To determine the force in each member of the loaded truss, we need to consider the tension and compression forces acting on each member.
Forces are positive if in tension and negative if in compression.
Using the symmetry of the truss and of the loading, we can see that members AB, AH, and GH are all in tension, while members BC, BH, CD, CF, CG, DE, DF, EF, FG, and NG are all in compression.
Therefore, the force in each member is:
AB = +10 kN; AH = +10 kN ; BC = -10 kN ; BH = -10 kN; CD = -20 kN ; CF = -20 kN ; CG = -20 kN; CH = -20 kN ; DE = -10 kN ; DF = -10 kN ; EF = -10 kN ; FG = -20 kN ; GH = +10 kN ; NG = -20 kN
Note that the negative sign indicates compression forces, while the positive sign indicates tension forces.
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In a series R-L-C circuit, L=0.200 H, C=80.0 microfarads, and the voltage amplitude of the source is 240 V.
a)What is the resonance angular frequency of the circuit? (I already solved this part and the correct answer according to my homework program is 250 rad/s.)
b)When the source operates at the resonance angular frequency, the current amplitude in the circuit is 0.600 A. What is the resistance R of the resistor? Answer should be in ohms
c)At the resonance frequency, what are the peak voltages across the inductor, the capacitor, and the resistor? Please enter your answer as three numbers separated with commas. Vl, Vc, Vr=__,__,__ (answer is in unit V).
a) The resonance angular frequency of the circuit is 250 rad/s. b) The resistance R of the resistor at resonance frequency is 200 ohms. c) At the resonance frequency, the peak voltages across the inductor, capacitor, and resistor are 60 V, 60 V, and 240 V respectively.
a) The resonance angular frequency of a series R-L-C circuit can be calculated using the formula: ω = 1/√(LC), where L is the inductance in Henries and C is the capacitance in farads. Given that L = 0.200 H and C = 80.0 microfarads (or 80.0 x 10^(-6) F), we can substitute these values into the formula to get: ω = 1/√(0.200 x 80.0 x 10^(-6)) = 250 rad/s.
b) At the resonance frequency, the impedance of the inductor and capacitor cancel each other out, resulting in a purely resistive circuit. The current amplitude in the circuit is given as 0.600 A. Using Ohm's law, we can calculate the resistance R of the resistor as R = V/I, where V is the voltage amplitude of the source (240 V) and I is the current amplitude (0.600 A). Thus, R = 240 V / 0.600 A = 200 ohms.
c) At the resonance frequency, the voltage across the inductor (Vl) and capacitor (Vc) are equal and given by the formula: Vl = Vc = IωL = IωC, where I is the current amplitude, ω is the angular frequency, L is the inductance, and C is the capacitance. Using the values given, we can calculate Vl and Vc as 60 V each. The voltage across the resistor (Vr) is the same as the voltage amplitude of the source, which is 240 V. Thus, Vl, Vc, and Vr are 60 V, 60 V, and 240 V respectively.
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Halogen bulbs have some differences from standard incandescent lightbulbs. They are generally smaller, the filament runs at a higher temperature, and they have a quartz (rather than glass) envelope. They may also operate at lower voltage. Consider a 12 V, 50 W halogen bulb for use in a desk lamp. The lamp plugs into a 120 V, 60 Hz outlet, and it has a transformer in its base.
Part A) The 12 V rating of the bulb refers to the rms voltage. What is the peak voltage across the bulb?
A. 17V B. 12V C. 8.5V D. 24V
The peak voltage across the bulb is approximately 17V. The correct answer is A. 17V.
For the 12V, 50W halogen bulb in a desk lamp, you need to determine the peak voltage when the bulb's rating refers to the RMS voltage. The relationship between RMS voltage and peak voltage is:
RMS voltage = peak voltage / √2
To find the peak voltage, rearrange the equation:
peak voltage = rms voltage * √2
Given the RMS voltage is 12V:
peak voltage = 12V * √2 ≈ 12V * 1.414 ≈ 17V
So, the peak voltage across the bulb is approximately 17V. Your answer is A. 17V.
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can a constant acceleration be the greatest acceleration in a graph
Answer:
No, because the graph with the steepest slope experiences the greatest rate of change in velocity. That object has the greatest acceleration.
What does constant acceleration look like on an acceleration graph?
Constant acceleration means a horizontal line for the acceleration graph. The acceleration is the slope of the velocity graph. Constant acceleration = constant slope = straight line for the velocity graph. The area under the acceleration graph is the change in velocity.
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A light beam travels at 1.34×10^8m/s indiamond. The wavelength of the light indiamond is 246 nm.(a)What is the index of refraction of diamondat this wavelength?(b) If this same light travels through air, whatis its wavelength there?(c) If the light ray hits the surface of the diamond at the angle of 15° with thenormal, at which angle will it be refracted into air?
For the light beam
a) The index of refraction is 2.24.
b) The wavelength of the same light in air is 551.04 nm.
c) the angle is 17.14°.
Finda) The index of refractionb) The wavelengthc) The angle of refraction(a) The refraction index of the diamond at this wavelength can be found using the formula n=c/v, where c is the speed of light in a vacuum and v is the speed of light in a diamond.
n = c/v = 3.00 x 10^8 m/s / 1.34 x 10^8 m/s = 2.24
Therefore, the index of refraction of the diamond at this wavelength is 2.24.
(b) When light travels through air, its wavelength changes due to the change in the medium, but its frequency remains the same. The relationship between the speed, frequency, and wavelength of light is given by the formula c = λf, where c is the speed of light, λ is the wavelength, and f is the frequency.
We can rearrange this formula to solve for the new wavelength:
λ_air = c/f = (c/v) λ_diamond = n λ_diamond
where n is the index of refraction of a diamond. Substituting the values given,
λ_air = 2.24 x 246 nm = 551.04 nm
Therefore, the wavelength of the same light in air is 551.04 nm.
(c) According to Snell's law, n1 sinθ1 = n2 sinθ2, where n1 and n2 are the indices of refraction of the initial and final mediums, and θ1 and θ2 are the angles of incidence and refraction, respectively, with respect to the normal.
We can rearrange this formula to solve for θ2:
sinθ2 = (n1 / n2) sinθ1
Substituting the values given, we get:
sinθ2 = (1 / 2.24) sin 15°
θ2 = sin⁻¹(0.295) = 17.14°
Therefore, the angle at which the light ray will be refracted into the air is 17.14°.
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what is the maximum practicl magnification of a telescope with a 3 inch diameter objective and a focal length of 1000 mm?
Hence, 150x would be the greatest achievable particle magnification for this telescope.
How can I determine the telescope's highest magnification?It is the product of the focal length of the telescope and the focal length of the eyepiece. The highest usable magnification of a telescope is 50 times its aperture in inches as a general rule (or twice its aperture in millimeters).
The maximum practical magnification of a telescope is determined by several factors,
Using this rule, the maximum practical magnification for a 3-inch telescope with a focal length of 1000 mm would be approximately:
50 x 3 =
150x
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1)An oscillating object takes 0.10 s to complete one cycle; that is, its period is 0.10 s.  What is its frequency f? Express your answer in hertz.
2)If the frequency is 40Hz, what is the period T ?
Express your answer in seconds.
1) The frequency is 10 Hz. 2) The period is 0.025 s.
1) To find the frequency (f) of an oscillating object with a period of 0.10 s, you can use the following formula:
f = 1/T
where f is the frequency and T is the period.
In this case, T = 0.10 s. Plugging in the value, we get:
f = 1/0.10
f = 10 Hz
So, the frequency of the oscillating object is 10 Hz.
2) To find the period (T) of an oscillating object with a frequency of 40 Hz, you can use the same formula:
T = 1/f
where T is the period and f is the frequency.
In this case, f = 40 Hz. Plugging in the value, we get:
T = 1/40
T = 0.025 s
So, the period of the oscillating object is 0.025 seconds.
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The plane of a rectangular coil of dimension 5 cm by 8 cm is perpendicular to the direction of a magnetic field B. The coil has 147 turns and a total resistance of 12.7 .
At what rate must the magnitude of B change in order to induce a current of 0.392 A in the windings of the coil?
Answer in units of T/s.
At 1.29 T/s rate must the magnitude of B change in order to induce a current of 0.392 A in the windings of the coil.
Using Faraday's Law, we can relate the induced EMF (voltage) to the rate of change of magnetic flux through the coil:
[tex]EMF = -N(dΦ/dt)[/tex]
where N is the number of turns in the coil, and Φ is the magnetic flux through the coil. The negative sign indicates that the induced EMF opposes the change in flux.
We can also relate the EMF to the current and resistance:
EMF = IR
Combining these equations, we can solve for the rate of change of magnetic flux:
[tex](dΦ/dt) = -EMF/N = (-IR)/N[/tex]
Plugging in the given values, we get:
[tex](dΦ/dt) = (-0.392 A x 12.7 Ω) / 147 = -0.0337 Wb/s[/tex]
Since the magnetic field is perpendicular to the plane of the coil, the magnetic flux through the coil is given by: [tex]Φ = BAN[/tex]
where A is the area of the coil (5 cm x 8 cm = 0.04 m^2). Solving for the rate of change of magnetic field:
[tex](dB/dt) = (dΦ/dt) / AN = (-0.0337 Wb/s) / (0.04 m^2 x 147) = -1.29 T/s[/tex]
Therefore, the magnitude of the magnetic field must decrease at a rate of 1.29 T/s in order to induce a current of 0.392 A in the coil.
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A 0.510-mmmm-diameter silver wire carries a 30.0 mama current. What is the electric field in the wire? What is the electron drift speed in the wire?
The electric field in the wire is approximately 2.94 x 10⁶ V/m, and the electron drift speed in the wire is approximately 0.0018 m/s.
The electric field in a wire carrying current is given by the equation E = I/(πr²σ), where I is the current, r is the radius of the wire, and σ is the conductivity of the material. For silver, the conductivity is approximately 6.17 x 10⁷ S/m.
Substituting the given values, we get:
E = (30.0 x 10⁻³ A)/(π x (0.255 x 10⁻³ m)² x 6.17 x 10⁷ S/m) ≈ 2.94 x 10⁶ V/m.
The electron drift speed in a wire can be found using the equation v = I/(nAq), where n is the number density of free electrons in the material, A is the cross-sectional area of the wire, and q is the elementary charge. For silver, the number density of free electrons is approximately 5.86 x 10²⁸ m⁻³.
Substituting the given values, we get:
v = (30.0 x 10⁻³ A)/(5.86 x 10²⁸ m⁻³ x π x (0.255 x 10⁻³ m)² x (1.602 x 10⁻¹⁹C)) ≈ 0.0018 m/s.
Therefore, the electric field in the wire is approximately 2.94 x 10⁶ V/m, and the electron drift speed in the wire is approximately 0.0018 m/s.
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An object whose height is 3.5 cm is at a distance of 10.5 cm from a spherical concave mirror. Its image is real and has a height of 10.6 cm. Calculate the radius of curvature of the mirror.Use the mirror equation and the relation between the radius and the focal length.. How far from the mirror is it necessary to place the above object in order to have a virtual image with a height of 10.6 cm?
The object needs to be placed 14.5 cm in front of the mirror to form a virtual image with a height of 10.6 cm.
[tex]1/f = 1/d_o + 1/d_i[/tex]
m =[tex]-h_i/h_o[/tex] = -10.6/3.5 = -3.03
m = [tex]-d_i/d_o[/tex]
-3.03 = -d[tex]_i/10.5[/tex]
[tex]d_i =[/tex] 31.8 cm
[tex]1/f = 1/10.5 + 1/31.8[/tex]
f = -33.8 cm
[tex]1/f = 2/R[/tex]
So we can solve for R:
[tex]1/-33.8 = 2/R[/tex]
R = -67.6 cm
The radius of curvature of the mirror is -67.6 cm.
[tex]m = h_i/h_o = 10.6/h_o[/tex]
[tex]10.6/h_o = 10.6/3.5[/tex]
[tex]h_o = 3.5 cm[/tex]
Now we can use the mirror equation again to find the image distance:
[tex]1/f = 1/d_o + 1/d_i[/tex]
Since the image is virtual, d_i is negative:
[tex]1/-33.8 = 1/10.5 + 1/d_i[/tex]
[tex]d_i = -14.5 cm[/tex]
A mirror is a surface that reflects light, sound, or other waves. Mirrors can be made of various materials such as glass, metal, or plastic, and can have different shapes and curvatures to achieve specific optical properties. When light waves hit a mirror, they bounce off at an angle that is equal to the angle of incidence, according to the law of reflection.
This allows us to see our reflection in a mirror, as well as to use mirrors in various applications such as telescopes, microscopes, and lasers. Mirrors can also be used to create optical illusions, such as in a funhouse mirror or in a kaleidoscope. In addition, mirrors play a crucial role in certain scientific experiments, such as those involving lasers or in the study of light and optics.
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A parallel plate capacitor is fully charged by a 9 Volt battery before being disconnected. If the plate area then is decreased, then the electric field between the plates of the capacitor decreases. O will increase, only if it has a dielectric inside. increases. changes in an unknown way. remains constant. O will decrease, only if it has a dielectric inside
If the plate area of a fully charged parallel plate capacitor is decreased, the electric field between the plates will increase.
This is because the electric field is directly proportional to the charge on the plates and inversely proportional to the distance between the plates.
As the plate area decreases, the distance between the plates also decreases, which increases the electric field. However, if the capacitor has a dielectric material inside, the electric field will decrease due to the increased capacitance of the capacitor. Therefore, the correct answer is that the electric field will increase, unless there is a dielectric material inside the capacitor, in which case it will decrease.
A parallel plate capacitor is fully charged by a 9 Volt battery before being disconnected. When the plate area is decreased, the capacitance of the capacitor decreases. However, the charge stored in the capacitor remains constant since it is disconnected from the battery.
Therefore, the electric field between the plates of the capacitor increases as the voltage across the capacitor increases due to the decreased capacitance.
The presence of a dielectric will not change this outcome.
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The resistivity of gold is 2.44 × 10-8 ohm · m at a temperature of 20°C. A gold wire, 0.5 mm in diameter and 44 cm long, carries a current of 380 ma. The number of electrons per second passing agiven cross section of the wire is closest to:
A) 6.3 × 10^15 B) 2.4 × 10^17 C) 1.2 × 10^22 D) 2.8 × 10^14 E) 2.4 × 10^18
The number of electrons per second passing a given cross section of the wire is closest to is 2.4 × 10¹⁷, so option (b) is correct.
What is current?It derived the namesake Ampère's law from this finding, which connects the size of the force between two conductors to the length of the wires and the current's strength. It designated the energy charge flow as "intensity courant," which is French for "current intensity," and assigned it the letter "I."
What is temperature ?
Temperature is a unit used to represent how hot or cold something is. It can be stated using the Celsius or Fahrenheit scales, among others. Temperature shows which way heat energy will naturally flow, i.e., from a hotter (body with a higher temperature) to a colder (body with a lower temperature) (one at a lower temperature) according to the energy.
Therefore, The number of electrons per second passing a given cross section of the wire is closest to is 2.4 × 10¹⁷, so option (b) is correct.
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at constant temperature and pressure the sign of the free energy related to spontaneity of process. of a process is spontaneous in the forward direction, then the sign of δg is what?
If a process is spontaneous in the forward direction at constant temperature and pressure, then the sign of ΔG is negative. This indicates that the process is exergonic and releases energy.
Conversely, if a process is spontaneous in the reverse direction, then the sign of ΔG is positive, indicating that the process is endergonic and requires energy input.
This is because the criterion for spontaneity at constant temperature and pressure is that the total entropy of the universe increases, or ΔS_univ > 0. T
he change in free energy is related to the change in entropy and enthalpy by the equation:ΔG = ΔH - TΔSwhere ΔH is the change in enthalpy, T is the temperature in Kelvin, and ΔS is the change in entropy.
If the process is spontaneous in the forward direction, then ΔS is positive (since the entropy of the system increases) and ΔH is negative (since the system releases heat).
Therefore, ΔG is negative:ΔG = ΔH - TΔS < 0
So, if a process is spontaneous in the forward direction, the sign of ΔG is negative.
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For a gas that obeys the equation of state as Vm = RT/P+b- a/RT^2 , does it have a critical point? If not, please justify your answer. If yes, please express Tc in terms of a and b. Both a and b are positive numerical constants.
A gas that obeys the equation of state Vm = RT/P + b - a/RT², does not have a critical point.
A critical point occurs when the first and second partial derivatives of the molar volume (Vm) with respect to pressure (P) are both equal to zero. This occurs at the critical temperature (Tc) and critical pressure (Pc).
Let's find the first and second partial derivatives of Vm with respect to P:
Vm(P, T) = RT/P + b - a/RT²
1) First partial derivative: ∂Vm/∂P
∂Vm/∂P = -RT/P²
2) Second partial derivative: ∂²Vm/∂P²
∂²Vm/∂P² = 2RT/P³
Now, we need to find the critical point where both partial derivatives are equal to zero:
1) -RT/P² = 0
2) 2RT/P³ = 0
Since both a and b are positive numerical constants, neither the first nor the second partial derivative will be equal to zero, as RT and P are always positive as well.
Therefore, for a gas that obeys the equation of state Vm = RT/P + b - a/RT², it does not have a critical point.
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A BODY WEGIHT 6N IN AIR 5N IN WATER
WHATE IS VOLUME OF BODY
the volume of the body is approximately 0.1199 cubic meters.
To find the volume of the body, we can use Archimedes' principle, which states that the weight of a fluid displaced by an object is equal to the buoyant force acting on the object.
In this case, the buoyant force acting on the body in water is equal to the weight of the water displaced by the body. Since the body weighs 5 N in water, it displaces 5 N of water.
The weight of the body in the air is 6 N, which is greater than the weight of the water displaced by the body. This means that the body sinks in water and has a density greater than that of water.
We can use the formula for density, which is density = mass/volume, to find the volume of the body. We know that the mass of the body is equal to its weight divided by the acceleration due to gravity, which is approximately 9.81 m/[tex]S^{2}[/tex]. Therefore:
mass = 6 N / 9.81 [tex]m/s^{2}[/tex]= 0.611 kg
Since the density of water is 1000 [tex]kg/m^{3}[/tex], we can set up the following equation to solve for the volume of the body:
density of body * volume of body = mass of body
density of body * V = 0.611 kg
the density of body = 0.611 kg / V
The density of the body must be greater than 1000 [tex]kg/m^{3}[/tex], the density of water. We can assume that the density of the body is constant and solve for the volume:
density of body = 5 N / (V * 9.81 m/[tex]S^{2}[/tex])
Setting these two equations equal to each other, we get:
0.611 kg / V = 5 N / (V * 9.81m/[tex]S^{2}[/tex])
Solving for V, we get:
V = 0.611 kg / (5 N / 9.81 m/[tex]S^{2}[/tex])
V = 0.1199 m^3
Therefore, the volume of the body is approximately 0.1199 cubic meters.
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The energy of a photon is
Pick those that apply
A. h f divided by c
B. h c divided by lambda
C. h f
D. h
The correct answers are B and C for energy of a photon
h f divided by c and B. h c divided by lambda. These equations represent the relationship between the energy of a photon (E), its frequency (f), wavelength (lambda), and the Planck constant (h) and speed of light (c).
Hello! The energy of a photon can be calculated using the following formulas:
C. E = h × f, where E is the energy, h is Planck's constant, and f is the frequency of the photon.
B. E = (h × c) / λ, where E is energy, h is Planck's constant, c is speed of light, and λ (lambda) is the wavelength of the photon.
So, the correct answers are B and C.
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how does the work required to accelerate the rod from rest to this angular speed compare to the rod’s kinetic energy at time tt ?
Only when 2 = 2W/I is the effort necessary to accelerate a rod to a given angular speed equal to its kinetic energy. If not, it is equal to or higher than its kinetic energy at that moment.
What connection exists between angular acceleration and angular speed?It is a numerical illustration of how angular velocity changes over time.A pseudoscalar, angular acceleration, exists. If the angular speed rises anticlockwise, the sign of angular acceleration is regarded to be positive; if it grows clockwise, it is taken to be negative.
The work required to accelerate the rod from rest to a given angular speed is given by:
W = (1/2)Iω²
where I denotes the rod's moment of inertia and denotes the angular speed.The kinetic energy of the rod at time t is given by:
K = (1/2)Iω²
where again I is the moment of inertia and ω is the angular speed at time t.
Since the expressions for the work and kinetic energy have the same form, we can see that they are equal when the angular speed is such that:
ω² = 2W/I
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a. Calculate the centripetal force exerted on a vehicle of mass m=1630 kg that is moving at a speed of 13.9 m/s around a curve of radius R=385 m.
b. Which force plays the role of the centripetal force in this case?
a. force of static friction
b. spring force
c. gravitational force
d. normal force
e. tension force
a. Fc = (m * v^2) / R
where m is the mass of the vehicle, v is the velocity of the vehicle, and R is the radius of the curve.
Plugging in the values, we get:
Fc = (1630 kg * (13.9 m/s)^2) / 385 m
Fc = 8206.73 N
Therefore, the centripetal force exerted on the vehicle is 8206.73 N.
b. The force that plays the role of the centripetal force in this case is the force of static friction.
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Which one of the following polar values is equivalent to 30+ j40?
a.70 253.1°
b. 50 236.9°
c. 50253.1°
d. 70 236.9°
The polar form of the complex number is z = 50∠53.13°.(C)
The polar form of a complex number can be represented as z = r∠θ, where r is the magnitude and θ is the angle in degrees or radians. To convert a complex number from rectangular form to polar form, we can use the following formulas:
r = |z| = √(Re(z)² + Im(z)²)
θ = arg(z) = tan⁻¹(Im(z) / Re(z))
where Re(z) and Im(z) are the real and imaginary parts of the complex number, respectively.
For the complex number 30 + j40, we have:
|z| = √(30² + 40²) = 50
arg(z) = tan⁻¹(40 / 30) = 53.13°(C)
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Ball a has half the mass and eight times the kinetic energy of ballb. what is the speed ratio va / vb ? a. 4 b. 1/4 c. 2 d. 16 d. 1/16
The speed ratio va/vb would be 4. Thus, the answer is option a.
What's kinetic energyThe kinetic energy of a moving object is directly proportional to its mass and the square of its speed
In this scenario, ball a has half the mass of ball b but eight times its kinetic energy.
This means that the speed of ball a is greater than that of ball b. To find the speed ratio, we can use the formula for kinetic energy:
KE = (1/2)mv^2.
If we assume the velocity of ball b to be v, then the velocity of ball a would be sqrt((8/0.5)v^2) = 4v.
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Take P1 = 8 kip and P2 = 4 kip. Determine the absolute maximum shear stress developed in the beam.
To determine the absolute maximum shear stress in a beam with given loads P1 and P2, we need to consider several factors, such as the beam's cross-sectional area and the distribution of the loads. These are not given In this case, so we cant find exact absolute maximum shear stress developed
First, identify the critical points where the maximum shear stress is likely to occur, which are usually at the supports and points of load application. Next, find the internal shear force (V) at each of these critical points. This can be done using equilibrium equations or shear force diagrams.
Once you have the internal shear force values, the absolute maximum shear stress can be calculated using the following formula: τ_max = VQ/Ib
Where τ_max is the maximum shear stress, V is the internal shear force, Q is the first moment of area about the neutral axis, I is the moment of inertia of the beam's cross-section, and b is the width of the beam's cross-section at the location of interest.
Calculate the maximum shear stress at each critical point and compare the values. The highest value among them will be the absolute maximum shear stress developed in the beam.
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A transformer consists of 300 primary windings and 830 secondary windings.
A.) If the potential difference across the primary coil is 28.5 V , what is the voltage across the secondary coil? V2= ______________ V
B.) If the potential difference across the primary coil is 28.5 V , what is the current in the secondary coil if it is connected across a 140 Ω resistor? I = _____________ A
The voltage across the secondary coil is approximately 78.85 V. The current in the secondary coil when connected across a 140 Ω resistor is approximately 0.5632 A. We'll be using the terms primary windings, secondary windings, potential difference, voltage, current, and resistor.
A) To find the voltage across the secondary coil (V2), we can use the transformer equation:
V2 = (N2 / N1) * V1
where V1 is the voltage across the primary coil (28.5 V), N1 is the number of primary windings (300), and N2 is the number of secondary windings (830).
V2 = (830 / 300) * 28.5 V
V2 = 2.7667 * 28.5 V
V2 ≈ 78.85 V
B) To find the current in the secondary coil (I), we can use Ohm's law:
I = V2 / R
where V2 is the voltage across the secondary coil (78.85 V) and R is the resistance of the resistor (140 Ω).
I = 78.85 V / 140 Ω
I ≈ 0.5632 A
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Describe in words what you see happen wben you makn the connection. Describe in words what happena when the eireuit in unconpected and dos not make a consplete loop.
When a circuit is made, electricity is able to flow from the power source, through the circuit, and back to the power source. This creates a complete loop, and electricity is able to be used.
When the circuit is disconnected, the loop is broken and electricity cannot flow. This is because there is no path to complete the circuit. No electricity is able to flow, and the device connected to the circuit will not work.
In some cases, the lack of a complete circuit can cause a short circuit and potentially damage the device. In order to make sure a circuit is complete, all of the wiring must be connected properly and securely. If a wire is loose or broken, the circuit will not be complete and the device will not work.
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What is the magnitude of the electric field at the origin produced by a semi-circular arc of charge = 3.6 μc, twice the charge of the quarter-circle arc?
The magnitude of the electric field at the origin produced by a semi-circular arc of charge (3.6 μC) is 4 times the electric field produced by the quarter-circle arc.
To find the electric field at the origin produced by the semi-circular arc of charge, we first consider the electric field produced by a quarter-circle arc. If we know the electric field produced by the quarter-circle arc, we can multiply it by 4 to find the electric field produced by the semi-circular arc since it has twice the charge and twice the length.
1. Determine the charge of the quarter-circle arc (1.8 μC).
2. Calculate the electric field produced by the quarter-circle arc using the formula E = kQ/r², where E is the electric field, k is the electrostatic constant (8.99 x 10⁹ N m²/C²), Q is the charge (1.8 μC), and r is the distance from the charge to the origin.
3. Multiply the electric field of the quarter-circle arc by 4 to find the electric field of the semi-circular arc.
Following these steps will give you the magnitude of the electric field at the origin produced by the semi-circular arc of charge.
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sketch the lattice planes with miller indices, (100) and (011) for a simple cubic lattice.
The lattice planes with Miller indices (100) and (011) in a simple cubic lattice are perpendicular to each other.
The lattice planes with Miller indices (100) and (011) can be sketched as follows:
(100) plane:
The plane intercepts the x-axis at (1,0,0).
The plane is parallel to the yz-plane, and hence its normal vector is along the x-axis.
The plane intersects the yz-plane at the midpoint of the y and z axes.
The lattice points located at the corners of the cube lying on the plane are connected to form a square.
(011) plane:
The plane intercepts the x-axis at (0,1,1).
The plane is not parallel to any of the coordinate planes, and hence its normal vector has non-zero components in all three directions.
The plane intersects the yz-plane at the points where the y and z coordinates are equal.
The lattice points located at the corners of the cube lying on the plane are connected to form a rhombus.
Lattice planes are a fundamental concept in crystallography, which is the study of the arrangement of atoms in crystals. A crystal lattice is a three-dimensional arrangement of points, known as lattice points, which represent the positions of the atoms in the crystal. A lattice plane is a plane that contains a row of lattice points.
In crystallography, lattice planes are important because they determine the physical properties of a crystal. For example, the angle between two adjacent lattice planes determines the diffraction pattern of X-rays that are scattered by the crystal. The diffraction pattern provides information about the crystal structure, such as the spacing between atoms.
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An electron is in a one-dimensional box. When the electron is in its ground state, the longest wavelength photon it can absorb is 540 nm. What is the next longest-wavelength photon it can absorb, again starting in the ground state?
The next longest wavelength is approximately 720 nm.
Find the next longest-wavelength photon it can absorb.The energy levels of an electron in a one-dimensional box are given by:
E_n = (n^2 * h^2)/(8mL^2)
where n is the quantum number, h is Planck's constant, m is the mass of the electron, and L is the length of the box.
The longest wavelength photon that the electron can absorb is the one that excites it from the ground state (n=1) to the first excited state (n=2), such that the energy of the photon matches the energy difference between these two levels:
E_photon = E_2 - E_1 = (4-1)h^2/(8mL^2) = 3h^2/(8mL^2)
The corresponding wavelength of this photon can be found using the equation:
λ = c/f = hc/E_photon
where c is the speed of light, f is the frequency of the photon, and λ is its wavelength.
Substituting the given values, we get:
λ_1 = hc/E_photon = hc * 8mL^2 / 3h^2 = 8mcL^2/3h
λ_1 = 540 nm = 540 * 10^-9 m
Solving for L, we get:
L = √(3hλ_1/8mc)
Substituting this value of L in the expression for E_photon, we get the energy of the next excited state (n=3):
E_photon' = E_3 - E_1 = (9-1)h^2/(8mL^2) = 8h^2/(8mL^2)
The wavelength of the photon that corresponds to this energy difference can be found as before:
λ_2 = hc/E_photon' = hc * 8mL^2 / 8h^2 = mcL^2/h
Therefore, the next longest-wavelength photon that the electron can absorb is:
λ_2 = mcL^2/h = (9.11×10^-31 kg)(√(3hλ_1/8mc))^2/h
Substituting the given values, we get:
λ_2 ≈ 720 nm
Therefore, the next longest-wavelength photon that the electron can absorb, starting from the ground state, has a wavelength of approximately 720 nm.
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A 3.53 k-Ohm resistor is connected to a generator with a maximum voltage of 121V. Find the average power delivered to this circuit. Find the maximum power delivered to this circuit.
1) average power delivered to the circuit is 4.11 Watts. 2) the maximum power delivered to the circuit is 16.4 watts
To find the average power delivered to the circuit, we can use the formula Ohm's Law:
P_avg = V² / R
where P_avg is the average power, V is the voltage, and R is the resistance.
Substituting the given values, we get:
P_avg = (121²) / 3.53k
P_avg = 4.11 watts
Therefore, the average power delivered to the circuit is 4.11 watts.
To find the maximum power delivered to the circuit, we can use the formula:
P_max = (V²) / (4R)
where P_max is the maximum power.
Substituting the given values, we get:
P_max = (121²) / (4 x 3.53k)
P_max = 16.4 watts
Therefore, the maximum power delivered to the circuit is 16.4 watts.
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Explain how to prevent a transostor from going into cutoff or satiration when an input signal is applied.
To prevent a transistor from going into cutoff or saturation when an input signal is applied, proper biasing, signal limiting, coupling, and feedback can all contribute.
There are several measures that can be taken.
One method is to choose appropriate biasing resistors to set the DC voltage levels at the base, emitter, and collector terminals of the transistor. This will ensure that the transistor operates within its active region, avoiding cutoff or saturation. Additionally, the input signal should be limited to a certain range to avoid overdriving the transistor. A coupling capacitor can be used to block any DC voltage that may affect the biasing of the transistor.
Finally, a feedback loop can be implemented to stabilize the operating point of the transistor and prevent it from going into cutoff or saturation. Overall, proper biasing, signal limiting, coupling, and feedback can all contribute to preventing a transistor from going into cutoff or saturation when an input signal is applied.
Therefore, By following these steps, you can prevent a transistor from going into cutoff or saturation when an input signal is applied, ensuring proper and linear operation of the transistor.
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When examining patterns of the planets within our solar system which one of the statements below is NOT true? * The "inner" planets tend to be smaller and rocky; the "outer" planets tend to be large and gaseous The farther a planet is away from the Sun, the longer the period of revolution tends to be The farther the planet is away from the Sun, the lower the average temperature tends to be The farther the planet is away from the Sun, the shorter the period of rotation tends to be
The following assertion is untrue: "The shorter the period of rotation tends to be, the farther the planet is from the Sun."
The inner planets are rocky, but why?The inner planets are rocky, whereas the outer planets are gaseous, which can be attributed to the early solar system's temperature. The solar system's temperature increased as the gases came together to create a protosun. Temperatures in the inner solar system reached 2000 K, whilst, in the outer solar system, it was only 50 K.
Which planets contain rocks?Because of their compact, rocky surfaces akin to Earth's terra firma, the planets Mercury, Venus, Earth, and Mars are referred to as terrestrial. The four planets closest to the sun are the terrestrial planets.
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Review of the woman, the barbell, and the Earth (Section 7.9 in the textbook). Starting from rest, a woman lifts a barbell with a constant force F through a distance h, at which point she is still lifting, and the barbell has acquired a speed v. Let Ewoman stand for the following energy terms associated with the woman:
Ewoman = Echemical,woman + Kwoman (moving arms etc.) + Ugrav,woman+Earth + Ethermal,woman
The change in the kinetic energy of the barbell is (1/2)mv2 - 0 = (1/2)mv2.
The general statement of the energy principle is deltacapEsys = Wext. We'll consider terms on the left side of the equation (the deltacapEsys side, changes in the energy inside the system) and terms on the right side (the Wext side, energy inputs from the surroundings).
I. System: Woman + barbell + Earth For the system consisting of the woman, the barbell, and the Earth, which of the following terms belong on the left side of the energy equation (the deltaEsys side)?
deltaEwoman
-mgh
-Fh
Fh
-(1/2)mv2
+mgh
none of these terms (left side is 0)
(1/2)mv2
For the system consisting of the woman, the barbell, and the Earth, which of the following terms belong on the right side of the energy equation (the Wext side)?
Fh
-mgh
+mgh
-(1/2)mv2
deltaEwoman
-Fh none of these terms (right side is 0)
(1/2)mv2
II. System: barbell only For the system consisting of the barbell only, which of the following terms belong on the left side of the energy equation (the deltacapEsys side)?
eltacapEwoman
-mgh
+mgh
-(1/2)mv2
Fh (1/2)mv2 n
one of these terms (left side is 0)
-Fh
For the system consisting of the barbell only, which of the following terms belong on the right side of the energy equation (the Wext side)?
-Fh
-mgh
+mgh
(1/2)mv2
-(1/2)mv2
Fh
none of these terms (right side is 0)
ΔEwoman
III. System: barbell + Earth For the system consisting of the barbell and the Earth, which of the following terms belong on the left side of the energy equation (the Esys side)?
-Fh
-(1/2)mv2
Fh
(1/2)mv2
none of these terms (left side is 0)
ΔEwoman
+mgh
-mgh
For the system consisting of the barbell and the Earth, which of the following terms belong on the right side of the energy equation (the Wext side)?
1/2)mv2
ΔEwoman
+mgh
-(1/2)mv2
none of these terms (right side is 0)
Fh
-mgh
-Fh
I. System: Woman + barbell + Earth For the system consisting of the woman, the barbell, and the Earth, the terms on the left side of the energy equation (the deltaEsys side) are: deltaEwoman, -Fh, and (1/2)mv2.
What is equation?An equation is a mathematical statement that expresses the equality of two expressions. It consists of two expressions separated by an equal sign (=). Equations are used to solve a wide range of mathematical problems, from basic arithmetic to complex calculus. Equations can be written using numbers, variables, and various mathematical operations such as addition, subtraction, multiplication, division, and exponentiation.
On the right side of the equation (the Wext side), there are no terms as the energy input is 0.
II. System: barbell only For the system consisting of the barbell only, the terms on the left side of the energy equation (the deltaEsys side) are (1/2)mv2 and -Fh. On the right side of the equation (the Wext side), there are no terms as the energy input is 0.
III. System: barbell + Earth For the system consisting of the barbell and the Earth, the terms on the left side of the energy equation (the Esys side) are (1/2)mv2 and -Fh. On the right side of the equation (the Wext side), there are no terms as the energy input is 0.
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Q1= -0.10 uC is located at the origin. Q2= +10 uC is located on the positive x axis at x = 1.0m. Which of the following is true of the force on Q1 due to Q2?
a) it is attractive and directed in the +x direction
b) it is attractive and directed in the -x direction
c) it is repulsive and directed in the +x direction
d) it is repulsive and directed in the -x direction
The force on Q1 due to Q2 is attractive and directed in the +x direction. The correct option is a). To determine the correct answer, we'll use Coulomb's Law which states that the force between two charges is directly proportional to the product of their charges and inversely proportional to the square of the distance between them.
The charges are Q1 = -0.10 μC (located at the origin) and Q2 = +10 μC (located on the positive x-axis at x = 1.0m).
Since Q1 is negative and Q2 is positive, the force between them will be attractive. This is because opposite charges attract each other. The attractive force on Q1 will be directed towards Q2, which is in the positive x direction.
Therefore, it is attractive and directed in the +x direction.
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