx, the line x, the curve y , and the x-axis.
To find the area of the region in the first quadrant bounded by the given lines and curve, we need to evaluate a definite integral.
To find the area of the region in the first quadrant bounded by the line y=x, the line x=1, the curve y=1/x, and the x-axis, we can use the definite integral. First, we need to find the intersection point(s) of the curves. Setting y=x and y=1/x equal to each other, we get x=1. Therefore, the region of interest is between x=0 and x=1.
Next, we need to determine which curve is on top in this region. The curve y=1/x is on top since it is decreasing as x increases.
The definite integral for the area is then ∫[0,1] (1/x - x) dx. Integrating, we get the area is ln(1) - (1/2), or -1/2 ln(1) - 1/2.
Therefore, the area of the region in the first quadrant bounded by the line y=x, the line x=1, the curve y=1/x, and the x-axis is approximately 0.3069 square units.
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A thin film of alcohol (n = 1.36) lies on a flat glass plate (n = 1.51). Light whose wavelength can be changed is incident normally on the alcohol. The reflected light is a minimum for λ
=
512
n
m
and a maximum for λ
=
640
n
m
. What is the minimum thickness of the film?
The maximum thickness of the film is 213.5 nm.
When light is incident on a thin film of alcohol, it gets partially reflected from the upper surface of the film and partially transmitted through the film and reflected from the lower surface of the film. The reflected light waves interfere with each other and produce either constructive or destructive interference depending on the thickness of the film and the wavelength of light.
In this case, we are given that the minimum reflected light occurs at a wavelength of 512 nm and the maximum reflected light occurs at a wavelength of 640 nm. This means that the difference in the path length of the two reflected waves is half the wavelength difference between them, i.e., λ/2.
We can use the formula for the optical path difference, which is given by 2t(n2-n1)/λ, where t is the thickness of the film, n2 is the refractive index of the film (alcohol), n1 is the refractive index of the medium surrounding the film (air in this case), and λ is the wavelength of light.
At the minimum reflected light, the path difference is λ/2. So we have:
2t(n2-n1)/λ = λ/2
Substituting the given values, we get:
2t(1.36-1.00)/512 = 512/2
Simplifying this equation, we get:
t = 89.5 nm
So the minimum thickness of the film is 89.5 nm.
At the maximum reflected light, the path difference is λ. So we have:
2t(n2-n1)/λ = λ
Substituting the given values, we get:
2t(1.36-1.00)/640 = 640
Simplifying this equation, we get:
t = 213.5 nm
So the maximum thickness of the film is 213.5 nm.
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determine the rms value of the fundamental component of the line-line voltage.
The rms value of the fundamental component of the line-line voltage is 220V.
The rms value of the fundamental component of the line-line voltage can be calculated using the formula:
Vrms = Vpeak / √2
where Vpeak is the peak voltage of the fundamental component.
To find the peak voltage of the fundamental component, we need to know the voltage waveform. If the waveform is a sinusoidal voltage, the peak voltage can be found by multiplying the peak value of the sinusoidal voltage by √2.
For example, if the peak voltage of the sinusoidal voltage is 220V, then the peak voltage of the fundamental component would be:
Vpeak = 220V x √2 = 311.13V
Substituting this value into the formula for Vrms, we get:
Vrms = 311.13V / √2 = 220V
Therefore, the rms value of the fundamental component of the line-line voltage is 220V.
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If james shouts across a canyon and hears an echo 4.2 seconds later, how far away is
the wall of the canyon? (the speed of sound in air is 340 m/s)
714 m
1428 m
340 m
80.9 m
Based on the given information, James hears an echo 4.2 seconds after shouting across a canyon. The wall of the canyon is approximately 714 meters away from James.
To determine the distance of the wall of the canyon, we need to consider the time it takes for James to hear the echo. We can use the speed of sound in air, which is given as 340 m/s. Since James hears the echo 4.2 seconds later, we can multiply the time by the speed of sound to find the total distance travelled by the sound wave. Using the formula distance = speed * time, we have 340 m/s * 4.2 s = 1428 meters.
However, this distance represents the total distance travelled by the sound wave, which includes both the distance from James to the wall and the distance from the wall back to James. Therefore, we need to divide this total distance by 2 to get the actual distance from James to the wall of the canyon. Thus, the wall of the canyon is approximately 714 meters away from James.
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023-kg satellite orbits the Earth at a constant altitude of 92-km. a. How much energy must be added to the system to move the satellite into a circular orbit with altitude 210 km? b. What is the change in the system's kinetic energy? c. What is the change in the system's potential energy?
We need to add 1.63 × 10^8 J of energy to the system to move the satellite into a circular orbit with altitude 210 km. The change in kinetic energy is ΔK = 1.63 × 10^8 J. The change in potential energy is -1.63 × 10^8 J.
To move the satellite into a circular orbit with an altitude of 210 km, we need to add energy equal to the difference in potential energy between the initial and final orbits.
The potential energy of a satellite in orbit is given by U = -GMm/r, where G is the gravitational constant, M is the mass of the Earth, m is the mass of the satellite, and r is the distance between the centers of mass of the Earth and the satellite.
Since the mass of the satellite remains constant, the change in potential energy is equal to ΔU = U_final - U_initial = -GMm(1/r_final - 1/r_initial). Plugging in the given values, we get: ΔU = - (6.674 × 10^-11 Nm²/kg²) (5.98 × 10^24 kg) (0.023 kg) [1/(6,711,000 m) - 1/(6,982,000 m)] . ΔU = 1.63 × 10^8 J.
The change in kinetic energy of the satellite is equal to the work done on it, which is the same as the energy we added to the system in part (a).
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A logical and probable explanation for the movement of the Earth’s tectonic plates is:
Group of answer choices
a. the breakup of the plates by volcanic eruptions and earthquakes
b. the rapid shrinking of Earth's crust as it slowly cools
c. the result of heat convection in the plastic mantle rock which moves the cold brittle crust on top
d. the rotation of the Earth causes the plates to drag across the top of the mantle
The logical and probable explanation for the movement of the Earth's tectonic plates is the convection currents within the mantle. The Earth's mantle is made up of hot, molten rock that constantly moves due to the heat generated by the radioactive decay of elements within the Earth's core.
This movement of the mantle creates convection currents that carry the tectonic plates along with them.
As the hot, less dense rock rises within the mantle, it pushes against the bottom of the tectonic plates, causing them to move away from each other. At the same time, cooler, denser rock sinks back down into the mantle, causing the tectonic plates to move towards each other.
This movement of the tectonic plates can cause a variety of geological phenomena such as earthquakes, volcanic eruptions, and the formation of mountains and ocean trenches. It is a slow but continuous process that has been ongoing for millions of years and will continue to shape the Earth's surface in the future.
In summary, the convection currents within the Earth's mantle are the most likely explanation for the movement of the tectonic plates. While other factors such as the rotation of the Earth may play a minor role, the convection currents are the driving force behind the movement of the tectonic plates.
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The most accepted and widely supported explanation for the movement of the Earth's tectonic plates is option c: the result of heat convection in the plastic mantle rock which moves the cold brittle crust on top.
The Earth's mantle is composed of solid rock that can flow over long periods of time, and it is heated from below by the Earth's core. As the mantle heats up, it becomes less dense and rises towards the surface. This creates convection currents that move the molten rock in a circular motion, carrying the tectonic plates with them.
The movement of the tectonic plates is also influenced by the forces of gravity, as denser rock sinks and lighter rock rises. This process is known as "ridge push" and "slab pull," respectively. Ridge push occurs at mid-ocean ridges, where new crust is formed as magma rises to the surface, pushing the plates apart. Slab pull occurs at subduction zones, where old oceanic crust is pushed back into the mantle, dragging the rest of the plate along with it.
Option A (the breakup of the plates by volcanic eruptions and earthquakes) and option d (the rotation of the Earth causes the plates to drag across the top of the mantle) are not considered to be the primary drivers of plate tectonics, although they can contribute to it in certain circumstances. Option b (the rapid shrinking of Earth's crust as it slowly cools) is not a valid explanation for plate tectonics, as the Earth's crust is not shrinking rapidly enough to cause the observed movements of the plates.
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A −6.10−6.10-DD lens is held 10.5cm10.5cm from an ant 1.00mm1.00mm high
Find the image distance. Follow the sign conventions.
What is the height of the image? Follow the sign conventions.
The image distance is 15.3 cm. The height of the image is -0.15 mm.
Using the lens formula, 1/f = 1/v - 1/u, where f is the focal length, v is the image distance, and u is the object distance, we can solve for v. Since the lens is concave (negative focal length), f = -6.10 cm. The object distance, u, is 10.5 cm. Plugging in these values, we get 1/-6.10 = 1/v - 1/10.5. Solving for v gives v = 15.3 cm, indicating the image is formed on the same side as the object, which means it is a virtual image.
To find the height of the image, we can use the magnification formula, M = -v/u, where M is the magnification. Plugging in the values, we get M = -15.3/10.5 = -1.46. The negative sign indicates an inverted image. The height of the object is 1.00 mm. Multiplying the object height by the magnification gives the image height: -1.46 * 1.00 mm = -1.46 mm, or -0.15 mm to two significant figures.
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if a seyfert galaxy’s nucleus varies in brightness on the timescale of 10hours, then approximately what is the size of the emitting region?
If a Seyfert galaxy’s nucleus varies in brightness on the timescale of 10 hours, then the size of the emitting region is Approximate size ≤ 1.08 x 10^13 meters.
To determine the size of the emitting region in a Seyfert galaxy's nucleus that varies in brightness on a timescale of 10 hours, you can use the light travel time argument.
Step 1: Convert the timescale into seconds.
10 hours = 10 * 60 * 60 = 36,000 seconds
Step 2: Calculate the distance light travels in this timescale.
The speed of light is approximately 3 x 10^8 meters per second. So, the distance light travels in 36,000 seconds is:
Distance = (3 x 10^8 m/s) * 36,000 s = 1.08 x 10^13 meters
Step 3: Determine the size of the emitting region.
Since the brightness variations occur on a timescale of 10 hours, the size of the emitting region must be less than or equal to the distance light can travel in this time. Therefore, the approximate size of the emitting region in the Seyfert galaxy's nucleus is:
Approximate size ≤ 1.08 x 10^13 meters.
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Select the correct answer. Which of the following is not a result or consequence of rising average air temperatures on Earth? A. Glaciers and ice sheets melt. B. Sea levels rise. C. Evaporation increases. D. Salinity increases.
The correct option which is not a result or consequence of rising average air temperatures on Earth is (D) Salinity increases.
Salinity does not increase as a result of increasing air temperature. Salinity is the amount of salt in water. The amount of salt in water can increase due to evaporation and water loss, which leaves salt behind, or the addition of salt from land sources such as runoff. The consequence of rising average air temperature on Earth includes; Glaciers and ice sheets melt which causes sea levels to rise: With increased temperatures, ice on land is melting and flowing into the oceans, raising sea levels. This can lead to coastal flooding, beach erosion, and the displacement of communities living near coastlines. Evaporation increases which leads to changes in precipitation patterns: The increase in temperature leads to an increase in evaporation. The amount of water vapor in the air increases, which can lead to more intense precipitation in some areas and droughts in others. In summary, as the average air temperature continues to rise, the Earth's climate will continue to change, leading to various consequences such as melting of glaciers and ice sheets, increase in sea level, and changes in precipitation patterns. Salinity, however, is not affected by rising average air temperatures on Earth.
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If it is impossible to raise the landing gear of a jet airplane, to obtain best range, the airspeed must be _____ from that for the clean configuration
a) increased
b) decreased
c) not change
a) increased. When the landing gear is down, it creates additional drag on the aircraft, which reduces its efficiency and range.
To compensate for this, the airspeed must be increased from that of the clean configuration (with the landing gear up) in order to achieve the best possible range.
If it is impossible to raise the landing gear of a jet airplane, to obtain the best range, the airspeed must be a) increased from that for the clean configuration. This is because the landing gear increases drag, so a higher airspeed is needed to overcome the additional drag and maintain optimal range.
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what constant acceleration (in ft/s2) is required to increase the speed of a car from 21 mi/h to 54 mi/h in 5 seconds? (round your answer to two decimal places.)
A constant acceleration of 9.68 [tex]ft/s^{2}[/tex] is required to increase the speed of the car from 21 mi/h to 54 mi/h in 5 seconds.
First, we need to convert the speeds from miles per hour to feet per second, since acceleration is usually given in feet per second squared.
21 mi/h = 30.8 ft/s, 54 mi/h = 79.2 ft/s
Next, we can use the following kinematic equation to find the acceleration: v = u + at, where v is the final velocity, u is the initial velocity, a is the acceleration, and t is the time interval.
Plugging in the values we have: 79.2 = 30.8 + a(5)
Subtracting 30.8 from both sides gives: 48.4 = 5a
Dividing both sides by 5 gives: a = 9.68 [tex]ft/s^{2}[/tex]
Therefore, a constant acceleration of 9.68 [tex]ft/s^{2}[/tex] is required to increase the speed of the car from 21 mi/h to 54 mi/h in 5 seconds.
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1. Carefully find the threshold wavelength for sodium. What is the wavelength of the lowest energy light at which electrons are emitted?
Threshold wavelength =
Threshold wavelength for sodium is approximately 330 nm.
The threshold wavelength for sodium can be calculated using the following formula:
λth = hc/Φ
where λth is the threshold wavelength, h is Planck's constant, c is the speed of light, and Φ is the work function of sodium.
The work function of sodium is approximately 2.28 eV.
Converting electron volts (eV) to joules (J), we get:
Φ = 2.28 eV * 1.602 x 10⁻¹⁹ J/eV
Φ = 3.659 x 10⁻¹⁹ J
Plugging in the values of h, c, and Φ, we get:
λth = hc/Φ
λth = (6.626 x 10⁻³⁴ J s)(3.00 x 10⁸ m/s)/(3.659 x 10⁻¹⁹ J)
λth = 5.117 x 10⁻⁷ m
λth = 511.7 nm
Therefore, the threshold wavelength for sodium is approximately 511.7 nm.
The wavelength of the lowest energy light at which electrons are emitted can be found using the equation:
λ = hc/E
where λ is the wavelength, h is Planck's constant, c is the speed of light, and E is the energy of the light.
The lowest energy light corresponds to the work function of sodium, which is 2.28 eV.
Converting the energy to joules, we get:
E = 2.28 eV * 1.602 x 10⁻¹⁹ J/eV
E = 3.659 x 10⁻¹⁹ J
Plugging in the values of h, c, and E, we get:
λ = hc/E
λ = (6.626 x 10⁻³⁴ J s)(3.00 x 10⁸ m/s)/(3.659 x 10⁻¹⁹ J)
λ = 5.117 x 10⁻⁷ m
λ = 511.7 nm
Therefore, the wavelength of the lowest energy light at which electrons are emitted is approximately 511.7 nm, which is the same as the threshold wavelength for sodium.
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A string is 50.0cm long and has a mass of 3.00g. A wave travels at 5.00m/s along this string. A second string has the same length, but half the mass of the first. If the two strings are under the same tension, what is the speed of a wave along the second string?
The speed of a wave along the second string is given by the expression √[(2 ˣ T) / μ1], where T is the tension in the strings and μ1 is the linear mass density of the first string.
What is the speed of a wave along the second string if it has the same length but half the mass of the first string, and both strings are under the same tension?To find the speed of a wave along the second string, we can use the equation v = √(T/μ), where v is the wave speed, T is the tension in the string, and μ is the linear mass density of the string.
Given that the first string has a length of 50.0 cm and a mass of 3.00 g, we can calculate its linear mass density:
μ1 = mass/length = 3.00 g / 50.0 cmNow, since the second string has half the mass of the first but the same length, its linear mass density will be:
μ2 = (1/2) ˣ μ1Since both strings are under the same tension, we can assume the tension is constant, denoted as T.
Now, let's calculate the wave speed along the second string:
v2 = √(T/μ2)Substituting the expression for μ2:v2 = √(T / [(1/2) ˣ μ1])Simplifying further:v2 = √[(2 * T) / μ1]Therefore, the speed of a wave along the second string is given by √[(2 ˣ T) / μ1], where T is the tension in the strings and μ1 is the linear mass density of the first string.
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A technician working at a nuclear reactor facility is exposed to a slow neutron radiation and receives a dose of 1.33rad.
Part A How much energy is absorbed by 300g of the worker's tissue?
Part B Was the maximum permissible radiation dosage exceeded?
The worker's tissue absorbed 0.003753 Joules of energy from the slow neutron radiation. and Since 6.65 rem exceeds the maximum permissible dose of 5 rem per year, the radiation dosage was exceeded.
To calculate the energy absorbed by the worker's tissue, we need to use the given dose (1.33 rad) and the mass of the tissue (300 g). The equation for this is:
Energy (E) = Dose (D) × Mass (m) × Absorbed Dose Coefficient (c)
The absorbed dose coefficient for slow neutron radiation is 0.0094 J/kg per rad. First, convert the mass from grams to kilograms:
m = 300 g × (1 kg / 1000 g) = 0.3 kg
Now, plug in the values into the equation:
E = 1.33 rad × 0.3 kg × 0.0094 J/kg per rad = 0.003753 J
The worker's tissue absorbed 0.003753 Joules of energy from the slow neutron radiation.
The maximum permissible radiation dosage for a worker depends on the type of radiation. For slow neutrons, the maximum permissible dose is 5 rem per year. To determine if this dose has been exceeded, we need to convert the given dose (1.33 rad) to rem using the quality factor (QF) for slow neutrons:
Dose in rem = Dose in rad × QF
For slow neutrons, the quality factor is 5. Therefore,
Dose in rem = 1.33 rad × 5 = 6.65 rem
Since 6.65 rem exceeds the maximum permissible dose of 5 rem per year, the radiation dosage was exceeded.
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The following data of position x and time t are collected for an object that starts at rest and moves with constant acceleration. x(m) 0 2 1 5 2 14 3 29 The position of the object at t = 5s is most nearly A 30m B 45m с 75m D 77m E 110m
The position of the object at t = 5s is most nearly D) 77m.
The given data shows the position x of an object at different times t, assuming it starts from rest and moves with constant acceleration. To find the position of the object at t = 5s, we can use the equation of motion x = ut + (1/2)at², where u is the initial velocity (which is zero in this case) and a is the acceleration (which is constant).
Using the given data, we can calculate the acceleration of the object by taking the difference in position and time for each pair of consecutive data points. We get:
a = (2-0)/(2-0) = 1 m/s²a = (5-1)/(3-2) = 4 m/s²a = (14-5)/(2-1) = 9 m/s²a = (29-14)/(3-2) = 15 m/s²Now we can use the equation of motion with the calculated acceleration to find the position of the object at t = 5s:
x = 0 + (1/2)15(5²) = 75m (rounded to the nearest integer)Therefore, the position of the object at t = 5s is most nearly D) 77m.
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a 15 kg runaway grocery cart runs into a spring with spring constant 240 n/m and compresses it by 60 cm .
The force exerted on the spring by the cart is 144 N. This force causes the spring to compress and store potential energy, which can be released when the spring is allowed to return to its original state.
When the 15 kg runaway grocery cart collides with the spring, the spring compresses due to the force exerted on it by the cart. The spring has a spring constant of 240 N/m, which means that for every meter the spring is compressed, it exerts a force of 240 N.
In this case, the spring is compressed by 60 cm or 0.6 meters. Therefore, the force exerted on the spring by the cart can be calculated using the equation F = kx, where F is the force, k is the spring constant, and x is the displacement.
Plugging in the values, we get:
F = 240 N/m x 0.6 m = 144 N
Overall, this scenario demonstrates the relationship between force, displacement, and spring constant, and how they can be used to calculate the energy involved in a collision or interaction between objects.
As the given question is incomplete, The complete question is "A 15 kg runaway grocery cart runs into a spring with a spring constant of 240 n/m and compresses it by 60 cm. Calculate the applied force."
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The SPST switch in the circuit of Fig. 1 opens at t-0 after it had been closed for a long time. Draw schematics that accurately represent the state of this circuit at t-o-, t=0, and t=00 and use them to determine a. Vc(0) and i(0) b· ic(0) and VL(0) c. Vc() and iL() 1-0 12 V
The circuit consists of a voltage source of 12V connected in series with a resistor of 10 ohms and a capacitor of 2 microfarads. At t=0, the switch opens and the circuit becomes an RC circuit. The voltage across the capacitor and the current flowing through the circuit will change with time.
At t=-0, the switch is closed and the capacitor is uncharged. Therefore, the voltage across the capacitor Vc(0) is zero and the current flowing through the circuit i(0) is V/R = 12/10 = 1.2A.
At t=0, the switch opens and the circuit becomes an RC circuit. The capacitor starts to charge through the resistor and the voltage across the capacitor Vc(t) increases exponentially towards 12V. The current flowing through the circuit i(t) decreases exponentially towards zero as the capacitor charges up. The time constant of the circuit is given by RC = 20 microseconds.
At t=∞, the capacitor is fully charged and no current flows through the circuit. Therefore, Vc(∞) = 12V and iL(∞) = 0.
Using the initial conditions Vc(0) = 0 and i(0) = 1.2A, we can determine the values of ic(0) and VL(0) at t=0. The current flowing through the capacitor ic(0) = i(0) = 1.2A and the voltage drop across the resistor VL(0) = i(0) x R = 1.2 x 10 = 12V.
To determine the values of Vc(t) and iL(t) at any time t, we can use the equations Vc(t) = 12(1-e^(-t/RC)) and iL(t) = (V/R)e^(-t/RC).
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An unknown metal with an fcc structure has a density of 10.5 gem, and the edge length of the unit cell is 409 pm. What is the probable identity of the metal? a. Silver (Ag) b. Manganese (Mn) c. Aluminum (Al) d. Samarium (Sm) e. More information is required. 7. Short Answer (show your work)
The molar mass is closest to that of silver (Ag), which has a molar mass of 107.87 g/mol. Therefore, the probable identity of the metal is silver (Ag).
To identify the unknown metal with an fcc (face-centered cubic) structure, we'll need to determine its molar mass using the given density and unit cell edge length. Here's the formula for calculating the density of a crystal lattice:
Density = (Z × M) / (Nₐ × a³)
where Z is the number of atoms per unit cell, M is the molar mass of the metal, Nₐ is Avogadro's number (6.022 × 10²³ atoms/mol), and a is the edge length of the unit cell.
For an fcc structure, Z = 4. The edge length (a) is given as 409 pm, or 409 × 10⁻¹² m. The density is given as 10.5 g/cm³, or 10.5 × 10³ kg/m³
Rearrange the formula for M:
M = (Density × Nₐ × a³) / Z
M = (10.5 × 10³ kg/m³ × 6.022 × 10²³ atoms/mol × (409 × 10⁻¹² m)³) / 4
M ≈ 107.9 g/mol
The molar mass is closest to that of silver (Ag), which has a molar mass of 107.87 g/mol. Therefore, the probable identity of the metal is silver (Ag).
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A thin film of polystyrene of refractive index 1.49 is used as a nonreflecting coating for Fabulite (strontium titanate) of refractive index 2.409.What is the minimum thickness of the film required? Assume that the wavelength of the light in air is 550nm .
The minimum thickness of the polystyrene film required to act as a non-reflective coating for Fabulite is approximately 71.9 nanometers.
To determine the minimum thickness of the polystyrene film required to act as a non-reflective coating for Fabulite, we need to use the formula for the optical path difference:
OPD = 2t*(n2 - n1)/λ
where OPD is the optical path difference, t is the thickness of the film, n1 is the refractive index of the medium on one side of the film (in this case, air), n2 is the refractive index of the medium on the other side of the film (in this case, Fabulite), and λ is the wavelength of light in air.
If the film is acting as a non-reflective coating, then the optical path difference must be equal to λ/4. This ensures that the reflected light waves from the top and bottom surfaces of the film are 180 degrees out of phase, leading to destructive interference and minimal reflection.
Thus, we can rearrange the formula to solve for the minimum thickness of the film as:
t = λ/4*(n2 - n1)/n2
Plugging in the given values, we get:
t = (550 nm)/4 * (2.409 - 1.49)/2.409
= 71.9 nm
Therefore, the minimum thickness of the polystyrene film required to act as a non-reflective coating for Fabulite is approximately 71.9 nanometers.
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A sample of radioactive material with a half-life of 200 days contains 1×1012 nuclei. What is the approximate number of days it will take for the sample to contain 1.25×1011 radioactive nuclei?
A.) 200
B.) 400
C.) 600
D.) 800
The answer is C.) it will take approximately 600 days for the sample to contain 1.25×1011 radioactive nuclei.
The half-life of the radioactive material is 200 days, which means that after 200 days, half of the original nuclei will have decayed. So, after another 200 days (a total of 400 days), half of the remaining nuclei will have decayed, leaving 1/4 of the original nuclei.
We can set up an equation to solve for the time it will take for the sample to contain 1.25×1011 radioactive nuclei:
1×1012 * (1/2)^(t/200) = 1.25×1011
Where t is the number of days.
Simplifying this equation, we can divide both sides by 1×1012 and take the logarithm of both sides:
(1/2)^(t/200) = 1.25×10^-1
t/200 = log(1.25×10^-1) / log(1/2)
t/200 = 3
t = 600
Therefore, it will take 600 days for the sample to contain 1.25×1011 radioactive nuclei.
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