At a rock concert, a dB meter registered 124 dB when placed 2.5 m in front of a loudspeaker on stage. What is the sound level produced by the rock concert at 10 m, assuming uniform spherical spreading of the sound and neglecting absorption in the air? (l₀ = 1 ‘ 10⁻¹² W/m² is a reference intensity, usually taken to be at the threshold of hearing.) a. 109 Db
b. 112 dB c. 119 dB d. 129 dB e. 122 dB
The sound level produced by the rock concert at 10 m, the correct option is (b) 112 dB.
dB meter registered 124 dB when placed 2.5 m in front of a loudspeaker on stage.
We need to find the sound level produced by the rock concert at 10 m, assuming uniform spherical spreading of the sound and neglecting absorption in the air.
Sound is defined as the form of energy that travels in the form of waves through various mediums such as solids, liquids, and gases. It requires a medium to travel from one point to another.There are a few different ways to calculate sound intensity, but one common formula is:
I = P / A
where:
I = sound intensity in W/m²
P = sound power in W (measured in dB)
A = surface area
The formula for sound pressure level (SPL) in decibels (dB) is given by:
L = 10 log (I/I0)
where:
L = sound level (in dB)
I = sound intensity in W/m²
I0 = reference intensity of sound (usually 1 x 10-12 W/m²)
Thus, we can write as follows:
(I/I₀) = (r₀/r)²I₀ = 1x10^-12 W/m²
l₀ = 1 ‘ 10⁻¹² W/m²
The sound level produced by the rock concert at 10 m can be calculated as follows:
L₂ - L₁ = 10 log (I₂ / I₁)
L₁ = 124 dB
L₂ = 10 log (I₂ / I₀) - 10 log (I₁ / I₀)
L₂ = 10 log [(r₁/r₂)²]
L₂ = 10 log [(10m/2.5m)²]
L₂ = 10 log [16]
L₂ = 10(1.2041)
L₂ = 12.041 dB
L₂ = L₁ - (10 log [(r₁/r₂)²])
L₂ = 124 - 12.041
L₂ = 111.959 dB
Therefore, the sound level produced by the rock concert at 10 m is 112 dB (Approx).Hence, the correct option is (b) 112 dB.
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Below are a number of statements regarding the experiment in which you measured the resistance of a number of lengths of wire using a slide wire bridge. The standard resistance must be as large as possible. () The standard resistance must be as small as possible (ii) The standard resistance must be comparable with the unknown resistance. (iv) The standard resistance must always be on the same side of the bridge. (V) The standard and unknown resistances must be interchanged for an additional reading for each length. vi) A new value of the standard resistance must be used for each length of the wire being measured. Which of the statements are correct? (i) & (M GI & TV (i) & (ii) & (vi) O & TV
The correct statements are (i) The standard resistance must be as large as possible, (ii) The standard resistance must be as small as possible, and (vi) A new value of the standard resistance must be used for each length of the wire being measured.
In a slide wire bridge experiment to measure the resistance of different lengths of wire, several statements are given. Let's analyze each statement to determine its correctness:
(i) The statement that the standard resistance must be as large as possible is correct. The purpose of using a standard resistance in the experiment is to compare it with the unknown resistance. To obtain accurate measurements, it is desirable for the standard resistance to be significantly larger than the unknown resistance.
(ii) The statement that the standard resistance must be as small as possible is also correct. In some cases, it may be necessary to have a small standard resistance value to match the range of the unknown resistance being measured.
This ensures that the measurements are within the operating range of the bridge.
(vi) The statement that a new value of the standard resistance must be used for each length of the wire being measured is correct. To account for any potential variations or errors, it is important to have a different value of the standard resistance for each measurement.
This helps in accurately determining the resistance of the wire being tested.
Therefore, the correct statements are (i) The standard resistance must be as large as possible, (ii) The standard resistance must be as small as possible, and (vi) A new value of the standard resistance must be used for each length of the wire being measured.
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A small earthquake starts a lamppost vibrating back and forth. The amplitude of the vibration of the top. of the lamppost is 7.0 cm at the moment the quake stops, and 8.6 s later it is 1.3 cm. Part A What is the time constant for the damping of the oscillation? T= ________ (Value) ________ (Units)
Part B What was the amplitude of the oscillation 4.3 s after the quake stopped? A = ________ (Value) ________ (Units)
A small earthquake starts a lamppost vibrating back and forth. The amplitude of the vibration of the top. of the lamppost is 7.0 cm at the moment the quake stops, and 8.6 s later it is 1.3 cm.
Time constant for the damping of the oscillation:
Initial amplitude A1 = 7.0 cm Final amplitude A2 = 1.3 cm Time passed t = 8.6 s
The damping constant is given by:τ = t / ln (A1 / A2) where τ is the time constant, and ln is the natural logarithm.
Let's plug in our values: τ = 8.6 s / ln (7.0 cm / 1.3 cm)τ = 3.37 s
Amplitude of the oscillation 4.3 s after the quake stopped:
We want to find the amplitude at 4.3 s, which means we need to find A(t).
The equation for amplitude as a function of time for a damped oscillator is:
A(t) = A0e^(-bt/2m) where A0 is the initial amplitude, b is the damping constant, m is the mass of the oscillator, and e is Euler's number (approximately equal to 2.718).
We know A0 = 7.0 cm, b = 1.64 / s (found from τ = 3.37 s in Part A), and m is not given. We don't need to know the mass, however, because we are looking for a ratio of amplitudes: we are looking for A(4.3 s) / A(8.6 s).
Let's plug in our values: A(4.3 s) / A(8.6 s) = e^(-1.64/2m * 4.3) / e^(-1.64/2m * 8.6)A(4.3 s) / A(8.6 s) = e^(-3.514/m) / e^(-7.028/m)A(4.3 s) / A(8.6 s) = e^(3.514/m)
We don't know the value of m, but we can still solve for A(4.3 s) / A(8.6 s). We are given that A(8.6 s) = 1.3 cm:
A(4.3 s) / 1.3 cm = e^(3.514/m)A(4.3 s) = 1.3 cm * e^(3.514/m)
We don't need to know the exact value of m to find the answer to this question. We are given that A(8.6 s) = 1.3 cm and that the amplitude is decreasing over time. Therefore, A (4.3 s) must be less than 1.3 cm. The only answer choice that is less than 1.3 cm is A = 4.1 cm, so that is our answer.
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(a) the itage iocation in crt (0) the maivincasien (c) the imaje height in cm cm (d) Is the image real or virtua? rear virtual (e) Is the inaje uptigitc or imverted? usright inerted
Based on the given information, the image location in a CRT is at the maximum intensity position, the image height is in centimeters, the image is virtual, and the image is inverted.
In a CRT (cathode ray tube), the image is formed by a beam of electrons hitting a phosphor-coated screen. Analyzing the provided information:
(a) The image location is at the maximum intensity position, which typically occurs at the center of the screen where the electron beam is focused.
(c) The image height is given in centimeters, suggesting that the measurement is referring to the physical size of the image on the screen.
(d) The image is described as virtual, indicating that it is not formed by the actual convergence of light rays. In a CRT, the electron beam creates a glowing spot on the phosphor screen, producing a virtual image.
(e) The image is stated to be inverted, meaning that it is upside down compared to the orientation of the object being displayed. This inversion occurs due to the way the electron beam scans the screen from top to bottom, left to right.
Overall, the given information implies that in a CRT, the image is located at the maximum intensity position, has a specified height in centimeters, is virtual (not formed by light rays), and appears inverted compared to the original object.
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If 350 kg of hydrogen could be entirely converted to energy, how many joules would be produced? I
The energy produced is calculated as; E = mc²E=350×300000000²J=3.15×10¹⁹ JSo, 3.15 × 10¹⁹ J would be produced if 350 kg of hydrogen were entirely converted to energy.
The energy produced when hydrogen is entirely converted is calculated using the formula E=mc² where E is energy produced, m is mass, and c is the speed of light.
Given that 350kg of hydrogen is entirely converted, the energy produced is calculated as; E = mc²E=350×300000000²J=3.15×10¹⁹ JSo, 3.15 × 10¹⁹ J would be produced if 350 kg of hydrogen were entirely converted to energy.
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A physicist illuminates a 0.57 mm-wide slit with light characterized by i = 516 nm, and this results in a diffraction pattern forming upon a screen located 128 cm from the slit assembly. Compute the width of the first and second maxima (or bright fringes) on one side of the central peak. (Enter your answer in mm.) W1 = ____
w2 = ____
The width of the first maximum (bright fringe) on one side of the central peak is 0.126 mm, and the width of the second maximum is 0.252 mm.
1- The width of the bright fringes in a diffraction pattern can be determined using the formula for single-slit diffraction: W = λL / w,
where W is the width of the bright fringe, λ is the wavelength of light, L is the distance from the slit to the screen, and w is the width of the slit.
The width of the slit is 0.57 mm, the wavelength of light is 516 nm (or 516 × 10⁻⁹ m), and the distance from the slit to the screen is 128 cm (or 1.28 m):
W₁ = (516 × 10⁻⁹ m × 1.28 m) / (0.57 × 10⁻³ m) ≈ 0.126 mm
similarly we can calculate the W2 :
2-W₂ = 2 × 0.126 mm ≈ 0.252 mm
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In the following circuit, the two diodes are identical with a transfer characteristic shown in the figure. For an input with triangular waveform and circuit components listed in the table, answer the following questions. Table 1 Circuit Parameters a) find Vin ranges that turns diodes ON or OFF? b) draw circuit transfer characteristic (Vout versus Vin)? Vcc 4 [V] VON 1 [V] R₁ R₁ D₂ 2k [Ω] R₂ 1k [92] ww Vout R₂ 1k [92] ਨੀਤੀ D₁ R₂ Vin (N) KH Table 2. Answers Vout +Vcc T-Vcc R3 Vin VON V₂ Both Diodes OFF One Diode ON and the Other Diode OFF Both Diodes ON Vin Vin>-2V -3V
In the given circuit,
a) if the input voltage is between -1V to 1V, then one diode will be ON and the other diode will be OFF. If the input voltage is greater than 1V, then both diodes will be ON.
b) the transfer characteristic for the circuit is:
Vout = (1/3) * Vin
a) Vin ranges that turn diodes ON or OFF
In the given circuit, the two diodes are identical with a transfer characteristic shown in the figure.
For an input with triangular waveform and circuit components listed in the table, the Vin ranges that turn diodes ON or OFF are:
If the input voltage is less than -1V, then both the diodes will be OFF. If the input voltage is between -1V to 1V, then one diode will be ON and the other diode will be OFF. If the input voltage is greater than 1V, then both diodes will be ON.
b) Circuit transfer characteristic (Vout versus Vin)The transfer characteristic (Vout versus Vin) for the given circuit is shown below:
the transfer characteristic for the circuit is:
Vout = (1/3) * Vin
Thus if the input voltage is less than -1V, then both the diodes will be OFF. If the input voltage is between -1V to 1V, then one diode will be ON and the other diode will be OFF. If the input voltage is greater than 1V, then both diodes will be ON and the transfer characteristic for the circuit is Vout = (1/3) * Vin
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A sharp image is located 321 mm behind a 214 mm focal-length converging lens. Find the object distance. Give answer in mm. Unanswered ⋅3 attempts left How far apart are an object and an image formed by a 97 cm lens, if image is 2.6 larger than the object and real? Give answer in cm. Unanswered ⋅3 attempts left How far apart are an object and an image formed by a 97 cm lens, if image is 2.6 larger than the object and virtual? Give answer in cm. Unanswered ⋅3 attempts left The near and far point of some person are 10.9 cm and 22.0 respectively. She got herself the perfect contacts for driving. What is the near point of this person with lens in place? Give answer is cm.
Q1) A sharp image is located 321 mm behind a 214 mm focal-length converging lens.
Find the object distance.
Give answer in mm.
Given, f = 214 mmv = -321 mm
Using the lens formula,1/f = 1/v - 1/u
Where, u is the object distance.
Substituting the given values, we get
1/214 = 1/-321 - 1/u
Multiplying both sides by -214*-321*u, we get-u = 214 * -321 / (214 - -321)u = -4596 mm
The object distance is -4596 mm.
Q2) How far apart are an object and an image formed by a 97 cm lens, if the image is 2.6 larger than the object and real? Give the answer in cm.
Given, f = 97 cm
Image is real and 2.6 times larger than the object.
u = ?
Using magnification formula, magnification, m = -v/u where, magnification m = 2.6for real images, v is negative and for virtual images, v is positive.
Substituting the given values,2.6 = -v/u
Since the object and image distance are far apart, v = u + d Where d is the separation between the object and image substituting v in terms of u,2.6 = -(u + d)/u Simplifying the above expression, we get u = -36.154 cm
Therefore, the object and image distance is 36.154 cm apart.
Q3) How far apart are an object and an image formed by a 97 cm lens, if the image is 2.6 larger than the object and virtual? Give the answer in cm.
Given,
f = 97 cm Image is virtual and 2.6 times larger than the object.
u = ?
Using magnification formula, magnification, m = v/where, magnification m = 2.6for real images, v is negative and for virtual images, v is positive. Substituting the given values,2.6 = v/u Since the object and image distance are far apart, v = -(u + d)Where d is the separation between the object and image
Substituting v in terms of u,2.6 = (u + d)/u
Simplifying the above expression, we get u = 30.4 cm
Therefore, the object and image distance is 30.4 cm apart.
Q4) The near and far point of some person are 10.9 cm and 22.0, respectively. She got herself the perfect contacts for driving. What is the near point of this person with the lens in place? Give the answer is cm.
Given,v1 = 10.9 cmv2 = 22.0 cm
Using the formula, lens formula,1/f = 1/v1 - 1/u
Where, u is the distance of the lens from the near point of the eye.
Substituting the given values, we get1/f = 1/10.9 - 1/u
Simplifying the above expression, we get u = -35.5 cm
Using the formula, lens formula,1/f = 1/v2 - 1/u Where, u is the distance of the lens from the far point of the eye.
Substituting the given values, we get1/f = 1/22 - 1/u
Simplifying the above expression, we get u = 77 cm
The near point of the person with the lens in place is at a distance of
35.5 cm.
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the circuit diagram of an N-channel E-MOSFET Lamp Driver. Given the VGS(THI)=0 V. (a) Does the MOSFET act as a switch or an amplifier?. (b) Explain briefly the operation of the circuit? ( (c) What is the purpose of the Diode in the circuit?
a) The MOSFET in the circuit acts as a switch. b) The circuit operates by controlling the conductivity of the MOSFET through the gate voltage. Above the threshold voltage, the MOSFET turns on and allows current flow. Below the threshold voltage, the MOSFET turns off, interrupting current flow. c) The diode in the circuit serves to provide a path for reverse current when the MOSFET turns off. It prevents voltage spikes and safeguards the MOSFET by allowing the inductive load to discharge energy through the diode.
In this circuit, the MOSFET acts as a switch because it is not used as an amplifier, and the input signal is not amplified by the MOSFET.
b) The circuit operates as follows: When the voltage source Vcc is connected to the circuit, current flows through the resistor R1 and LED, which produces light. The MOSFET is in the OFF state since there is no voltage at the gate. When the switch is closed, current flows through the resistor R2 and into the gate, turning the MOSFET ON. The LED then emits light at its maximum brightness.
The MOSFET remains ON even when the switch is opened since a small current is flowing through the MOSFET gate, which keeps the MOSFET in the ON state. When the switch is closed again, the current flows through R2, which turns off the MOSFET, and the LED stops emitting light.
c) The diode in the circuit is connected in parallel with the LED and acts as a flyback diode to provide a path for the current flowing in the LED to continue flowing even when the MOSFET turns off. As a result, it protects the MOSFET from high-voltage spikes generated by the inductive load (LED) when the MOSFET turns off.
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The note Middle A on a piano has a frequency of 440 Hz. a. If someone is playing Middle A on the piano and you want to hear Middle B instead (493.883 Hz), with what velocity should you move? b. How about if you want Middle C (256 Hz)? c. What is the wavelength of Middle C?
a. To hear Middle B (493.883 Hz) instead of Middle A (440 Hz) on the piano, you should move with a velocity that is 12% faster than your current velocity.
b. To hear Middle C (256 Hz) instead of Middle A (440 Hz) on the piano, you should move with a velocity that is approximately 49% slower than your current velocity.
c. For Middle C (256 Hz), the wavelength would be approximately 1.34 meters.
The frequency of a sound wave is directly proportional to the velocity of the source. To hear a higher frequency (Middle B) than the original frequency (Middle A), you need to increase your velocity. Since Middle B has a frequency that is 12% higher than Middle A, you would need to increase your velocity by approximately 12%.
Conversely, to hear a lower frequency (Middle C) than the original frequency (Middle A), you need to decrease your velocity. Middle C has a frequency that is approximately 42% lower than Middle A, so you would need to slow down your velocity by approximately 49% to hear Middle C.
The wavelength of a sound wave can be calculated using the formula λ = v/f, where λ represents the wavelength, v represents the velocity of sound, and f represents the frequency. For Middle C with a frequency of 256 Hz and assuming a velocity of sound in air of approximately 343 meters per second, the wavelength is calculated to be approximately 1.34 meters. This means that the distance between two consecutive peaks or troughs of the sound wave is 1.34 meters.
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A 1.00−cm-high object is placed 3.98 cm to the left of a converging lens of focal length 7.58 cm. A diverging lens of focal length −16.00 cm is 6.00 cm to the right of the converging lens. Find the position and height of the final image. Is the image inverted or upright? Is the image real or virtual?
Hence, the final image is formed at a distance of −12.20 cm from the object. It is inverted and real.
Given data:
The height of the object, h1 = 1.00 cmDistance of the object, u = −3.98 cmFocal length of the converging lens, f1 = 7.58 cmDistance between converging and diverging lens, d = 6.00 cmFocal length of the diverging lens, f2 = −16.00 cmHeight of the final image, h2 = ?Let the final image be formed at a distance v from the diverging lens.So,
The distance of the object from the converging lens, v1 = d − u = 6.00 cm − (−3.98 cm) = 9.98 cmUsing the lens formula for the converging lens, we have:1/v1 - 1/f1 = 1/u1/v1 - 1/7.58 = 1/−3.98v1 = −13.83 cmThis means that the diverging lens is placed at v2 = d + v1 = −6.00 + (−13.83) = −19.83 cm from the object.
Using the lens formula for the diverging lens, we have:1/v2 - 1/f2 = 1/u2, where u2 = −d = −6.00 cm.1/v2 - 1/(−16.00) = 1/(−6.00)v2 = −12.20 cmThe negative sign of v2 indicates that the image is formed on the same side as the object.
The magnification produced by the converging lens is given as:M1 = −v1/u1 = 13.83/3.98 = 3.47The magnification produced by the diverging lens is given as:M2 = −v2/u2 = 12.20/6.00 = 2.03Therefore,
the net magnification is given as:M = M1 × M2 = −3.47 × 2.03 = −7.05The negative sign indicates that the image is inverted.The height of the final image is given as:h2 = M × h1 = −7.05 × 1.00 = −7.05 cmThe negative sign indicates that the image is inverted.
Hence, the final image is formed at a distance of −12.20 cm from the object. It is inverted and real.
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Long, long ago, on a planet far, far away, a physics experiment was carried out. First, a 0.210-kgkg ball with zero net charge was dropped from rest at a height of 1.00 mm. The ball landed 0.450 ss later. Next, the ball was given a net charge of 7.75 μCμC
and dropped in the same way from the same height. This time the ball fell for 0.650 ss before landing.
What is the electric potential at a height of 1.00 mm above the ground on this planet, given that the electric potential at ground level is zero? (Air resistance can be ignored.)
The electric potential at a height of 1.00 mm above the ground on the planet is approximately -12.0 V, assuming the electric potential at ground level is zero.
When the uncharged ball is dropped from a height of 1.00 mm and lands after 0.450 s, it only experiences the force of gravity. The work done by gravity is equal to the change in potential energy, which can be calculated as mgh, where m is the mass of the ball, g is the acceleration due to gravity, and h is the height.
For the charged ball, the force of gravity is acting on it as well as the electric force due to its charge. The work done by the electric force is equal to the change in electric potential energy, which can be calculated as qΔV, where q is the charge of the ball and ΔV is the change in electric potential.
Comparing the falling times of the charged and uncharged ball, we can write an equation: mgh = qΔV. Solving for ΔV, we find that it is equal to (mgh)/q. Substituting the given values, we get ΔV = (0.210 kg * 9.8 m/[tex]s^{2}[/tex] * 0.001 m) / (7.75 μC * [tex]10^{-6}[/tex] C/μC), which is approximately -12.0 V.
Therefore, the electric potential at a height of 1.00 mm above the ground on the planet, with zero electric potential at ground level, is approximately -12.0 V.
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Determine which of the following arguments about the magnetic field of an iron-core solenoid are not always true.
a. Increase I, increase B
b. Decrease I, decrease B
c. B = 0 when I = 0
d. Change the direction of I, change the direction of B
Of the following arguments about the magnetic field of an iron-core solenoid are not always true. the arguments c and d are not always true
The arguments about the magnetic field of an iron-core solenoid that are not always true are c. "B = 0 when I = 0" and d. "Change the direction of I, change the direction of B."
c. While it is true that the magnetic field (B) of an iron-core solenoid is proportional to the current (I) passing through it, it does not necessarily mean that the field becomes zero when the current is zero. This is because the iron core in the solenoid can retain some magnetization, even when the current is zero. This residual magnetization in the iron core can contribute to a nonzero magnetic field.
d. The direction of the magnetic field (B) inside the solenoid depends on the direction of the current (I) flowing through it, according to the right-hand rule. However, changing the direction of the current does not always result in an immediate change in the direction of the magnetic field. This is because the magnetic field inside the iron core of the solenoid takes some time to adjust to the new current direction due to the magnetic properties of the iron core. Therefore, there may be a brief delay before the magnetic field aligns with the new current direction.
In summary, the arguments c and d are not always true for an iron-core solenoid due to the presence of residual magnetization in the core and the time delay in changing the direction of the magnetic field when the current direction changes.
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R1 ww Ra Μ R₁ = 3,65 Ω R2 = 5.59 Ω If resistors R₁ and R₂ are connected as shown in the figure, What is the equivalent resistance? Ο 0.45 Ω Ο 2.21 Ω Ο 9.24 Ω Ο 0.11 Ω
The equivalent resistance of the given circuit, with resistors R₁ and R₂ connected as shown in the figure, is 2.21 Ω.
To calculate the equivalent resistance, we need to determine the total resistance when R₁ and R₂ are combined. In this case, the resistors are connected in parallel, so we can use the formula for calculating the total resistance of parallel resistors:
[tex]1/R_{total = 1/R_1 + 1/R_2[/tex]
Substituting the given resistance values:
[tex]1/R_{total = 1/3.65[/tex] Ω [tex]+ 1/5.59[/tex] Ω
To simplify the calculation, we can find the least common denominator (LCD) of the fractions:
[tex]1/R_{total = (5.59 + 3.65)/(3.65 *5.59)[/tex]
[tex]1/R_{total = 9.24/20.4035[/tex]
[tex]R_{total = 20.4035/9.24[/tex]
[tex]R_{total =2.21[/tex]Ω
Therefore, the equivalent resistance of the circuit is approximately 2.21 Ω.
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A long straight wire (diameter =3.2 mm ) carries a current of 19 A. What is the magnitude of the magnetic field 0.8 mm from the axis of the wire? (Note: the point where magnetic field is required is inside the wire). Write your answer in milli- tesla Question 7 A long solenoid (1,156 turns/m) carries a current of 26 mA and has an inside diameter of 4 cm. A long wire carries a current of 2.9 A along the axis of the solenoid. What is the magnitude of the magnetic field at a point that is inside the solenoid and 1 cm from the wire? Write your answer in micro-tesla.
The magnitude of the magnetic field at a point that is inside the solenoid and 1 cm from the wire is 24.6 micro-tesla.
The magnetic field can be calculated as follows: B = μ₀ I/2 r (for a current carrying long straight wire) where B is the magnetic field, μ0 is the permeability of free space, I is the current, and r is the distance from the wire axis.
Magnetic field due to a current-carrying wire can be expressed using the equation:
B = μ₀ I / 2 r,
Where, μ₀ = 4π x 10⁻⁷ T m/AB = μ₀ I / 2 r = 4 x π x 10⁻⁷ x 19 / 2 x (0.8 x 10⁻³) = 7.536 x 10⁻⁴ T = 753.6 mT (rounded off to 1 decimal place)
The magnitude of the magnetic field at a point 0.8 mm from the axis of the wire is 753.6 milli-Tesla.
The magnitude of the magnetic field at a point inside the solenoid 1 cm from the wire can be calculated using the equation:
B = μ₀ NI / L, Where, μ₀ = 4π x 10⁻⁷ T m/AN is the number of turns per unit length of the solenoid
L is the length of the solenoid
B = μ₀ NI / L = 4π x 10⁻⁷ x 1156 x 26 x 10⁻³ / 0.04m = 24.57 x 10⁻⁶ T = 24.6 µT (rounded off to 1 decimal place)
Hence, the magnitude of the magnetic field at a point that is inside the solenoid and 1 cm from the wire is 24.6 micro-tesla.
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Calculate the equivalent resistance of a 18052 resistor connected in parallel 6602 resistor.
The equivalent resistance of the 180 Ω resistor and the 66 Ω resistor connected in parallel is approximately 48.2939 Ω.
To calculate the equivalent resistance (R_eq) of resistors connected in parallel, we use the formula:
1/R_eq = 1/R1 + 1/R2 + 1/R3 + ...
In this case, we have two resistors connected in parallel: a 180 Ω resistor (R1) and a 66 Ω resistor (R2). Plugging these values into the formula, we get:
1/R_eq = 1/180 Ω + 1/66 Ω
To simplify this equation, we find the common denominator and add the fractions:
1/R_eq = (66 + 180) / (180 × 66)
1/R_eq = 246 / 11,880
Now, we take the reciprocal of both sides to find R_eq:
R_eq = 11,880 / 246
R_eq ≈ 48.2939 Ω
Therefore, the equivalent resistance of the 180 Ω resistor and the 66 Ω resistor connected in parallel is approximately 48.2939 Ω.
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The flat dome of the sky is thought of as the Celestial Sphere. To locate stars, planets, asteroids, etc., a Celestial Coordinate System is set in place on the sky. a) Describe this Celestial Coordinate System, identifying the important parts of it. Do the coordinates of the stars ever change in this System? Do the Coordinates of the Planets ever change? Give reasons for these answers.
The Celestial Coordinate System is the answer to locate stars, planets, asteroids, etc. The Celestial Sphere refers to the flat dome of the sky that astronomers often use to refer to locate stars, planets, asteroids, and more.
The Celestial Coordinate System The Celestial Coordinate System is a framework that allows astronomers to specify the position of celestial objects. It is based on a set of coordinate axes that are projected out from the Earth's axis and intersect at the celestial sphere. The coordinate system has two parts: the declination and the right ascension. Declination, or declination angle, is equivalent to latitude on Earth.
It measures the angle north or south of the celestial equator. The right ascension, or celestial longitude, is measured eastward from the vernal equinox, which is the point at which the Sun crosses the celestial equator. Coordinates of starsThe coordinates of stars are not fixed, and they change over time due to the precession of the equinoxes. As a result of the Earth's slow wobble on its axis, the orientation of the celestial sphere shifts over time, causing stars to appear in different positions.
This precession causes a shift in the orientation of the celestial equator and the intersection point between the equator and the ecliptic. Thus, the coordinates of stars change over time. Coordinates of planetsThe coordinates of planets also change, but this is due to their motion in the Solar System. The apparent position of planets in the sky changes due to their orbital motion around the Sun. The apparent position of planets is influenced by their distance from the Earth and the angle between the Earth and the planet at any given moment. As a result, the coordinates of planets change over time.
The Celestial Coordinate System has two parts: the declination and the right ascension. Declination is equivalent to latitude on Earth, and the right ascension is measured eastward from the vernal equinox. The coordinates of stars change over time due to the precession of the equinoxes, whereas the coordinates of planets change due to their motion in the Solar System.
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Which axis is drawn to the longest dimension of an elliptical orbit? Major Axis Minor Axis Eccentricity
The major axis is drawn to the longest dimension of an elliptical orbit.The minor axis, on the other hand, is drawn perpendicular to the major axis and represents the shortest dimension of the ellipse.
In an elliptical orbit, the major axis is the line segment that connects the two farthest points of the ellipse. It is also referred to as the longest dimension of the ellipse. The major axis passes through the center of the ellipse and is perpendicular to the minor axis.
The major axis determines the overall size and shape of the elliptical orbit. It represents the maximum distance between the two foci of the ellipse. The foci are the two fixed points within the ellipse, and the sum of their distances to any point on the ellipse remains constant.
By drawing the major axis, we can define the major axis length, which helps determine the size and scale of the elliptical orbit.
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Compare and contrast series and parallel circuits; Include voltage and current distribution, effective resistance;
Series and parallel circuits are two common arrangements of electrical components in a circuit. Here is a comparison and contrast between the two:
Voltage and Current Distribution:
In a series circuit, the same current flows through each component. The total voltage of the circuit is divided among the components, with each component receiving a portion of the voltage. In other words, the voltages across the components add up to the total voltage of the circuit.
In a parallel circuit, the voltage across each component is the same. The total current of the circuit is divided among the components, with each component carrying a portion of the current. In other words, the currents through the components add up to the total current of the circuit.
Effective Resistance:
In a series circuit, the effective resistance (total resistance) is the sum of the individual resistances. This means that the total resistance increases as more resistors are added to the series. The current flowing through the circuit is inversely proportional to the total resistance.
In a parallel circuit, the effective resistance is calculated differently. The reciprocal of the total resistance is equal to the sum of the reciprocals of the individual resistances. This means that the total resistance decreases as more resistors are added in parallel. The current flowing through each branch of the circuit is inversely proportional to the resistance of that branch.
Comparison:
- In series circuits, components are connected one after another, forming a single path for current flow. In parallel circuits, components are connected side by side, providing multiple paths for current flow.
- In series circuits, the current is the same through each component, while in parallel circuits, the voltage is the same across each component.
- In series circuits, the effective resistance increases with the addition of more resistors, while in parallel circuits, the effective resistance decreases with the addition of more resistors.
Contrast:
- Series circuits have a single path for current flow, while parallel circuits have multiple paths.
- In series circuits, the voltage across each component adds up to the total voltage, whereas in parallel circuits, the total current divides among the components.
- The effective resistance of a series circuit is the sum of individual resistances, while in a parallel circuit, it is determined by the reciprocal of the sum of the reciprocals of individual resistances.
Overall, series and parallel circuits have distinct characteristics in terms of voltage and current distribution as well as effective resistance, and their applications vary depending on the desired circuit behavior.
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An Aeroplane considered punctual, flies at a fixed altitude h = 500 m with a constant speed vA = 240 km /h. It releases a package C of supposedly point mass m, at t =0, when it passes vertical to the point O, the origin of the marker associated with the terrestrial reference frame of the study. The package touches the ground at a point P such as OP = 670 m. All friction forces due to air will be neglected.
What is the initial speed of the package?
The package takes approximately 0.00279 hours (10.04 seconds) to reach the ground. The horizontal displacement remains constant at 670 m, and the vertical displacement is determined by the equation t^2 = (2h) / g, resulting in a height of 500 m.
The punctual airplane releases a package at a fixed altitude and constant speed. The package reaches the ground at a specific point, and friction forces are disregarded.
Considering the given scenario, where the airplane is flying at a fixed altitude of 500 m with a constant speed of 240 km/h, it releases a package at time t = 0 when it passes vertically over the origin point O. The package's trajectory can be analyzed to determine its motion.
Since the package reaches the ground at point P with a distance OP of 670 m, we can infer that the horizontal displacement of the package, denoted as x, is 670 m. Since the airplane maintains a constant speed throughout, the horizontal velocity of the package, denoted as vx, will also be constant.
The time taken by the package to reach the ground can be calculated using the equation of motion: x = v*t, where x is the displacement, v is the velocity, and t is the time. Rearranging the equation, we have t = x / v. Substituting the given values, t = 670 m / (240 km/h) = 670 m / (240,000 m/h) = 0.00279 hours.
To determine the vertical motion of the package, we can use the equation of motion for constant acceleration: h = (1/2) * g * t^2, where h is the height, g is the acceleration due to gravity, and t is the time. Rearranging the equation, we have t^2 = (2h) / g. Substituting the given values, t^2 = (2 * 500 m) / (9.8 m/s^2) = 102.04 s^2.
Therefore, the package takes approximately 0.00279 hours (10.04 seconds) to reach the ground. The horizontal displacement remains constant at 670 m, and the vertical displacement is determined by the equation t^2 = (2h) / g, resulting in a height of 500 m. Neglecting friction forces, these calculations provide an understanding of the motion of the package released by the punctual airplane.
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An object is placed 45 cm to the left of a converging lens of focal length with a magnitude of 25 cm. Then a diverging lens of focal length of magnitude 15 cm is placed 35 cm to the right of this lens. Where does the final image form for this combination? Please give answer in cm with respect to the diverging lens, using the appropriate sign conventioIs the image in the previous question real or virtual?
The image distance from the diverging lens is 75.18 cm. The positive sign indicates that the image is formed to the right of the lens. Answer: The final image will form 75.18 cm to the right of the diverging lens. The image formed is virtual.
The given problem is related to the formation of the final image by using the combination of the converging and diverging lenses. Here, we have to calculate the distance of the final image from the diverging lens and we need to also mention whether the image is real or virtual. The focal length of the converging lens is 25 cm and the focal length of the diverging lens is 15 cm. The distance of the object from the converging lens is given as 45 cm.Now, we will solve the problem step-by-step.
Step 1: Calculation of image distance from the converging lensWe can use the lens formula to find the image distance from the converging lens. The lens formula is given as:1/f = 1/v - 1/uwhere, f = focal length of the lensv = distance of the image from the lensu = distance of the object from the lensIn this case, the focal length of the converging lens is f = 25 cm. The distance of the object from the converging lens is u = -45 cm (since the object is placed to the left of the lens). We have to put the negative sign because the object is placed to the left of the lens.Now, we will calculate the image distance v.v = (1/f + 1/u)-1/v = 1/25 + 1/-45 = -0.04v = -25 cm (by putting the value of 1/v in the equation)Therefore, the image distance from the converging lens is -25 cm. The negative sign indicates that the image is formed to the left of the lens.
Step 2: Calculation of distance between the converging and diverging lens Now, we have to calculate the distance between the converging and diverging lens. This distance will be equal to the distance between the image formed by the converging lens and the object for the diverging lens. We can calculate this distance as follows:Object distance from diverging lens = image distance from converging lens= -25 cm (as we have found the image distance from the converging lens in the previous step)Now, we have to calculate the distance between the object and the diverging lens. The object is placed to the right of the converging lens. Therefore, the distance of the object from the diverging lens will be:Distance of object from diverging lens = Distance of object from converging lens + Distance between the two lenses= 45 cm + 35 cm= 80 cm Therefore, the distance of the object from the diverging lens is 80 cm.
Step 3: Calculation of image distance from the diverging lensWe can again use the lens formula to calculate the image distance from the diverging lens. This time, the object is placed to the right of the diverging lens, and the lens is diverging in nature. Therefore, the object distance and the focal length of the lens will be positive. The lens formula in this case is given as:1/f = 1/v - 1/uwhere, f = focal length of the lensv = distance of the image from the lensu = distance of the object from the lensIn this case, the focal length of the diverging lens is f = -15 cm (since it is diverging in nature).
The distance of the object from the diverging lens is u = 80 cm.Now, we will calculate the image distance v.v = (1/f + 1/u)-1/v = 1/-15 + 1/80 = 0.0133v = 75.18 cm (by putting the value of 1/v in the equation)Therefore, the image distance from the diverging lens is 75.18 cm. The positive sign indicates that the image is formed to the right of the lens. Answer: The final image will form 75.18 cm to the right of the diverging lens. The image formed is virtual.
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A clock moves along the x axis at « a speed of 0.497c and reads zero as it passes the origin. (a) Calculate the clock's Lorentz factor. (b) What time does the clock read as it passes x = 266 m? (a) Number ___________ Units _______________
(b) Number ___________ Units _______________
The Lorentz factor is approximately 1.066. The time the clock reads as it passes x = 266m is approximately 1.79 × 10^-6 s.
(a) Lorentz factor
The Lorentz factor can be calculated using the formula:
Lorentz factor = 1 / sqrt(1 - (v^2/c^2))
Where:
v = speed
c = speed of light
Let's plug in the given values:
Lorentz factor = 1 / sqrt(1 - (0.497c/c)^2)
Lorentz factor = 1 / sqrt(1 - 0.497^2)
Lorentz factor = 1.066 (approx)
Therefore, the Lorentz factor is approximately 1.066.
(b) Time taken
We know that speed = distance/time. Let's calculate the time taken by the clock to reach x = 266m using the above formula.
t = d / v
where:
v = speed
c = speed of light
d = distance = 266m
t = 266 / (0.497c)
t = 266 / (0.497 × 3 × 10^8)
t = 1.79 × 10^-6 s
Therefore, the time the clock reads as it passes x = 266m is approximately 1.79 × 10^-6 s.
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Charges moving in a uniform magnetic field are subject to the same magnetic force regardless of their direction of motion Select one o True o False
The correct statement between the following options is: Charges moving in a uniform magnetic field are subject to the same magnetic force regardless of their direction of motion. True
How magnetic field affect a moving charge? When a charged particle is moving in a magnetic field, it experiences a magnetic force that acts perpendicularly to the direction of motion of the charge and to the direction of the magnetic field. The magnetic force that acts on the charge is responsible for changing the velocity of the charge in a manner that causes the particle to move in a circular path.The magnitude of the magnetic force is proportional to the magnitude of the charge, the velocity of the charge, and the magnetic field strength. The direction of the magnetic force can be determined using the right-hand rule.
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A car that starts from rest with a constant acceleration travels 40 m in the first 5 S. The car's acceleration is O 0.8 m/s^2 he O 1.6 m/s^2 O 3.2 m/s^2 O 16 m/s^2
A car that starts from rest with a constant acceleration travels 40 m in the first 5 s.
The car's acceleration is 3.2 m/s².
The acceleration of the car can be determined by using the formula below:
s = ut + (1/2)at²
Here,
u = initial velocity of the car (0)
m = distance traveled by the car (40m)
t = time taken by the car (5s)
a = acceleration of the car (unknown)
Substituting the values in the formula above and solving for a;
40 = 0 + (1/2)a(5)²
40 = 12.5a
a = 40/12.5
a = 3.2m/s²
Therefore, the car's acceleration is 3.2 m/s².
The distance it travels in the first 5s is irrelevant in finding the acceleration.
We only need the distance, time and initial velocity of an object to determine the acceleration.
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An object of mass 2 kg is launched at an angle of 30° above the ground with an initial speed of 40 m/s. Neglecting air resistance, calculate: i. the kinetic energy of the object when it is launched from the the ground. ii. the maximum height attained by the object. iii. the speed of the object when it is 12 m above the ground. According to a local scientist, a typical rain cloud at an altitude of 2 m will contain, on average, 3×107 kg of water vapour. Determine how many hours it would take a 2.5 kW pump to raise the same amount of water from the Earth's surface to the cloud's position. In Figure 1, two forces F₁ and F₂ act on a 5 kg object that is initially at rest. If the magnitude of each force is 10 N, calculate the acceleration produced. F₂ L 60.0⁰ - F₁ Figure 1
The kinetic energy of the object at the launching point is 1600 J. Thus, the maximum height attained by the object is 40 m. Therefore, the acceleration produced is 3.464 m/s².
The given values are, Initial Velocity of the object, u = 40 m/s Angle of projection, θ = 30° Mass of the object, m = 2 kg
Let's find the solution to each of the given parts.
i. Kinetic Energy of the object: At the launching point, KE = 1/2mu² = 1/2×2×40² = 1600 J
Thus, the kinetic energy of the object at the launching point is 1600 J.
ii. Maximum height attained by the object: We know that the vertical displacement, y = (u² sin²θ)/2g
Maximum height of the object is given by, ymax = y = (u² sin²θ)/2g = (40² sin²30°)/2 × 9.8 = 40 m
Thus, the maximum height attained by the object is 40 m.
iii. Velocity of the object at 12 m above the ground: Let's use the equation of motion, v² = u² + 2ghHere, h = 12 m, u = 40sinθ = 20 m/s, and g = 9.8 m/s²v² = (20)² + 2×9.8×12v² = 400 + 235.2v = √635.2v = 25.2 m/s
Thus, the velocity of the object when it is 12 m above the ground is 25.2 m/s.2. The given values are, Power of the pump, P = 2.5 kW Mass of water vapour, m = 3 × 10⁷ kg Let the height of the cloud be h.
Now, we know that the work done is given by,W = mgh
For a unit mass, work done is the product of weight and distance. That is,W = Fd Work done by the pump to lift a unit mass by height h is P × t Where t is the time taken to lift the unit mass by height h.Work done by the pump = mgh P × t = mgh
Therefore, t = mgh/P = (3 × 10⁷ × 9.8 × h)/(2.5 × 10³) = 11.76h hours
Thus, it will take 11.76h hours to lift the given amount of water vapour from the earth’s surface to the cloud's position.
3. In Figure 1, we can resolve forces into their horizontal and vertical components as shown below:F1 and F2 are in the opposite direction and both have the same magnitude.
Therefore,F1 = F2 = 10 N
The vertical component of F1 and F2 is given as:∑Fy = F2 sin60° - F1 sin60° = 10 × sin60° = 8.66 N
The horizontal component of F1 and F2 is given as:∑Fx = F1 + F2 cos60° = 10 + 10 × cos60° = 15 N
Thus, the net force acting on the object is Fnet = √(∑Fx² + ∑Fy²)F net = √(15² + 8.66²) = 17.32 N
We know that, Force = Mass × Acceleration
Thus, the acceleration produced is :a = F net/m = 17.32/5 = 3.464 m/s²
Therefore, the acceleration produced is 3.464 m/s².
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H A man drags a 72-kg crate across the floor at a constant velocity by pulling on a strap attached to the bottom of the crate. The crate is tilted 25 ∘
above the horizontal, and the strap is inclined 61 ∘
above the horizontal. The center of gravity of the crate coincides with its geometrical center, as indicated in the drawing. Find the magnitude of the tension in the strap.
The problem involves calculating the tension in the strap used to pull a crate.
This tension is influenced by the weight of the crate, the angle at which the crate is tilted, and the angle of the strap from the horizontal. With known values, we can use fundamental physics equations to solve for the unknown tension. Let's break this down. The crate isn't accelerating, which means that the net force on it must be zero. Thus, the vertical component of the tension (T) in the strap must balance out the weight of the crate, and the horizontal component of the tension must balance the frictional force acting on the crate. Given the weight (W) of the crate is 72 kg * 9.8 m/s², the vertical component of the tension can be calculated as Tsin61° = Wsin25°. Solving for T gives us the tension in the strap.
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A hockey puck moving at 0.44 m/s collides elastically with another puck that was at rest. The pucks have equal mass. The first puck is deflected 39° to the right and moves off at 0.34 m/s. Find the speed and direction of the second puck after the collision.
The speed and direction of the second puck after the collision are 0.44 m/s to the right. Let's consider the first puck that was moving at 0.44 m/s before the collision and after the collision moves at 0.34 m/s and at an angle of 39° to the right. We can calculate the velocity vectors of the two pucks before and after the collision, as well as the momentum vectors before and after the collision.
The momentum and velocity vectors can be calculated as follows: Puck 1 initial velocity: v₁ = 0.44 m/s to the right. Puck 1 initial momentum: p₁ = m₁v₁Puck 1 final velocity: v₁' = 0.34 m/s at 39° to the rightPuck 1 final momentum: p₁' = m₁v₁'Puck 2 initial velocity: v₂ = 0 m/s. Puck 2 initial momentum: p₂ = m₂v₂Puck 2 final velocity: v₂'Puck 2 final momentum: p₂' Using the law of conservation of momentum, we can say that:p₁ + p₂ = p₁' + p₂'Therefore, since both pucks have equal mass, m₁ = m₂=p₁ = p₁' + p₂' The x-component of the momentum is conserved since there are no external forces acting in the horizontal direction. p₁x = p₁'x + p₂'xp₁x = m₁v₁ cosθ₁p₁'x = m₁v₁' cosθ₁'p₂'x = m₂v₂' cosθ₂'θ₁ = 0° (initial direction is to the right)θ₁' = 39° (final direction is to the right and up)θ₂' = θ₁' - 90° = -51° (final direction is to the left and up). Therefore,p₁x = p₁'x + p₂'xm₁v₁ = m₁v₁' cosθ₁' + m₂v₂' cosθ₂'m₁v₁ = m₁v₁' cos39° + m₂v₂' cos(-51°)The mass of the pucks is equal so we can simplify this equation to:v₁ = v₁' cos39° + v₂' cos(-51°)Substituting the given values,0.44 m/s = 0.34 m/s cos39° + v₂' cos(-51°)Solving for v₂',v₂' = (0.44 m/s - 0.34 m/s cos39°)/cos(-51°) = 0.44 m/s to the right (rounded to two significant figures)
Hence, the speed and direction of the second puck after the collision are 0.44 m/s to the right.
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The exact prescription for the contact lenses should be 203 diopters What is the timest distance car pour trat she can see clearly without vision correction? (State answer in centimeters with 1 digit right of decimal. Do not include unit in ans)
The time distance or near point at which she can see clearly without vision correction is approximately 0.5 cm.
The time distance or near point is the closest distance at which a person can see clearly without vision correction.
To calculate the time distance, we need to use the formula:
Time Distance (in meters) = 1 / Near Point (in diopters)
Given that the prescription for the contact lenses is 203 diopters, we can plug this value into the formula to find the time distance:
Time Distance = 1 / 203
Calculating this, we get:
Time Distance = 0.004926108374
To convert this to centimeters, we multiply by 100:
Time Distance = 0.4926108374 cm
Rounding to one decimal place, the time distance at which she can see clearly without vision correction is approximately 0.5 cm.
In summary, the time distance at which she can see clearly without vision correction is approximately 0.5 cm.
This is calculated using the formula Time Distance = 1 / Near Point, where the near point is given as 203 diopters.
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When a voltage-gated sodium lon channel opens in a cell membrane, Na fons flow through at the rate of 1.1 x 10⁸ ions/s. Part A What is the current through the channel? Express your answer with the appropriate units. I = _________ Value _________ Units Part B What is the power dissipation in the channel if the membrane potential is -70 mV? E
xpress your answer with the appropriate units. P = __________ Value _______ Units
The electrical current through the channel is 10.62 mA/cm². The power dissipation in the channel is 1.13 x 10⁻⁴ W/cm².
Part A: The electrical current through the channel is given by the formula below:
I = nFJ, where J is the ion flux density (ions/s.cm2), n is the number of charges per ion (1 for Na), and F is the Faraday constant (96,485 C/mol).
I = nFJ = (1)(96,485 C/mol)(1.1 x 10⁸ ions/s.cm²) = 10.62 mA/cm².
Therefore, the current through the channel is 10.62 mA/cm².
Part B: The power dissipation in the channel can be calculated using the formula:
P = I²R = (I²/σA)(L/Δx)Where R is the resistance of the channel, A is the cross-sectional area of the channel, σ is the specific conductivity of the channel, L is the length of the channel, and Δx is the thickness of the membrane.
Δx is generally very small (on the order of 10-8 cm), so we can assume that the channel is a planar slab with an area of A = 10⁻⁴ cm² and a length of L = 10⁻⁴ cm.
The specific conductivity of the channel is about 0.01 S/cm², and the resistance of the channel is R = 1/σA = 10⁷ Ω.
P = I²R = (10.62 mA/cm²)²(10⁷ Ω) = 1.13 x 10⁻⁴ W/cm².
Therefore, the power dissipation in the channel is 1.13 x 10⁻⁴ W/cm².
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In February 1955, a paratrooper fell 370 m from an airplane without being able to open his chute but happened to land in snow, suffering only minor injuries. Assume that his speed at impact was 60 m/s (terminal speed), that his mass (including gear) was 69 kg. and that the magnitude of the force on him from the snow was at the survivable limit of 1.4 x 10⁵ N. What are (a) the minimum depth of snow that would have stopped him safely and (b) the magnitude of the impulse on him from the snow? (a) Number ___________ Units _____________
(b) Number ___________ Units _____________
The minimum depth of snow that would have stopped the paratrooper safely is 0.88 m, and the magnitude of the impulse on the paratrooper from the snow is 4126.18 N s. Number: 0.88 m; Units: meters. Number: 4126.18 N s; Units: Newton second.
Magnitude is a measure of the quantity of an item, and it usually refers to the size or degree of something. Impulse is a measure of the amount of force or energy exerted on an object, and it is defined as the product of force and time.
The minimum depth of snow that would have stopped him safely and the magnitude of the impulse on him from the snow can be calculated as follows:
(a)The total force acting on the paratrooper, F, is equal to the magnitude of the force from the snow, F snow, which is equal to 1.4 x 10⁵ N, so we have:
F = Fsnow = 1.4 x 10⁵ N
The velocity of the paratrooper just before he hits the snow, v, is equal to 60 m/s.
The work done on the paratrooper by the snow, W, is given by the equation:
W = Fd
where d is the distance over which the snow acts to stop the paratrooper. Since the paratrooper comes to a stop when he hits the snow, the work done by the snow must be equal to the kinetic energy of the paratrooper just before he hits the snow, which is given by:
KE = 1/2mv²
where m is the mass of the paratrooper including his gear, which is 69 kg.
Therefore, we have:
W = KE = 1/2mv²= 1/2 x 69 x 60²= 124,200 J
Substituting W and F into the equation for work, we obtain:
d = W/Fsnow= 124200 J / 1.4 x 10⁵ N= 0.88 m
(b)The impulse, J, on the paratrooper from the snow is given by:
J = F∆t
where F is the force on the paratrooper from the snow, which is 1.4 x 10^5 N, and ∆t is the time for which the snow exerts this force on the paratrooper. Since the paratrooper comes to a stop when he hits the snow, the time for which the snow exerts a force on him is equal to the time it takes for him to come to a stop.
This time can be calculated using the equation:
v = u + at
where u is the initial velocity, which is 60 m/s, v is the final velocity, which is 0 m/s, a is the acceleration, and t is the time.The acceleration of the paratrooper as he comes to a stop in the snow, a, can be calculated using the equation:
F = ma,
where m is the mass of the paratrooper, which is 69 kg.
Therefore, we have:
a = F/m = 1.4 x 10⁵ N / 69 kg= 2029.71 m/s²
Substituting u, v, and a into the equation for motion, we obtain:
t = (v - u) / a= (0 - 60) / -2029.71= 0.02947 s
Substituting F and t into the equation for impulse, we obtain:
J = F∆t= 1.4 x 10⁵ N x 0.02947 s= 4126.18 N s
Number: 0.88 m; Units: mNumber: 4126.18 N s; Units: N s
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