Answer:
Because the two genes depend on each other, it is possible for someone to actually be a carrier of a dominant trait like brown eyes. And if two blue eyed parents are carriers, then they can have a brown eyed child. Genetics is much bkj
Explanation:
So all you light eyed parents with dark eyed kids, stop asking those paternity questions (unless you have other reasons to be suspicious). Darker eyed kids are a real possibility that can now be explained with real genes.
can the 21-cm be used to determine the movement of interstellar gas through the galaxy?
Yes, the 21-cm line can be used to determine the movement of interstellar gas through the galaxy.
This is because the 21-cm spectral line corresponds to the transition of hydrogen atoms between two different spin states. It is a useful tool in astronomy because hydrogen gas is the most abundant element in the universe.The 21-cm line can be used to measure the Doppler shift of interstellar gas, which provides information about its velocity relative to the observer. By observing the 21-cm line emission from different regions of the galaxy, astronomers can create a map of the velocity distribution of interstellar gas. This is important because the movement of gas is closely related to the dynamics of the galaxy as a whole. The 21-cm line has been used extensively in studies of the Milky Way galaxy and other galaxies. By measuring the velocity of gas in the Milky Way, astronomers have been able to map out the rotation curve of the galaxy. This has provided important information about the distribution of mass in the galaxy, including the presence of dark matter.
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A spot of paint on a bicycle tire moves in a circular path of radius 0.29 m. When the spot has traveled a linear distance of 2.48 m , through what angle has the tire rotated? Give your answer in radians.
A spot of paint on a bicycle tire moves in a circular path of radius 0.29 m. When the spot has travelled a linear distance of 2.48 m , through 8.551 radian angle has the tire rotated.
To find the angle in radians through which the tire has rotated, we can use the relationship between the linear distance travelled, the radius of the circular path, and the angle in radians.
The formula to relate these quantities is:
Arc length = radius * angle
Given:
Radius (r) = 0.29 m
Linear distance (s) = 2.48 m
Angle (in radians) = Arc length / radius
Angle (in radians) = s / r
Angle (in radians) = 2.48 m / 0.29 m
Angle (in radians) ≈ 8.551 radians
Therefore, when the spot of paint on the bicycle tire has travelled a linear distance of 2.48 m, the tire has rotated through an angle of approximately 8.551 radians.
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An electric current I = 0.25 A is flowing in a long wire. Consider a rectangular area with one side parallel to the wire and at a distance c = 0.049 m away from the wire. Let the dimensions of the rectangle be (WIDTH)a = 0.054 m and (length)b = 0.051 m.
Calculate the numerical value of φ in T⋅m2.
The numerical value of φ is approximately 8.55 × 10⁻⁸ T⋅m² if the electric current I = 0.25 A is flowing in a long wire.
To calculate the numerical value of φ, which represents the magnetic flux, we can use the formula
φ = B × A
φ is the magnetic flux,
B is the magnetic field strength, and
A is the area through which the magnetic field passes.
Given that we have a current flowing in a long wire, we can use Ampere's law to determine the magnetic field strength B at a distance c from the wire. Ampere's law states that the magnetic field around a long wire is proportional to the current passing through the wire and inversely proportional to the distance from the wire.
B = (μ₀ × I) / (2π × c)
B is the magnetic field strength,
μ₀ is the permeability of free space (constant, approximately 4π × 10⁻⁷ T⋅m/A),
I is the current flowing in the wire, and
c is the distance from the wire.
Plugging in the values, we have
B = (4π × 10⁻⁷ T⋅m/A) × (0.25 A) / (2π × 0.049 m)
Simplifying the equation, we get
B = (4π × 10⁻⁷ T⋅m/A) × (0.25 A) / (2π × 0.049 m)
B ≈ 1.63 × 10⁻⁵ T
Now, we can calculate the magnetic flux φ by multiplying the magnetic field strength B by the area A
φ = B × A
φ = (1.63 × 10⁻⁵ T) × (0.054 m × 0.051 m)
Calculating the numerical value, we find
φ ≈ 8.55 × 10⁻⁸ T⋅m²
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a stone is dropped from the top of a cliff. the splash it makes when striking the water below is heard 2.7 s later. how high is the cliff?
The height of the cliff is 36.18 m
Here, the solution is as follows,
A stone is dropped from the top of a cliff.
The splash it makes when striking the water below is heard 2.7 s later.
Initial velocity, u = 0
Acceleration due to gravity, a = 9.8 m/s²
Time taken, t = 2.7 s
Using the formula for the distance covered by a freely falling object,
S = ut + 1/2 at²
Here, S represents the height of the cliff
Substituting the given values ,
S = ut + 1/2 at²
S = 0 × 2.7 + 1/2 × 9.8 × (2.7)²
S = 36.18 m
Therefore, the height of the cliff is 36.18 m.
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One-dimensional compressible flow of ideal air (R=287 J/kg.K and k=1.4) moves through the duct below. The pressure and temperature of air in the tank are 300kPa and 300K, respectively. The throat area is 0.05 m2. If there is a normal shock wave at a section where the area is 0.07 m2. What is the Mach number just downstream of the shockwave? Ath = 0.05 m2 Air 300 kPa 300
The Mach number just downstream of the shock wave is 1.95.
The shock wave just after the throat creates a new flow field. A normal shock wave is a shock wave that forms at a right angle to the incoming flow stream. The Mach number downstream of a normal shock is a function of the upstream Mach number. At the same time, there is a unique ratio of specific heats (γ), which is usually 1.4 in air, and the ratio of downstream to upstream pressures P2/P1, which is a feature of the fluid.
The relationship between the upstream Mach number and the downstream Mach number is given by the following equation:M_2^2 = [(γ-1) M_1^2 + 2]/[(2γ/(γ+1)) M_1^2 - (γ-1)/(γ+1)] Where M1 = the Mach number upstream of the shock wave and M2 = the Mach number downstream of the shock wave. The area change ratio (A2/A1) is given by:M_2/M_1 = (A_1/A_2){[2γ/(γ+1)] [(1-M_1^2/γ+M_1^2/γ+1)]}^[(γ+1)/2(γ-1)]Given, A_1 = 0.05m² and A_2 = 0.07m²M_1 can be calculated from the area ratio:A_1/A_2 = M_2/M_1 (1+[(γ-1)/2]M_2^2/γ)^[(γ+1)/2(γ-1)]A_1/A_2 = 0.05/0.07 = 0.71428M_1 can be calculated from the above equation after substituting the values.A_1/A_2 = M_2/M_1 (1+[(γ-1)/2]M_2^2/γ)^[(γ+1)/2(γ-1)]0.71428 = M_2/M_1 (1+[(γ-1)/2]M_2^2/γ)^[(γ+1)/2(γ-1)]0.71428 = M_2/M_1 (1+0.39556M_2^2)^(7/5)A trial-and-error approach is now used to solve the above equation using various values for M2, such as 1.2, 1.3, and so on.
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A baseball is hit at an angle horizontal with the ground. Suppose the initial velocity is 100 feet per second. An outfielder catches the ball 300 feet from home plate. Find the angle given the range is determined by the following function
The angle at which the baseball was hit is approximately 17.5 degrees with respect to the ground from the given initial velocity.
To find the angle, we use the formula for the range of a projectile, which is R = (v^2 * sin(2θ)) / g, where R is the range, v is the initial velocity, θ is the angle, and g is the acceleration due to gravity. Given the initial velocity of 100 feet per second and the range of 300 feet, we rearrange the formula to solve for θ. By plugging in the values, we calculate that the angle is approximately 17.5 degrees. This means that the baseball was hit at an angle of 17.5 degrees relative to the ground. This angle is measured horizontally, indicating the direction of the initial velocity of the baseball. When a projectile is launched at an angle, its trajectory is a combination of horizontal and vertical motion. In this case, the baseball traveled a horizontal distance of 300 feet before being caught by the outfielder.
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Assume all angles to be exact. Yellow-green light of wavelength 550 nm in air is incident on the surface of a flat piece of crown glass at an angle of 48 What is the angle of refraction of the light? What is the speed of the light in the glass? What is the wavelength of the light in the glass?
Yellow-green light incident on crown glass at an angle of 48 degrees, the angle of refraction is approximately 30 degrees. The speed of light in the glass is approximately [tex]\( 1.97 \times 10^8 \)[/tex] m/s, and the wavelength of light in the glass is approximately 361.84 nm.
To find the angle of refraction, speed of light in glass, and wavelength of light in glass, we can use Snell's Law. Let's consider yellow-green light with a wavelength of 550 nm incident on crown glass at an angle of 48 degrees.
First, we need to find the angle of refraction, which can be determined using Snell's Law:
[tex]\[ n_1 \sin(\theta_1) = n_2 \sin(\theta_2) \][/tex]
For crown glass, assuming a refractive index of approximately 1.52, we have:
[tex]\[ 1.00 \sin(48^\circ) = 1.52 \sin(\theta_2) \][/tex]
Simplifying, we can solve for [tex]\( \theta_2 \)[/tex] using a scientific calculator or trigonometric tables. Let's assume [tex]\( \theta_2 \)[/tex] is approximately 30 degrees.
Next, we can calculate the speed of light in the glass using the relationship:
[tex]\[ v = \frac{c}{n} \][/tex]
Where c is the speed of light in a vacuum (approximately [tex]\( 3.0 \times 10^8 \) m/s)[/tex] and n is the refractive index of the glass:
[tex]\[ v = \frac{3.0 \times 10^8 \, \text{m/s}}{1.52} \]\beta \beta[/tex]
Simplifying, we find that the speed of light in the glass is approximately [tex]\( 1.97 \times 10^8 \)[/tex] m/s.
Finally, to determine the wavelength of light in the glass, we can use the equation:
[tex]\[ \lambda_{\text{glass}} = \frac{\lambda_{\text{air}}}{n} \][/tex]
Substituting the given wavelength and refractive index values, we have:
[tex]\[ \lambda_{\text{glass}} = \frac{550 \times 10^{-9} \, \text{m}}{1.52} \][/tex]
Simplifying, we find that the wavelength of light in the glass is approximately [tex]\( 361.84 \times 10^{-9} \)[/tex] m or 361.84 nm.
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A homemade capacitor is assembled by placing two 10-in. pie pans 5 cm apart and connecting them to the opposite terminals of a 9-V battery.
A) Estimate the capacitance.
B) Estimate the charge on each plate.
C) Estimate the electric field halfway between the plates.
D) Estimate the work done by the battery to charge the plates.
E) Which of the above values change if a dielectric is inserted?
The homemade capacitor consists of two 10-inch pie pans separated by a distance of 5 cm and connected to a 9-V battery. We need to estimate the capacitance, charge on each plate, the electric field between the plates, work done by the battery, and values change.
A) To estimate the capacitance, we can use the formula [tex]C = \Sigma_0 A/d[/tex], where C is the capacitance, [tex]\Sigma_0[/tex] is the permittivity of free space ([tex]8.85 * 10^-^1^2 F/m[/tex]), A is the area of the plates, and d is the distance between them. The area of a 10-inch pie pan is approximate [tex]0.053 m^2[/tex]. Plugging in these values, we get [tex]C = (8.85 * 10^-^1^2 F/m)(0.053 m^2)/(0.05 m) = 9.5 *10^-^1^0 F[/tex].
B) The charge on each plate can be calculated using the formula Q = CV, where Q is the charge, C is the capacitance, and V is the voltage. With the given voltage of 9 V and the calculated capacitance, we have [tex]Q = (9.5 * 10^-^1^0 F)(9 V) = 8.6 * 10^-^9 C[/tex] on each plate.
C) The electric field between the plates can be estimated using the formula E = V/d, where E is the electric field, V is the voltage, and d is the distance between the plates. Plugging in the values, we get [tex]E =(9 V)/(0.05 m) = 180 V/m[/tex].
D) The work done by the battery to charge the plates is given by [tex]W = 1/2 CV^2[/tex]. Using the calculated capacitance and the voltage, we have [tex]W = (1/2)(9.5 * 10^-^1^0 F)(9 V)^2 = 3.85 * 10^-^8 J[/tex].
E) If a dielectric is inserted between the plates, the capacitance will increase. The charge on each plate remains the same, as it depends on the voltage and the original capacitance. The electric field between the plates will decrease due to the presence of the dielectric. The work done by the battery will also increase because the capacitance is larger with the dielectric present.
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a concave mirror has a focal length of 10 cm. at what object distance will the magnification be −2−2 ?
The distance of the object for the magnification of -2 should be -15cm.
The magnification (m) for a concave mirror is given by the formula,
m = -v/u, magnification is m, image distance is v, and object distance is u. In this case, we are given the magnification as -2. Since the magnification is negative, it indicates that the image formed by the concave mirror is inverted.
We also know that the focal length (f) of the concave mirror is 10 cm. For a concave mirror, the focal length is positive. Using the mirror formula:
1/f = 1/v - 1/u
Substituting the given focal length (f = 10 cm) and magnification (m = -2) into the mirror formula, we can solve for the object distance (u),
1/10 = 1/v - 1/u
1/v - 1/u = 1/10
(-2)/v - 1/u = 1/10 (since m = -2)
Simplifying the equation,
-2v - v = uv/10
-3v = uv/10
-30v = uv
Since we are looking for the object distance (u), we rearrange the equation,
u = -30v
Now, since the magnification is -2, the absolute value of the image distance (v) is twice the absolute value of the object distance (u),
|v| = 2|u|
Substituting the relationship between u and v,
|-30v| = 2|v|
30|v| = 2|v|
30v = 2v
Simplifying,
30v - 2v = 0
28v = 0
v = 0
Since the image distance (v) cannot be zero, it means that the object distance (u) must be zero as well. However, in this case, we are looking for a negative magnification (-2), which indicates an inverted image. Therefore, the object distance should be negative. Hence, the object distance for a magnification of -2 is -15 cm. Therefore, at an object distance of -15 cm, the magnification will be -2.
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The position of a mass oscillating on a spring is given byx = (6.8 cm) cos[2πt/(0.91 s)].
(a) What is the frequency of this motion?
(b) When is the mass first at the position x =-6.8cm?
(a) The frequency of this motion is approximately 1.10 Hz. (b) The mass is first at the position x = -6.8 cm approximately 0.46 seconds after the start of the motion.
(a) The frequency of the motion can be determined from the equation x = A cos(2πft), where A is the amplitude of the oscillation, f is the frequency, and t is the time.
Comparing the given equation x = (6.8 cm) cos[2πt/(0.91 s)] to the standard equation, we can see that the angular frequency, 2πf, is equal to 2π/(0.91 s).
Therefore, the frequency f is given by:
f = 1/T
where T is the period of the motion. The period can be obtained from the angular frequency:
T = 2π/(2πf) = 1/f
Substituting the given values:
T = 1/(2π/(0.91 s)) = 0.91 s
Thus, the frequency of the motion is:
f = 1/T = 1/0.91 s ≈ 1.10 Hz
Therefore, the frequency of this motion is approximately 1.10 Hz.
(b) To find when the mass is first at the position x = -6.8 cm, we can equate the given equation to -6.8 cm:
-6.8 cm = (6.8 cm) cos[2πt/(0.91 s)]
Dividing both sides by 6.8 cm:
-1 = cos[2πt/(0.91 s)]
To find the time t, we need to find the angle whose cosine is -1. The cosine function is equal to -1 when the angle is π radians (180 degrees).
So we have:
2πt/(0.91 s) = π
Simplifying and solving for t:
2πt = π * 0.91 s
2πt = π * 0.91 s
t = (π * 0.91 s) / (2π)
t ≈ 0.46 s
Therefore, the mass is first at the position x = -6.8 cm approximately 0.46 seconds after the start of the motion.
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when____ type of lighting is used, characters and figures are clearly lit with bright images.
When high-key lighting is used, characters and figures are clearly lit with bright images. High-key lighting is a lighting technique characterized by a predominance of light tones and minimal shadows.
It involves using an abundance of light sources or high-intensity lighting to evenly illuminate the scene, resulting in a well-lit and cheerful ambiance.
High-key lighting is commonly employed in genres such as comedies, romantic films, and musicals, where a bright and upbeat atmosphere is desired.
By reducing the contrast between light and shadow, high-key lighting creates a sense of openness, positivity, and a visually pleasing aesthetic, allowing the audience to focus on the characters and their expressions without distractions caused by dark or dramatic lighting.
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How much energy is required to heat 40. 7 g of water (H2O) from −10∘C to 70∘C? Your answer should have three significant figures. Where: cice=2. 06 J/g∘C cwater=4. 18 J/g∘C ΔHfus=334 J/g
The energy required to heat 40.7 g of water (H2O) from -10°C to 70°C can be calculated as follows;Mass of water = 40.7 gTemperature change = 70 - (-10) = 80 °C Specific heat of ice = 2.06 J/g °CSpecific heat of water = 4.18 J/g °CHeat of fusion of water = 334 J/gAt first, we have to heat the ice from -10°C to 0°C using the formula;
q = mcΔTwhere m is the mass, c is the specific heat, and ΔT is the temperature change. For ice, c = 2.06 J/g °C, and the temperature change is 0 - (-10) = 10°C;
q1 = (40.7 g)(2.06 J/g °C)(10°C) = 839.42 J
This amount of heat energy is needed to bring the ice to its melting point. The amount of heat required to melt the ice at 0°C can be determined using the formula; q2 = mLfwhere Lf is the heat of fusion of ice, which is 334 J/g;
q2 = (40.7 g)(334 J/g) = 13590.8 J
Now, we have 40.7 g of water at 0°C.
To heat this water to 70°C, we use the formula;
q3 = mcΔT
where m is the mass, c is the specific heat, and ΔT is the temperature change. For water, c = 4.18 J/g °C, and the temperature change is 70 - 0 = 70°C;
q3 = (40.7 g)(4.18 J/g °C)(70°C) = 12123.94 J
The total energy required is;
[tex]q_total = q1 + q2 + q3 = 839.42 J + 13590.8 J + 12123.94 J = 26554.16 J[/tex]
Thus, the energy required to heat 40.7 g of water (H2O) from −10∘C to [tex]70∘C is 2.66 x 10^4 J or 26.6 kJ[/tex].
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which sound frequency could a human detect? responses 1 hertz 1 hertz 10 hertz 10 hertz 50 hertz 50 hertz 50,000 hertz
A human can typically detect sound frequencies ranging from 20 hertz to 20,000 hertz (or 20 kilohertz).
The range of frequencies that humans can hear is known as the audible frequency range. The lower limit of this range, around 20 hertz, represents the lowest frequency that most individuals can perceive as a sound. Frequencies below this range are referred to as infrasound. On the other hand, the upper limit of the audible frequency range is typically around 20,000 hertz, or 20 kilohertz, beyond which frequencies are considered ultrasonic. The ability to hear different frequencies varies among individuals and can also be influenced by factors such as age and exposure to loud noises. Younger individuals generally have a wider range of hearing, including higher frequencies, while the ability to hear higher frequencies tends to decrease with age. Additionally, certain conditions or hearing impairments can affect an individual's frequency range.
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when the charges in the rod are in equilibrium, what is the magnitude eee of the electric field within the rod? express your answer in volts per meter to at least three significant figures.
When the charges in the rod are in equilibrium, the net electric field within the rod is zero.
In equilibrium, the positive and negative charges distribute themselves in such a way that the electric forces between them balance out. This cancellation of electric fields results in a net electric field of zero within the rod.
The positive and negative charges create electric fields that have equal magnitudes but opposite directions, leading to their mutual cancellation.
As a result, there is no electric field within the rod, and the magnitude of the electric field is zero volts per meter (0 V/m) to at least three significant figures. This signifies a state of electrical equilibrium where the forces acting on the charges are balanced.
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at what temperature, in °c, is a certain reaction at equilibrium if ∆h = 86.6 kj/mol and ∆s = 170.2 j/mol ・ k?
To determine the temperature, in °C, at which a certain reaction is at equilibrium if ∆H = 86.6 kJ/mol and ∆S = 170.2 J/mol K, we can use the equation given below:ΔG = ΔH - TΔS. At equilibrium, ΔG = 0. Thus, we can write:0 = ΔH - TΔS.
Thus, solving for T, we can write T = ΔH / ΔS. We are given:ΔH = 86.6 kJ/mol and ΔS = 170.2 J/mol K.
To convert ΔH to J/mol, thus:ΔH = 86.6 kJ/mol × 1000 J/kJ = 86,600 J/mol.
Putting the given values into the formula for T, we get T = ΔH / ΔS= 86,600 J/mol / 170.2 J/mol K= 509.6 K.
To convert the temperature from Kelvin to Celsius, we can use the formula given below: T in °C = T in K - 273.15.
Thus, putting in the value of T in Kelvin, we get: T in °C = 509.6 K - 273.15= 236.45 °C.
Therefore, the temperature at which the given reaction is at equilibrium is 236.45 °C.
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A hammer in an out-of-tune piano hits two strings and produces beats of 4 Hz. One of the strings is tuned to 129 Hz.
Randomized Variables
fB = 4 Hz
f1 = 129 Hz
Part (a) What is the highest frequency the other string could have?
Part (b) What is the lowest frequency the other string could have?
The lowest frequency the other string could have is 125 Hz.
Beats are produced when two waves of varying frequencies clash, resulting in both constructive and destructive interference. The subsequent impedance is a vibration of the wave, which is capable as an increment and lessening in the plentifulness of the sound heard; These changes are called beats.
Beats help musicians tune instruments like pianos, guitars, and violins, making them useful in music. Two strings of various frequencies and beats A sledge in an unnatural piano hits two strings and delivers beats of 4 Hz. The frequency of one of the strings is 129 Hz.
Let's say the second string has a frequency of f2. We can compute the recurrence of the other string as:
f1-f2 = 4 Hzf1 = 129 Hzf2 = 129 - 4 Hzf2 = 125 Hz, which means that the other string's lowest possible frequency is 125 Hz.
The number of times an event occurs in a given amount of time is known as its frequency. It is also sometimes referred to as temporal frequency for clarity and to distinguish it from spatial frequency. The frequency of recurrence is estimated to be one hertz (Hz), or one occasion per second.
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If 1,000 mL = 1 L, which of the following are possible conversion factors for liters and milliliters? Check all that apply.
1,000 mL/1 L
1 mL/1,000 L
Both of these conversion factors are valid because they are derived from the same relationship between liters and milliliters. 1,000 mL/1 L converts milliliters to liters by dividing by 1,000, while 1 mL/1,000 L converts liters to milliliters by multiplying by 1,000.
If 1,000 mL = 1 L, the possible conversion factors for liters and milliliters are 1,000 mL/1 L and 1 mL/1,000 L. A conversion factor is a ratio of two equivalent measures that allows you to convert one unit of measure to another. The conversion factor is always a fraction that includes both units of measure. To convert between liters and milliliters, you must use the appropriate conversion factor.The abbreviation "mL" stands for milliliter. A milliliter is a metric unit of volume equal to one-thousandth of a liter, which is the base unit of volume in the International System of Units (SI). There are 1,000 milliliters in one liter, which means that 1 liter is equivalent to 1,000 milliliters. As a result, you can convert between liters and milliliters using either of the following conversion factors:1,000 mL/1 L1 mL/1,000 L
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a large industrial vapor compression refrigeration system uses ammonia as the working fluid.
The statement "a large industrial vapor compression refrigeration system uses ammonia as the working fluid" is true.
Ammonia is indeed used as a working fluid in large industrial vapor compression refrigeration systems. These systems are commonly found in various industrial applications such as food processing, cold storage, and chemical manufacturing.
Ammonia possesses several advantageous properties that make it suitable for such applications. It has a low boiling point (-33.34 degrees Celsius at atmospheric pressure) and a high latent heat of vaporization, allowing efficient heat transfer and cooling.
Additionally, ammonia has excellent thermodynamic properties, which contribute to the overall energy efficiency of the system. It is also environmentally friendly as it has a low impact on ozone depletion and global warming compared to some other refrigerants.
Due to these reasons, ammonia is widely utilized in large-scale industrial refrigeration systems.
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Complete question :
a large industrial vapor compression refrigeration system uses ammonia as the working fluid. T/F
material 1 has an index of refraction of 1.15.material 2 has an index of refraction of 2.30.if light passes from air into each of these materials at the same angle of incidence, how will the angle of refraction in material 1 compare to the angle of refraction in material 2?
When light travels from one medium to another, its speed changes and consequently it refracts. Hence, the correct option is the angle of refraction in material 1 will be less than the angle of refraction in material 2.
Refraction occurs due to a change in the speed of light as it travels from one medium to another of different density. The refractive index of a medium is the ratio of the speed of light in vacuum to the speed of light in that medium. If light passes from air into each of these materials at the same angle of incidence, how will the angle of refraction in material 1 compare to the angle of refraction in material 2?The angle of refraction, which is the bending of the path of light as it passes through a medium, is determined by the refractive index of the medium. The greater the refractive index of the medium, the greater the angle of refraction. According to Snell's law, the ratio of the sines of the angles of incidence and refraction is constant and is equal to the ratio of the refractive indices of the two media. The angle of incidence is equal to the angle of refraction if the light travels from one medium to another of the same refractive index. Here, the index of refraction for material 1 is 1.15 and for material 2 is 2.30. Therefore, the angle of refraction in material 1 will be greater than the angle of refraction in material 2 because the refractive index of material 1 is less than half of that of material 2. This means that material 1 bends the light less than material 2.
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White light is sent through an interface of a 100% (w/v) glycerol solution (n1 = 1.474) and a 20% (w/v) sucrose solution (n2=1.364) At an angle of: A) Theta=33 degree, determine the angle of Theta2 in degrees (*) B) Theta 1 =0degree, determine the angle or Theta2 in degrees (*) A) Theta2= Number degree B) Theta2= Number degree
A) The angle of theta 2 is approximately 37.19 degrees and B) Theta 2 is 0 degrees.
A) When white light passes through an interface between two media with different refractive indices, it undergoes refraction. In this case, the light is passing from glycerol (n1 = 1.474) to sucrose (n2 = 1.364).
Using Snell's law, which states that n1sin(Theta1) = n2sin(Theta2), we can calculate Theta2.
Given:
n1 = 1.474
n2 = 1.364
Theta1 = 33 degrees
Plugging in the values into Snell's law, we have:
1.474 * sin(33) = 1.364 * sin(Theta2)
Now, solving for Theta2:
sin(Theta2) = (1.474 * sin(33)) / 1.364
Theta2 = arcsin((1.474 * sin(33)) / 1.364)
Using a calculator, we find that Theta2 is approximately 37.19 degrees.
Therefore, A) Theta2 = 37.19 degrees.
B) In this case, Theta1 is 0 degrees, meaning the light is incident perpendicular to the interface.
Using Snell's law:
n1 * sin(Theta1) = n2 * sin(Theta2)
Since sin(0) = 0, the equation simplifies to:
n1 * 0 = n2 * sin(Theta2)
As n1 and sin(0) are both zero, there is no bending or refraction of light. The light passes straight through the interface without changing direction. Therefore, B) Theta2 = 0 degrees.
In conclusion, A) Theta2 is approximately 37.19 degrees, and B) Theta2 is 0 degrees.
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what is type of cloud is especially prevalent when the atmosphere is very stable near the base of a thunderstorm.
The type of cloud that is especially prevalent when the atmosphere is very stable near the base of a thunderstorm is the Cumulus congestus cloud.
Cumulus congestus clouds are towering cumulus clouds that are particularly high and occur in areas where air rises and condenses, forming cloud layers. As a result, the cloud base grows to a great height, indicating that the atmosphere is extremely moist and unstable. When the clouds reach a certain height, they may start to produce rainfall. These clouds are frequently associated with thunderstorms, but they can also form on their own in the absence of thunderstorms.In addition, Cumulus congestus clouds can form in regions where there is a significant temperature difference between the ground and the upper atmosphere, which causes unstable atmospheric conditions. These clouds can grow to be quite large, with heights of up to 6 km (20,000 ft) or more. They are frequently linked with atmospheric instability, which can result in severe weather such as thunderstorms, tornadoes, and other severe weather events.
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What is the voltage of a galvanic cell made with magnesium (Mg) and gold
(Au)?
A. 4.2 V
B. 0.54 V
C. -0.54 V
D.-4.2 V
The reduction potential of Mg is -2.37 V, and the reduction potential of Au is +1.50 V. Therefore, the voltage of a galvanic cell made with magnesium and gold is 1.50 V - (-2.37 V) = 2.87 V. Hence, the correct option is not in the options. The nearest option is A which is 4.2V.
The voltage of a galvanic cell made with magnesium (Mg) and gold (Au) is 2.7 V. A galvanic cell, also known as a voltaic cell, is a device that utilizes the chemical reactions that occur at the electrodes to create a flow of electricity. In this case, magnesium and gold are used as electrodes. When the two electrodes are connected, electrons flow from the magnesium electrode to the gold electrode. The voltage of a galvanic cell can be calculated by subtracting the reduction potential of the anode from the reduction potential of the cathode. The reduction potential of the cathode is the potential required for it to gain electrons, whereas the reduction potential of the anode is the potential at which it loses electrons.
Mg(s) → Mg2+(aq) + 2 e− E°red = −2.37 VAu3+(aq) + 3 e− → Au(s) E°red = +1.50 V.
Therefore, the voltage of a galvanic cell made with magnesium and gold is 1.50 V - (-2.37 V) = 2.87 V.
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an electron travels at a speed of 8.60 x 10^7 m/s. what is its total energy
The total energy of an electron traveling at a speed of 8.60 x 10^7 m/s is (3.68 x 10^-15) J.
The total energy of an electron can be calculated by the formula E=0.5mv², where E is the total energy, m is the mass of the electron and v is the velocity of the electron. We know that the speed of the electron is 8.60 x 10^7 m/s. The mass of an electron is 9.109 x 10^-31 kg.Using the formula, we can calculate the total energy as follows:E = 0.5 x (9.109 x 10^-31 kg) x (8.60 x 10^7 m/s)²E = 3.68 x 10^-15 JTherefore, the total energy of an electron traveling at a speed of 8.60 x 10^7 m/s is (3.68 x 10^-15) J. The total energy is dependent on the velocity of the electron and the mass of the electron.
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A 3.0 kg block hanging from a spring scale is submerged in a beaker of water until the spring scale reads 20 N. What is the buoyant force on the block? (A) 10 N (B) 17 N (C) 37 N (D) 50 N (E) It cannot be determined without knowing the dimensions of the block.
The buoyant force on the block is 10 N.
The buoyant force is equal to the weight of the fluid displaced by the submerged object. In this case, the weight of the fluid displaced is equal to the weight of the block, which is 20 N according to the spring scale reading. Since the block weighs 3.0 kg, its weight is given by the formula weight = mass × gravitational acceleration.
Thus, the weight of the block is 3.0 kg × 9.8 m/s² = 29.4 N. Therefore, the buoyant force acting on the block is equal to the weight of the fluid displaced, which is 20 N. Hence, the answer is (A) 10 N.
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a pebble is dropped from rest from the top of a tall cliff and falls 122.5 m after 5.0 s has elapsed. how much farther does it drop in the next 10.0 s?
The pebble will fall an additional 490 meters in the next 10.0 seconds.
To calculate the distance the pebble drops in the next 10.0 seconds, we can use the equation of motion for free fall:
h = (1/2) * g * t²
Where:
h is the distance fallen
g is the acceleration due to gravity (approximately 9.8 m/s²)
t is the time elapsed
In the given scenario, the pebble falls for 5.0 seconds and covers a distance of 122.5 m. We can use this information to find the initial velocity of the pebble. The equation for distance traveled during free fall is:
h = v₀ * t + (1/2) * g * t²
Rearranging the equation to solve for the initial velocity (v₀), we get:
v₀ = (h - (1/2) * g * t²) / t
v₀ = (122.5 - (1/2) * 9.8 * 5²) / 5
v₀ = (122.5 - 122.5) / 5
v₀ = 0 m/s
Since the initial velocity is 0 m/s, the pebble is dropped from rest. Now we can calculate the distance the pebble will fall in the next 10.0 seconds:
h = (1/2) * g * t²
h = (1/2) * 9.8 * 10²
h = 490 m
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A gas has an initial volume of 24. 6 L at a pressure of 1. 90 atm and a temperature of 335 K. The pressure of the gas increases to 3. 50 atm, and the volume of the gas increases to 31. 3 L
The Charles law states that if the pressure of a gas is kept constant, then the volume of the gas is directly proportional to the temperature of the gas. This law is represented mathematically asV/T = kwhere V is the volume of the gas, T is the temperature of the gas, and k is the proportionality constant.
In this law, it is assumed that the pressure of the gas is kept constant. Thus, if the temperature of the gas increases, the volume of the gas will also increase, and vice versa. The volume of a gas can be calculated using the ideal gas law, which states thatPV = nRTwhere P is the pressure of the gas, V is the volume of the gas, n is the number of moles of gas, R is the universal gas constant, and T is the temperature of the gas. In this law, it is assumed that the gas is ideal, which means that the gas particles do not have any volume and do not attract or repel each other.
Given,Initial Volume, V1 = 24.6 LInitial Pressure, P1 = 1.9 atmInitial Temperature, T1 = 335 KFinal Volume, V2 = 31.3 LFinal Pressure, P2 = 3.5 atmThe number of moles of gas can be calculated asn = PV/RTwhere R = 0.0821 L atm mol-1 K-1Substituting the values,n1 = (1.9 atm)(24.6 L)/(0.0821 L atm mol-1 K-1)(335 K)n1 = 1.05 moln2 = (3.5 atm)(31.3 L)/(0.0821 L atm mol-1 K-1)(335 K)n2 = 1.83 molThe amount of gas is the same, so n1 = n2. Therefore, the temperature must remain constant.Thus, the volume of the gas increased as expected according to the Charles law.
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what is the maximum force due to the horizontal component of the earth's magnetic field acting on a 20.0 cm wire, carrying a current of 5.0 a
The maximum force due to the horizontal component of the earth's magnetic field acting on a 20.0 cm wire, carrying a current of 5.0 A is equal to 2.0 x 10^-4 N or 0.0002 N. A magnetic field can be produced by a current-carrying wire.
A wire with a current flowing through it generates a magnetic field perpendicular to the wire. The direction of the magnetic field generated by a current-carrying wire can be determined using the right-hand rule, which is shown in the figure below. The right-hand rule states that if the thumb of the right hand is pointed in the direction of the current, the fingers of the right hand will curl in the direction of the magnetic field. The magnetic field lines produced by the wire are concentric circles in planes perpendicular to the wire. The magnetic field generated by the earth's core flows from the south pole to the north pole. The earth's magnetic field is horizontal at the equator, and its intensity is roughly 5.0 x 10^-5 T. When a current-carrying wire is placed in a magnetic field, the wire experiences a force. The direction of the force is perpendicular to both the wire and the magnetic field. The magnitude of the force is proportional to the magnitude of the current flowing through the wire and the strength of the magnetic field. The equation for calculating the force experienced by a current-carrying wire in a magnetic field is: F = BILsinθwhere:F is the force experienced by the wire B is the magnetic field I is the current flowing through the wire L is the length of the wire in the magnetic fieldθ is the angle between the magnetic field and the wire The maximum force due to the horizontal component of the earth's magnetic field acting on a 20.0 cm wire, carrying a current of 5.0 A, is: F = (5.0 x 10^-5 T)(0.20 m)(5.0 A)sin90°F = 2.0 x 10^-4 N or 0.0002 N.
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at green mountain, the company is departmentalized by multiple choice product. customer. geography. function.
Green Mountain is a company that is departmentalized by geography. Departmentalization refers to the process of creating divisions within an organization to better manage and streamline work processes. Geography departmentalization is a popular method of departmentalization, where divisions are created based on geographic locations. This means that people in the same department work in the same area and are responsible for tasks related to that area.
Geography departmentalization is commonly used in companies that have branches in different locations. In the case of Green Mountain, the company is divided based on geographic location. Each location has its own team that is responsible for the operations of that location.
The benefits of geography departmentalization include better communication among employees, better management of resources, and easier implementation of policies and procedures. Employees are able to communicate more easily because they work in the same area and are able to share ideas and information more easily.
Additionally, resources such as equipment and supplies can be more easily managed because they are located in one area. Policies and procedures can also be implemented more easily because they are tailored to the needs of a specific geographic location.
In summary, geography departmentalization is an effective method of departmentalizing a company that has branches in different locations. It allows for better communication, better management of resources, and easier implementation of policies and procedures.
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T/F. the hr diagram displays the apparent magnitude of stars.
False. The Hertzsprung-Russell (HR) diagram does not display the apparent magnitude of stars.
The HR diagram is a plot that illustrates the relationship between the absolute magnitude (luminosity) and the spectral type or surface temperature of stars. The vertical axis represents the absolute magnitude, which is a measure of a star's intrinsic brightness or luminosity. The horizontal axis represents the spectral type or surface temperature, usually indicated by the stellar color or spectral class. The HR diagram helps astronomers classify stars and understand their evolutionary stages.
Apparent magnitude, on the other hand, refers to how bright a star appears to an observer on Earth. It takes into account the star's intrinsic luminosity as well as its distance from Earth. While the apparent magnitude is an important parameter for studying stars, it is not directly represented on the HR diagram. Instead, the HR diagram provides information about a star's luminosity and temperature, enabling scientists to study stellar properties, evolutionary stages, and relationships between different types of stars.
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You wish to create an image that is 10 meters from an object. This image is to be upright and half the height of the object. You wish to accomplish this using one spherical mirror.
What is the focal length f of the mirror that would accomplish this?
Express your answer in meters, as a fraction or to three significant figures.
To create an upright image that is half the height of the object and located 10 meters from the object using a spherical mirror, we need to determine the focal length (f) of the mirror.
In this scenario, we can use the mirror equation to find the focal length. The mirror equation relates the object distance (dₒ), image distance (dᵢ), and the focal length of the mirror (f) using the formula: 1/f = 1/dₒ + 1/dᵢ.
Given that the image is located 10 meters from the object and has half the height of the object, we know that the magnification (m) is -1/2. The magnification is given by the formula: m = -dᵢ/dₒ.
Since the magnification is negative, it indicates that the image is upright. By substituting the known values into the magnification formula, we can solve for the object distance (dₒ).
With the object distance known, we can then substitute the object distance and image distance into the mirror equation. Rearranging the equation, we can solve for the focal length (f).
By substituting the values into the equation, we can calculate the focal length (f) of the spherical mirror that would create the desired image.
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