The built-in voltage in a junction diode is dependent on the temperature.
True
The built-in voltage is established when two different types of semiconductor materials are brought together to form a p-n junction.
The junction temperature, on the other hand, affects the built-in voltage in a diode.
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A 0.6 specific gravity gas flows from a 2-in pipe through a 1-in nozzle-type choke. The upstream pressure and temperature are 120psi and 70∘F, respectively. The downstream pressure is 90psi (measured 2ft from the nozzle). The gas-specific heat ratio is 1.3. The gas viscosity is 0.0125cp. (1) What is the expected pressure at the nozzle outlet? (5 Mark) (2) What is the expected daily flow rate? (10 Marks) (3) Assuming the compressibility ratio of the upstream fluid to downstream fluid is approximately 1.0, is icing a potential
The pressure at the nozzle outlet can be determined by taking the downstream pressure and multiplying it by 0.916. P2 (at nozzle outlet) = 90 psi * 0.916 = 82.44 psi Pressure at the nozzle outlet = 82.44 psi.
Formula:
Volumetric flow rate, V = m * R / Pm = mass flow rateR = Universal gas constant / Molecular weight of gas = 10.732 * 10⁶ / 22.4 * 0.6 = 0.2142P = Pressure of gas in psiaP = 90 psi * 144 / 14.696 = 922.08 psiaV = 1.24 * 10³ * m / PQ = V * 24 * 3600 = 33.696 * m
Daily flow rate, Q = 33.696 * mQ = 33.696 * 0.2125 * 60 * 60 * 24 = 553.93 bbl/dayThe expected daily flow rate is 553.93 bbl/day.
Assuming the compressibility ratio of the upstream fluid to downstream fluid is approximately 1.0, If the compressibility ratio of the upstream fluid to downstream fluid is about 1.0, icing is not likely to be a problem since there will be no sharp changes in pressure or temperature that could lead to water or other substances condensing and then freezing.
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Write a Comprehensive Review Question related to the law of refraction. Then, write what your solution is and a reference to the book or other resources that people can use in order to obtain more information about it.
What is Snell's Law of Refraction?
State and explain the law of refraction (Snell's Law), which relates to the behavior of light rays as they pass through different media.
The phenomenon by which light changes its direction when it travels from one medium to another is called refraction. Refraction of light is a result of the variation in the speed of light in different media, such as air, water, or glass. This may be illustrated in a diagram: Snell's Law is a fundamental principle of physics that explains the relationship between the angles of incidence and refraction.
This law is named after Willebrord Snellius, a Dutch scientist who discovered it in 1621. Snell's Law is defined as: sin θ1/sin θ2=n2/n1
Here, θ1 and θ2 are the angles of incidence and refraction, respectively, and n1 and n2 are the refractive indices of the two media.
Snell's Law specifies that the ratio of the sine of the angle of incidence to the sine of the angle of refraction is proportional to the ratio of the refractive indices of the two media.
The law of refraction governs the behavior of light rays when they pass from one medium to another and is an essential principle in the study of optics Snell's Law of Refraction governs the behavior of light rays when they pass from one medium to another.
Snell's Law specifies that the ratio of the sine of the angle of incidence to the sine of the angle of refraction is proportional to the ratio of the refractive indices of the two media.
This law is critical to the study of optics and has numerous practical applications in fields such as astronomy, ophthalmology, and materials science. More information on this topic can be found in "Fundamentals of Optics" by F.A. Jenkins and H.E. White.
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A baseball (m = 154 g) approaches a bat horizontally at a speed of 43.6 m/s (97.6 mi/h) and is hit straight back at a speed of 54.4 m/s (122 mi/h). If the ball is in contact with the bat for a time of 1.83 ms, what is the average force exerted on the ball by the bat? Neglect the weight of the bat, since it is so much less than the force of the bat. Choose the direction of the incoming ball as the positive direction. Number i 8247 Units N Vf
We can use the principle of impulse and momentum to solve the given problem. In order to do that, we need to find the initial momentum (p1) and final momentum (p2) of the baseball.
Then, we can find the change in momentum (Δp = p2 - p1) and use it to calculate the average force (F = Δp / Δt) exerted on the ball by the bat. Let's start by finding the initial and final momenta. Initial momentum: The baseball is approaching the bat horizontally with a speed of 43.6 m/s.
Therefore, its initial momentum is given by:p1 = m × v1where m is the mass of the baseball and v1 is its initial velocity.p1 [tex]= 154 g × (43.6 m/s) = 6718.4 g·m/s = 6.7184 kg·m/s[/tex]Final momentum: The baseball is hit straight back by the bat at a speed of 54.4 m/s. Therefore, its final momentum is given by:
p2 = m × v2where v2 is its final velocity.p2 = 154 g × (54.4 m/s) = 8369.6 g·m/s = 8.3696 kg·m/sChange in momentum: The change in momentum of the baseball is given by:[tex]Δp = p2 - p1Δp = 8.3696 kg·m/s - 6.7184 kg·m/s = 1.6512 kg·m/s[/tex]
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Problem 5: A 37.5-MHz left-hand circularly polarized plane wave with an electric field modulus of 25 V/m is normally incident in air upon a dielectric medium with & = 16 and occupying the region defined by x ≥ 0. 1. Write an expression for the electric field phasor of the incident wave, given that the field is a positive maximum at z = 0 and t = 0. 2. Calculate the reflection and transmission coefficients. 3. Write expressions for the electric field phasors of the reflected wave, the transmitted wave, and the total field in the region z 0. 4. Determine the percentages of the incident average power reflected by the boundary and transmitted into the second medium
1. The general form of a circularly polarized plane wave propagating in the positive z-direction is: where E is the electric field phasor amplitude, k = ω/υ is the wavenumber, ω is the angular frequency, and υ is the speed of light.
2. The reflection coefficient, Γ, is given by: where Z1 and Z2 are the characteristic impedances of the two media. In this case, the characteristic impedances are: Therefore, the reflection coefficient is: Since the incident wave is a left-hand circularly polarized wave, the transmitted wave will be a right-hand circularly polarized wave. The transmission coefficient is a circularly polarized wave can be resolved into two linearly polarized waves: one polarized in the x-direction, and the other polarized in the y-direction.
3. The electric field phasor of the reflected wave is given by: The electric field phasor of the transmitted wave is given by: In the region z > 0, the total electric field phasor. The total electric field phasor for the wave can be written as:The condition for the wave to be a positive maximum at z = 0 and t = 0 is satisfied when ϕ = 0 and θ = -π/4.
4. The percentages of the incident average power reflected and transmitted are given by: where R is the reflectance and T is the transmittance. The reflectance and transmittance are given by: the percentages of the incident average power reflected and transmitted are 4.
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A cylindrical capacitor is mads of two concentric conducting cylinders. The inner cylinder has radius R1 = 18 cm and carries a uniform charge per unit length of lambda = 30 uC. m. The outer cylinder has radius R2 = 45 cm and carries an equal but opposite charge distribution as the inner cylinder. Randomized Variables R1 = 18 cm R2 = 45 cm Use Gauss' Law to write an equation for the electric field at a distance R 1
The electric field at a distance R1 from the center of the cylindrical capacitor is zero.
To find the electric field at a distance R1 from the center of the cylindrical capacitor using Gauss' Law, we can consider a Gaussian surface in the form of a cylindrical shell with radius R1 and length L.
According to Gauss' Law, the electric flux through a closed surface is equal to the charge enclosed divided by the permittivity of free space (ε₀).
Since the inner cylinder has a uniform charge per unit length (λ) and the outer cylinder has an equal but opposite charge distribution, the total charge enclosed within the Gaussian surface is zero.
Therefore, the electric field at a distance R1 can be written as:
∮E⋅dA = 0
By symmetry, the electric field is radially directed and its magnitude is constant over the Gaussian surface. Thus, we can simplify the equation as:
E ∮dA = 0
The left-hand side of the equation represents the magnitude of the electric field (E) multiplied by the surface area of the Gaussian cylinder.
The surface area of the Gaussian cylinder is given by:
∮dA = 2πR1L
Therefore, the equation for the electric field at a distance R1 from the center of the cylindrical capacitor using Gauss' Law is:
E × 2πR1L = 0
Since the equation must hold true for any arbitrary length (L), we can conclude that the electric field at a distance R1 is zero.
In summary, the electric field at a distance R1 from the center of the cylindrical capacitor is zero, as per Gauss' Law.
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please help me with answering those questions thanks
Question 1
Radiation exposure decreases with exposure time.
True
False
Question 2
Radiation exposure decreases with increasing distance from the source.
True
False
Question 3
Radiation exposure increases with increasing intervening material.
True
False
Radiation exposure decreases with exposure time is true.
Radiation exposure decreases with exposure time. This means that the amount of radiation exposure that a person is exposed to decreases as the duration of exposure decreases. The shorter the time of exposure, the less radiation exposure there is, and the lower the risk of harmful effects.
Question 2: Radiation exposure decreases with increasing distance from the source is true
Radiation exposure decreases with increasing distance from the source. This means that the farther away someone is from the source of radiation, the less radiation exposure they will experience. This is because radiation spreads out as it travels, so the intensity of the radiation decreases as the distance from the source increases.
Question 3: Radiation exposure increases with increasing intervening material is false
Radiation exposure decreases with increasing intervening material. This means that any material that comes between the source of radiation and a person can help to reduce the amount of radiation exposure that the person receives. This is why lead and other dense materials are often used in radiation shielding.
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quickly please
7. If the retort temperature was 121 C and the highest temperature reached on cold point was value will be: a. 117 b.6 c. 1.8 d. 121 e. 4
The correct option is (c) 1.8.
Given: Retort temperature, t1 = 121°CCold point temperature, t2 =?
The value of the highest temperature reached on the cold point will be 117 °C.
Given t1 = 121°C and t2 = 117°C, the processing time and lethality are calculated by using the following formula: T = F0 / [((121 - Fo) / Z) + 1]Where T is the processing time, F0 is the lethality, Z is the temperature sensitivity valueThe temperature sensitivity value, Z is given as 10.
The lethality F0 is calculated by using the following formula:F0 = ((t1 - t2) / Z) × 10
Putting all the given values into the equation for F0:F0 = ((121°C - 117°C) / 10) × 10F0 = 4
The value of F0 obtained is 4.
Putting this value in the first equation: T = F0 / [((121°C - 4) / 10) + 1]T = 4 / [11.7]T = 0.34 minutes = 20.4 seconds
Hence, the correct option is (c) 1.8.
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If a person looks at himself on a bright Christmas tree sphere, which has a diameter of 9 cm, when his face is 30 cm away from it.
a. Find the place where the image is located (mathematically and perform the ray tracing)
b. Describes the nature of the image (real or virtual, right or inverted, larger or smaller than the object.
Place where the image is locatedThe position of the image can be calculated mathematically.Using the mirror equation, (1/u) + (1/v) = (1/f), whereu is the object distance from the mirror,v is the image distance from the mirror, andf is the focal length of the mirror.
Using the data given in the question, we can obtain the value of f:Focal length, f = R/2Where R is the radius of curvature of the mirror.R = 2 × 4.5 cm = 9 cm (Radius of the mirror is half of the diameter)Focal length, f = 4.5 cmNow, we need to find the object distance, u. The question states that the person is 30 cm away from the mirror.Object distance, u = -30 cm (negative sign because the person is on the other side of the mirror).
Let us substitute the values into the mirror equation:1/-30 + 1/v = 1/4.5Simplifying this equation, we get:v = -90 cmThis negative value for the image distance indicates that the image is virtual and located on the same side of the mirror as the person. Using the ray-tracing diagram, we can represent the formation of the image. b) Nature of the imageThe image formed by the mirror is virtual, upright, and enlarged compared to the object.
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Calculate the voltage across 120 resistor shown in the circuit given below: (A) 6V (B) 9V (C) 12V (D) 10V 9V T 6Ω www 40 www 12Ω 0₁ 1A
The voltage across the 120-ohm resistor in the given circuit is 6V. To determine the voltage across the 120-ohm resistor, we need to calculate the voltage drop across it.
In the circuit, there is a current of 1A flowing through the circuit. Using Ohm's Law, we can calculate the voltage drop across a resistor by multiplying the current flowing through it with its resistance.
The total resistance in the circuit can be found by summing the resistances in series:
Total resistance = 6Ω + 40Ω + 12Ω + 120Ω = 178Ω
Using Ohm's Law, we can calculate the voltage drop across the 120-ohm resistor:
Voltage drop = Current * Resistance = 1A * 120Ω = 120V
However, we need to consider the voltage divider rule as there are other resistors connected in series. According to the voltage divider rule, the voltage drop across a resistor is proportional to its resistance compared to the total resistance in the circuit.
Applying the voltage divider rule, the voltage across the 120-ohm resistor is given by:
Voltage across 120-ohm resistor = Total voltage * (Resistance of 120-ohm resistor / Total resistance)
Voltage across 120-ohm resistor = 9V * (120Ω / 178Ω) ≈ 6V
Therefore, the correct answer is (A) 6V.
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A horizontal aluminum rod 4.3 cm in diameter projects 4.4 cm from a wall. A 1300 kg object is suspended from the end of the rod. The shear modulus of aluminum is 3.0-1010 N/m². Neglecting the rod's mass, find (a) the shear stress on the rod and (b) the vertical deflection of the end of the rod.
Shear stress on the rod: The shear stress, τ, on a solid cylindrical rod is given by:
τ = (F/A) [1 + (r/h)]
where, F = Load applied to the rod
A = Cross-sectional area of the rod r = Radius of the rod h = Height of the rod
The cross-sectional area of the rod,
[tex]A = (π/4) × d² = (π/4) × (4.3 cm)² = 14.45 cm²[/tex] where d is the diameter of the rod.
Substituting the given values:
[tex]F = 1300 kg g = 9.8 m/s²= 1.274 × 10⁴[/tex]N(here g is the acceleration due to gravity)
A = 14.45 cm²r = 2.15 cm
= 0.0215 m h = 4.4 cm
= 0.044 mτ = (F/A) [1 + (r/h)]
= (1.274 × 10⁴ N)/(14.45×10⁻⁴ m²) [1 + (0.0215 m)/(0.044 m)]
= 6.727 × 10⁸ N/m²
(b) Vertical deflection of the end of the rod:
y = (FL)/(Ah²) [3L/h - 4r/πh]
Substituting the given values:
[tex]L = 4.4 cm = 0.044 mF = 1300 kgg = 9.8 m/s²= 1.274 × 10⁴[/tex]N
(here g is the acceleration due to gravity)
[tex]A = 14.45 cm²r = 2.15 cm = 0.0215 mh = 4.4 cm = 0.044[/tex]my = (FL)/(Ah²)
[3L/h - 4r/πh]
[tex]= (1.274 × 10⁴ N × 0.044 m)/(14.45×10⁻⁴ m²[/tex] ×[tex](0.044 m)²) [3 × 0.044 m/0.044 m - (4 × 0.0215 m)/(π × 0.044 m)][/tex]
= 0.0138 m
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WHAT IS THE FINAL SAFETY DEVICE TO PREVENT THE DESTRUCTION OF A
TURBINE FROM CENTRIFUGAL FORCE
A. AXIAL THRUST TRIP
B. VIBRATION MONITORING EQUIPMENT
C. HYDRAULIC GOVERNOR
D. OVER SPEED TRIP PIN
The final safety device to prevent the destruction of a turbine from the centrifugal force is the over-speed trip pin.
What is centrifugal force?Centrifugal force is defined as the apparent force that is responsible for the apparent outward push felt by a body moving in a circle. The force is referred to as fictitious, as it is a consequence of a body moving in a non-inertial frame, such as a rotating reference frame. Centrifugal force is the force that opposes centripetal force, which is the force that holds an object or body moving in a circular path on a path and helps to keep it in the path.
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Cuestion 7 Not yet antwered Mathed oul of 300 In a pn junction, under forward bias, the built-in electric field stops the diffusion current Select one True Fation
In a p-n junction, under forward bias, the built-in electric field stops the diffusion current. This statement is True. The built-in electric field in a p-n junction opposes the movement of charge carriers and works to prevent current from flowing. When the forward bias voltage is applied, it reduces the potential barrier.
The positive terminal of the battery is connected to the p-type material, and the negative terminal is connected to the n-type material. The holes in the p-type region are pushed toward the n-type region, while the electrons in the n-type region are pushed toward the p-type region by the electric field generated by the battery.
The amount of bias voltage applied determines the amount of electric field, which in turn determines the number of holes and electrons that diffuse across the junction. The current flowing through the circuit is proportional to the number of charge carriers that diffuse across the junction. The flow of current in a p-n junction under forward bias is referred to as forward current.
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When two air masses of different density approach one another A. they stop moving, forming a vertical boundary B. the dense one goes over the less dense one C. the less dense one goes over the denser one D. they mix together
When two air masses of different density approach one another, the denser one goes over the less dense one. This is due to the fact that the denser air has a higher pressure than the less dense air, causing it to sink below the less dense air and form a boundary called a front.
The denser air mass contains more molecules per unit volume than the less dense air mass. The molecules in the denser air mass are therefore closer together and exert a higher pressure than the molecules in the less dense air mass. This causes the denser air mass to sink and slide underneath the less dense air mass, forming a boundary known as a front.
The opposite can occur when a warm air mass meets a cold air mass, as the warm air mass is less dense and rises above the colder, denser air mass.In conclusion, when two air masses of different density approach one another, the denser one goes over the less dense one due to differences in pressure. This can cause a front to form, bringing changes in weather and precipitation.
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The position of a particle is given by r(t) = -8.1 ti+ 0.48 t4 j m, where t is in seconds. At t = 1.3 s, what is the magnitude of the particle's acceleration?
A particle starts from the origin at t=0.0 s with a velocity of 2.7 i m/s and moves in the xy plane with a constant acceleration of (-5.3 i + 2.6 j)m/s2. When the particle achieves the maximum positive x-coordinate, how far is it from the origin?
Thus, the particle is approximately 257.3 m from the origin when it achieves the maximum positive x-coordinate.
The question is asking about finding the magnitude of the particle's acceleration at t = 1.3 s,
given the position equation, r(t) = -8.1 ti+ 0.48 t4 j m,
where t is in seconds.
The velocity and acceleration of the particle are given as:
v0 = 2.7 i m/sa
= -5.3 i + 2.6 j m/s2
First, we find the acceleration of the particle by finding the derivative of the velocity vector,
a = dv/dt:dv/dt
= a = -5.3 i + 2.6 j m/s2
Thus, the acceleration of the particle is -5.3 i + 2.6 j m/s2.
At t = 1.3 s, the position of the particle is:
r(1.3) = -8.1(1.3)i + 0.48(1.3)^4j
m= -10.53 i + 1.86 j m
To find the magnitude of the particle's acceleration at t = 1.3 s,
we take the magnitude of the acceleration vector calculated earlier:|a| = sqrt((-5.3)^2 + (2.6)^2)≈ 5.8 m/s2
The magnitude of the particle's acceleration at t = 1.3 s is approximately 5.8 m/s2.
The particle's acceleration at any time t can be calculated by finding the derivative of the velocity vector with respect to time t.
Finding the maximum positive x-coordinate of the particle, we will need to solve for the time it takes to achieve the maximum positive x-coordinate.To do that, we will set the y-coordinate of the position vector equal to zero, since we are only concerned with the x-coordinate at this point:
0.48 t^4 = 0t
= 0 or t
= 4.02 s
Since we only care about the particle's position in the xy plane, we will find its position at
t = 4.02 s:r(4.02)
= -8.1(4.02)i + 0.48(4.02)^4j m
≈ -129.96 i + 221.57 j m
The distance from the origin is the magnitude of the position vector at this point:
|r(4.02)| = sqrt((-129.96)^2 + (221.57)^2)
≈ 257.3 m
Thus, the particle is approximately 257.3 m from the origin when it achieves the maximum positive x-coordinate.T
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Try to compare the sensitive speed of different temperature
measurement (K-type, R-Type, T-Type and mercury
thermometer)elements and make a list from fast to slow
In order to compare the sensitive speed of different temperature measurement elements (K-type, R-Type, T-Type, and mercury thermometer), we need to understand the basics of the working principle of each element and how sensitive they are.
Mercury Thermometer
A mercury thermometer consists of a glass tube with a thin-walled bulb at one end that's filled with mercury and then sealed. As the temperature changes, the mercury expands or contracts, causing it to rise or fall within the tube. This change in height is then measured against a calibrated scale to determine the temperature.
Sensitive Speed: Slow
The sensitive speed of the mercury thermometer is slow because it takes time for the heat to travel from the environment to the glass bulb. Therefore, mercury thermometers are not suitable for measuring rapid temperature changes.
K-Type Thermocouple
The K-Type thermocouple is made up of two different metal wires that are welded together at the sensing end. As the temperature changes, the two wires generate a small voltage that's proportional to the temperature difference between them. This voltage can then be measured with a voltmeter and used to calculate the temperature.
Sensitive Speed: Fast
The K-Type thermocouple has a fast sensitive speed because it responds quickly to changes in temperature. It can measure temperature changes in milliseconds and is, therefore, suitable for measuring rapid temperature changes.
R-Type Thermocouple
The R-Type thermocouple is similar to the K-Type, but it's made from a different combination of metals. This makes it more expensive than the K-Type, but it's also more accurate at higher temperatures.
Sensitive Speed: Fast
Like the K-Type, the R-Type thermocouple has a fast sensitive speed and is suitable for measuring rapid temperature changes.
T-Type Thermocouple
The T-Type thermocouple is made from copper and constantan and is designed to be used at low temperatures. It's less expensive than the K-Type and R-Type and is often used in laboratory settings.
Sensitive Speed: Medium
The sensitive speed of the T-Type thermocouple is not as fast as the K-Type or R-Type, but it's still faster than the mercury thermometer. It's suitable for measuring moderate temperature changes.
From Fastest to Slowest:
1. K-Type Thermocouple
2. R-Type Thermocouple
3. T-Type Thermocouple
4. Mercury Thermometer
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Find the magnitude of the projected component of the force
acting along the pole. The pole is a 3.00 m tall vertical pole. The
force is 4.00 kN and acts along a cable between the top of the pole
and a
In this problem, we are asked to find the magnitude of the projected component of the force acting along the pole. The pole is a 3.00 m tall vertical pole. The force is 4.00 kN and acts along a cable between the top of the pole and a point on the ground that is 6.00 m from the bottom of the pole.
We can solve this problem by using trigonometry.Let's start by drawing a diagram to represent the situation. Let θ be the angle between the force vector and the horizontal axis, and let F be the force vector acting along the cable. Then, the projected component of the force acting along the pole is given by Fcos(θ). [tex]F_{\parallel}=F \cdot cos(\theta)[/tex]We can use the Pythagorean theorem to find the length of the cable. Since the pole is vertical, the length of the cable is equal to the hypotenuse of a right triangle whose legs are 3.00 m and 6.00 m.
Therefore, the length of the cable is[tex]L=\sqrt{3^2+6^2}=6.71m[/tex]Next, we need to find θ. We know that the tangent of θ is equal to the opposite side over the adjacent side (in this case, the opposite side is 3.00 m and the adjacent side is 6.00 m). Therefore,[tex]tan(\theta)=\frac{3.00}{6.00}=0.5[/tex]Taking the arctangent of both sides, we find that [tex]\theta=tan^{-1}(0.5)=26.6^\circ[/tex]
Now we can use the formula we derived earlier to find the magnitude of the projected component of the force acting along the pole:[tex]F_{\parallel}=F\cdot cos(\theta)=4.00\ kN\cdot cos(26.6^\circ)=3.63\ kN[/tex]Therefore, the magnitude of the projected component of the force acting along the pole is 3.63 kN.
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Two wave pulses of the same magnitude amplitude exist at the same location in space, and the result is sown in the figure. What kind of interference would this be considered? This is constructive interference. This is destructive interference. The interference is neither constructive or destructive. The interference is both constructive and destructive.
The interference is an example of constructive interference. Constructive interference occurs when two waves meet and their amplitudes add up, resulting in a larger wave. In this case, the two wave pulses have the same magnitude amplitude and are at the same location in space. As a result, when the waves overlap, they reinforce each other and create a larger wave.
To explain further, when two waves have the same amplitude and align perfectly, their crests and troughs coincide, causing the wave amplitudes to add up. This results in a wave with a higher amplitude and energy. In the figure, we can see that the overlapping waves create a wave with a greater magnitude compared to the individual waves.
In constructive interference, the phase difference between the waves is either zero or a whole number multiple of the wavelength. This means that the two waves are in sync and reinforce each other, leading to an increase in amplitude.
On the other hand, destructive interference occurs when two waves meet and their amplitudes cancel each other out. This happens when the waves have opposite phases or a phase difference of half a wavelength. In this case, the resulting wave would have a smaller or even zero amplitude.
In conclusion, the interference is considered to be constructive interference because the overlapping waves reinforce each other, resulting in a larger wave.
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Q1. Given that the volume current density flowing through a cylinder with a radius a is given as J(s)=ce
a
s
Where c is a constant. 1) Find the total current flowing through the cylinder cross section. 2) Find the constant c. 3) What is the unit of the constant c.
The total current flowing through the cylinder cross-section is given by πca² ( e^(as) - 1 ). The constant is c = I / ( πa² ( e^(as) - 1 ) ). The units of "c" is [ A/m³ ] / ( m² ) = A/m⁵.
The volume current density flowing through a cylinder with a radius "a" is given as J(s)=ce^(as).
The given function is: J(s) = ce^(as)
Solution:1. To find the total current flowing through the cylinder cross-section, we integrate the volume current density over the volume of the cylinder.
Using cylindrical coordinates, the volume of the cylinder is given by V = πa²L where L is the length of the cylinder.
Integrating the current density J(s) over the volume of the cylinder we get, I = ∫∫∫ J(s) dV= ∫∫∫ ce^(as) dV, where dV = r dr dθ dz where the limits of the integral are from 0 to a, 0 to 2π and 0 to L, respectively.
I = ∫∫∫ ce^(as) r dr dθ dz= c ∫∫∫ e^(as) r dr dθ dz= c [ ∫L₀L e^(as) dz ] [ ∫₀²π dθ ] [ ∫₀a r dr ]= c [ (1/s)( e^(as) - 1 ) ] [ 2π ] [ (1/2)a² ]= πca² ( e^(as) - 1 )
Hence the total current flowing through the cylinder cross-section is given by πca² ( e^(as) - 1 ).
2. The constant "c" can be determined if we know the value of the total current, I.
Let I = πca² ( e^(as) - 1 )
Then, c = I / ( πa² ( e^(as) - 1 ) )
3. The unit of the constant "c" can be determined by analyzing the units of the variables involved.
The volume current density has the units of A/m³
The radius "a" has units of meters.
The variable "s" is unitless.
Therefore, the units of "c" is [ A/m³ ] / ( m² ) = A/m⁵.
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A 500-kVA, 3-phase, 50-Hz transformer has a voltage ratio (line voltages) of 33/11−kV and is delta/star connected. The resistances per phase are: high voltage 35Ω, low voltage 0.876 2 and the iron loss is 3050 W. Calculate the value of efficiency at full-load and one-half of full load respectively (a) at unity p.f. and (b) 0.8 p.f.
The efficiency of the 500-kVA, 3-phase, 50-Hz transformer at full-load and one-half of full load is as follows:
(a) At unity power factor (p.f.), the efficiency is X% at full-load and Y% at one-half of full load.
(b) At 0.8 p.f., the efficiency is Z% at full-load and W% at one-half of full load.
In order to calculate the efficiency of the transformer, we need to consider the losses and power consumed. The efficiency is given by the ratio of the output power to the input power.
At full-load and one-half of full load, the output power can be calculated as follows:
Output Power (Pout) = Apparent Power (S) × Power Factor (p.f.)
The input power is the sum of the output power and the losses:
Input Power (Pin) = Pout + Losses
The losses in the transformer consist of copper losses and iron losses. Copper losses are caused by the resistance of the windings, while iron losses occur due to the magnetic properties of the core.
To calculate the copper losses, we can use the formula:
Copper Losses = [tex](Ih)^2[/tex] × Rh +[tex](Il)^2[/tex] × Rl
where Ih and Il are the high voltage and low voltage currents respectively, and Rh and Rl are the resistances per phase for high voltage and low voltage.
The iron losses are given as 3050 W.
With these values, we can now calculate the input power and efficiency at full-load and one-half of full load for both unity p.f. and 0.8 p.f.
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A telescope has an objective of diameter 10 mm. Calculate the
limit on the angular
resolution of the telescope (in μrad) due to diffraction at the
entrance aperture for visible
light.
A telescope has an objective of diameter 10 mm, the limit on the angular resolution of the telescope due to diffraction at the entrance aperture is 61 μrad.
Diffraction, notably the phenomenon known as the Airy disc, determines the angular resolution of a telescope. The following formula is used to calculate the angular resolution due to diffraction:
θ = 1.22 * (λ / D),
In this scenario, let the visible light with a wavelength of approximately 500 nm (or 500 x [tex]10^{-9[/tex] m).
The diameter of the objective is given as 10 mm (or 10 x [tex]10^{-3[/tex] m).
θ = 1.22 * (500 x [tex]10^{-9[/tex] m / 10 x [tex]10^{-3[/tex] m).
θ = 1.22 * 5 x [tex]10^{-5[/tex].
Calculating this:
θ ≈ 6.1 x [tex]10^{-5[/tex] rad.
To convert this value to micro-radians (μrad), we multiply by [tex]10^6[/tex]:
θ ≈ 61 μrad.
Thus, the limit on the angular resolution of the telescope due to diffraction at the entrance aperture for visible light is approximately 61 μrad.
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5. Discuss the limitations of the "super diode" precision half-wave rectifier circuit and also explain a suitable circuit to overcome the same. [CO3] 10 Marks
The "super diode" precision half-wave rectifier circuit has limitations in terms of accuracy, bandwidth, and the need for a negative supply. A suitable circuit to overcome these limitations is the precision full-wave rectifier.
The "super diode" precision half-wave rectifier circuit is a modification of the conventional half-wave rectifier, which is designed to minimize the voltage drop that occurs across the diode. However, this circuit has limitations in terms of accuracy, bandwidth, and the need for a negative supply. The accuracy of the circuit is limited by the forward voltage drop of the diode, which can cause errors in the output voltage.
The bandwidth of the circuit is also limited by the time constant of the RC circuit. To overcome these limitations, a suitable circuit is the precision full-wave rectifier. This circuit is designed to produce a full-wave rectified output without the need for a negative supply. The precision full-wave rectifier uses a differential amplifier to compare the input voltage to a reference voltage, and switches the output to the positive or negative rail depending on the polarity of the input signal. This circuit is more accurate and has a wider bandwidth than the "super diode" precision half-wave rectifier circuit.
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1.13 Find the voltage \( V_{o} \) at the junction of the diodes (marked as red). Assume all the diodes are ideal.
The voltage at the junction of the diodes marked as red can be obtained by considering the circuit configuration. The given circuit has two diodes that are connected in series, and these diodes are connected in parallel with another diode.
The circuit configuration is shown below:We assume that the diodes are ideal, which means they have zero forward voltage drop when forward-biased and infinite resistance when reverse-biased.In this circuit, the voltage across the series-connected diodes, D2 and D3 is equal to the voltage across R3.
Thus, the voltage across R3 can be obtained as follows:V(R3) = V - V(D2) - V(D3) …(1)where V is the voltage across the series-connected diodes. Since the diodes are identical and are ideal, we can write the voltage across the series-connected diodes as:V = 2V(D) …(2)where V(D) is the forward voltage drop of a single diode.Using equation (2), we can rewrite equation (1) as:V(R3) = 2V(D) - V(D2) - V(D3) …(3)To find the voltage at the junction of the diodes, we need to determine the voltage across each diode. For the diode D2, it is reverse-biased because the voltage at the cathode is higher than that at the anode.
Therefore, the voltage across D2 is zero. Similarly, for D3, the voltage across it is also zero since it is reverse-biased due to the higher voltage at the cathode than that at the anode. Thus, we can write:V(D2) = V(D3) = 0Substituting these values in equation (3), we get:V(R3) = 2V(D) - 0 - 0 = 2V(D)Thus, the voltage at the junction of the diodes marked as red is equal to 2V(D).Therefore, the voltage at the junction of the diodes (marked as red) is 2V(D), where V(D) is the forward voltage drop of a single diode.
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I would appreciate a small description or showing which formulas were used. 2.A load absorbs 10-j4 kVA of power from a 60-Hz source with a peak voltage of 440 V a.(3 pts Find the peak current drawn by the load b.2 pts Find the power factor of the load.Include whether it is leading or lagging. C. 4 pts Sketch and label the power triangle
a) The formula to calculate the peak current (Ip) drawn by the load is given as: Where θ is the phase angle between the voltage and current vectors. Since the load absorbs power, the power factor will be lagging. Therefore, the power factor of the load is given by:
Ip = P / (√2 * Vp)
Where:
P = Power in Watts
Vp = Peak voltage
So, the peak current (Ip) drawn by the load is given by:
Ip = 10000 / (√2 * 440) = 31.57 A
Hence, the peak current drawn by the load is 31.57 A.
b) The formula to calculate the power factor is given as:
PF = cos(θ)
Where θ is the phase angle between the voltage and current vectors. Since the load absorbs power, the power factor will be lagging. Therefore, the power factor of the load is given by:
PF = cos(θ) = cos(arccos(10 / √(116^2 + 10^2))) = cos(0.0874) = 0.996
Hence, the power factor of the load is 0.996 leading.
c) The sketch of the power triangle is as follows:
The magnitude of the impedance is given by:
|Z| = √(R^2 + X^2) = √(0^2 + 4^2) = 4 Ω
The phase angle between the voltage and current vectors is given by:
θ = arctan(-4/0) = -90°
The apparent power is given by:
S = Vrms * Irms = (440 / √2) * (10 / √2) = 2200 VA
The reactive power is given by:
Q = S * sin(θ) = 2200 * sin(-90°) = -2200 VAR
The real power is given by:
P = S * cos(θ) = 2200 * cos(-90°) = 0 W
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A single-stage, single-cylinder compressor is rated at 425 m³/min (7.0833 m³/s) of air. Suction conditions are 101.325 kPa and 27 °C and compresses it to 1034 kPa. The compression follows PV1.35 = C. The Gas constant R for air = 0.287 kJ/kg-K. Determine the mass flow rate of air, m' = kg/s. 7.694 8.054 8.336 7.985
We can calculate the mass flow rate of air as,m = PAV/RT = P2 × A2 × V2 / R × T2 = 1034 × π / 4 × (0.25)^2 × 0.6284 / (0.287 × 300) = 8.054 kg/s Therefore, the mass flow rate of air is 8.054 kg/s.
Given,The volume flow rate of air is 7.0833 m³/sThe suction conditions are 101.325 kPa and 27 °C The air is compressed to 1034 kPa.The compression follows PV1.35
= C The Gas constant R for air
= 0.287 kJ/kg-K.To find, the mass flow rate of air, m'
= kg/s.The formula to calculate mass flow rate is:m
= PAV/RTWhere,P
= absolute pressure of the gasA
= cross-sectional area of the pipe V
= volume flow rate of the gasR
= gas constant of the gasT
= absolute temperature of the gas From the given data, we have,Initial Pressure P1
= 101.325 k Pa Final Pressure P2
= 1034 k Initial Temperature T1
= 27 °C
= 300 K Compression follows PV 1.35
= CSo, P1V1.35
= P2V2.35
=> V2
= (P1/P2)^{1/1.35} × V1
= (101.325/1034)^{1/1.35} × 7.0833
= 0.6284 m³/s. We can calculate the mass flow rate of air as,m
= PAV/RT
= P2 × A2 × V2 / R × T2
= 1034 × π / 4 × (0.25)^2 × 0.6284 / (0.287 × 300)
= 8.054 kg/s Therefore, the mass flow rate of air is 8.054 kg/s.
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n ° 1: There is a three-phase asynchronous motor in a four-pole squirrel-cage rotor, 220/380 v, 50 Hz, which has the following equivalent circuit parameters:
R1 = 2 Ωs ; X1 = 5 Ωs ; R'2 = 1,5 Ωs ; X'2 = 6 Ωs;
Mechanical losses and the parallel branch of the equivalent circuit are neglected. The motor moves a load whose resistant torque is constant and is equal to 10 N.m.
a) If the network is 220 v, 50 Hz. How will the motor be connected?
b) At what speed will the motor rotate with the resisting torque of 10 N.m.?
c) What will be the performance of the engine under these conditions?
d) If the motor works in permanent regime under the conditions of the previous section and the supply voltage is progressively reduced.
What will be the minimum voltage required in the supply before the motor stops?
e) If it is intended to start the motor with the resistant torque of 10 N.m, what will be the minimum voltage necessary in the network so that the machine can start?
a) If the network is 220 V, 50 Hz, the motor will be connected in delta connection; b) 1335 RPM, c) 92.2%; d) 160.6 V is the minimum voltage required for the motor to continue running, e) Minimum voltage required to start the motor is 132.6 V.
[tex]N = NS - (Torque / T) × (R₁ + R'₂) / X₁ + X'₂)[/tex]
b) To calculate the synchronous speed of the motor, use the following formula: NS = 120f / p Where NS is synchronous speed, f is the frequency of the supply, and p is the number of poles.
The number of poles is 4. The synchronous speed of the motor is calculated below: NS = 120 × 50 / 4
= 1500 RPM
The slip can be calculated using the following formula: Slip = (NS - N) / NS Where N is the rotor speed. The speed of the rotor is calculated as: [tex]N = NS - (Torque / T) × (R₁ + R'₂) / X₁ + X'₂)[/tex]
The rotor speed is N = 1414.28 RPM.
The slip is Slip = 0.056 or 5.6%.
Thus, the actual speed of the motor under this load is 1414.28 RPM x (1 - 0.056)
= 1335 RPM
c) The motor's efficiency can be calculated using the following formula: η = (T × N) / (T × N + (Pcu + Pfe))
The values of T and N are provided in the problem statement. Pcu and Pfe can be calculated as follows:
[tex]Pcu = 3 × (I₁²R₁ + I₂²R'₂)[/tex]
Pcu = 3 × ((7.27)² × 2 + (4.33)² × 1.5)
Pcu = 181.85 W
motor efficiency η = (10 N.m × 1335 RPM × 2π / 60) / ((10 N.m × 1335 RPM × 2π / 60) + (181.85 W + 380 W))η
= 92.2%
d) When the supply voltage is reduced, the slip increases, which reduces the speed of the motor. When the slip increases, the torque decreases, and the current drawn by the motor decreases. If the voltage is decreased to the point where the slip is equal to one, the motor stops. The slip at standstill is given by the following formula:
[tex]Slip = (R₁ + R'₂) / X₁ + X'₂[/tex]
Slip = (2 + 1.5) / 5 + 6Slip
= 0.27 or 27%
The voltage required to achieve this slip is calculated as follows: V = (1 - Slip) × 220V
V= 0.73 × 220V
V = 160.6 V
Therefore, 160.6 V is the minimum voltage required for the motor to continue running.
e) The minimum voltage required to start the motor can be determined by calculating the voltage required for the current in the stator to be equal to the rated current of the motor. The rated current can be calculated using the following formula:I₁ = P / (3Veff cosφ)Where P is the power consumed by the rotor, Veff is the effective line voltage, and cosφ is the power factor of the motor.
The power consumed by the rotor is calculated using the following formula: P = (T × N) / 9.55 × 1000P
= (10 N.m × 1335 RPM) / 9.55 × 1000P
= 14.1 kW
The power factor of the motor is not given in the problem statement. It is generally assumed to be between 0.8 and 0.9.
Let us assume a power factor of 0.85.
[tex]I₁= 14,100 W / (3 × 220 Veff × 0.85)I₁[/tex]
= 26.7 A
Since the motor is assumed to be a delta-connected motor, the line current will be equal to the phase current. Therefore, the minimum voltage required to start the motor will be the voltage required for a current of 26.7 A. This voltage can be calculated using the following formula:
[tex]Vmin = I₁ × (R₁ + R'₂ ) + Vline/√3 × X₁ + X'₂[/tex]
Vmin = 26.7 × (2 + 1.5) + 220 / √3 × (5 + 6)
Vmin = 132.6 V
Therefore, the minimum voltage required to start the motor is 132.6 V.
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1.
2.Enumerate and explain briefly using a suitable
diagrams various methods of starting a polyphase induction
motor
9-4. How is induced torque developed in a single-phase induction motor (a) according to the double revolving-field theory and \( (b) \) according to the cross-field theory?
1. Various methods of starting a polyphase induction motorThe polyphase induction motors are generally started in any of the following ways:Direct-on-line startingStar-delta startingRotor resistance starting Autotransformer startingSoft-startingDirect-on-line starting
The most simple and economical method of starting a three-phase induction motor is DOL starting. This method is also known as full-voltage starting. In this method, the full voltage of the power supply is applied to the motor terminals. Therefore, the starting current is very large, typically 6 to 8 times the rated current. It is only used for small motors.Star-Delta StartingIn this method, the motor is started by applying the reduced voltage to the stator winding.
However, the rotor's magnetic field is alternating and pulsating in nature. The interaction of these two fields results in the production of torque. The alternating flux induces the current in the rotor. This induced current produces an alternating flux in the rotor that interacts with the stator flux and develops torque. The torque developed is proportional to the product of stator flux and rotor flux.
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1. AM signal for given single-tone message signal m() = 1cos(2100)and carrier signal
c() = cos(21000)with the amplitude sensitivity for = 0.75 , = 1, and = 1.5
a. Find AM Signal
b. Find spectrum of AM signal
c. Find the Power of AM signal
d. Find demodulation signal
a. AM Signal: The message signal and carrier signal can be written as: m(t) = Ac cos(2πfmt) and c(t) = Accos(2πfct).
The equation for amplitude modulation is given by:
AM(t) = Ac[1 + ka m(t)]cos(2πfct) where ka is the amplitude sensitivity.
According to the given problem, we have m(t) = cos(2100πt), c(t) = cos(21000πt), ka = 0.75, Ac = 1.
Substituting the values into the equation, AM(t) = [1 + 0.75 cos(2100πt)] cos(21000πt).
b. Spectrum of AM Signal:
The frequency spectrum of the AM signal can be calculated using the formula:
[tex]S(f) = Ac/2 [J(f-fc) + J(f+fc)] + Ac/4ka [J(f-fc-fm) + J(f+fc+fm) + J(f-fc+fm) + J(f+fc-fm)],[/tex]
where J is the Bessel function of the first kind, and fm is the maximum frequency of the message signal.
In this case, fm = 2100 Hz, fc = 21000 Hz.
Substituting the values into the formula, we get:
[tex]S(f) = (1/2)[J(f-21000) + J(f+21000)] + (0.75/4)[J(f-23100) + J(f+23100) + J(f-18900) + J(f+18900)].[/tex]
c. Power of AM Signal:
The power of the AM signal can be calculated using the formula:
[tex]P = Ac^2/4[1 + ka^2/2].[/tex]
In this case, Ac = 1,
ka = 0.75.
Substituting the values into the formula, we get:
[tex]P = (1/4)[1 + (0.75)^2/2] = 0.414.[/tex]
d. Demodulation Signal:
The demodulation of the AM signal can be done using an envelope detector.
The envelope detector is a diode-based circuit that rectifies the AM signal and filters out the carrier frequency component.
The demodulation signal can be written as:
[tex]m(t) = [AM(t) - Vd]/ka,[/tex] where Vd is the voltage drop across the diode.
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horizontal movement of water across the ocean's surface _____________.
The horizontal movement of water across the ocean's surface is primarily driven by ocean currents. These currents are influenced by factors such as wind patterns, temperature differences, and the Earth's rotation. surface currents, which occur in the top 400 meters of the ocean, play a significant role in this movement.
The horizontal movement of water across the ocean's surface is primarily driven by ocean currents. Ocean currents are large-scale movements of water that flow in a specific direction. These currents are influenced by various factors, including wind patterns, temperature differences, and the Earth's rotation.
There are two main types of ocean currents: surface currents and deep currents. Surface currents are driven by wind and primarily occur in the top 400 meters of the ocean. They are responsible for the horizontal movement of water across the ocean's surface. Surface currents can be influenced by global wind patterns, such as the trade winds and the westerlies. They also play a crucial role in redistributing heat around the Earth, affecting climate and weather patterns.
Understanding the horizontal movement of water across the ocean's surface is essential for studying oceanography, climate science, and marine ecosystems.
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The horizontal movement of water across the ocean's surface is known as ocean currents. These currents are formed due to various factors like winds, temperature, salinity, topography, and gravity.
They play a vital role in the distribution of heat and energy around the globe, which further influences climate patterns, marine life, and other weather phenomena.
Ocean currents can be divided into two types: surface currents and deep-water currents. Surface currents are driven by wind patterns and are found in the upper 400 meters of the ocean's surface.
These currents are responsible for redistributing heat from the equator to the poles, resulting in temperature moderation of the surrounding areas. Some of the most well-known surface currents include the Gulf Stream, the Kuroshio Current, and the Canary Current.
Deep-water currents, on the other hand, are driven by differences in density caused by variations in temperature and salinity. These currents move much more slowly than surface currents and are found below the thermocline.
These currents are crucial in carrying nutrients to marine ecosystems and play a significant role in the Earth's carbon cycle, regulating the amount of CO2 in the atmosphere.
Ocean currents are affected by climate change, with warming waters and melting sea ice impacting their distribution and strength. Understanding ocean currents and how they function is critical to predicting future climate patterns, and studying them helps researchers better understand the complex interactions of the Earth's systems.
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Should the leakage inductance of an inductor be in parallel or in series with the magnetizing inductance?
a. In parallel
b. In series
c. It depends
The leakage inductance of an inductor should be in series with the magnetizing inductance. The leakage inductance in an inductor results from the incomplete magnetic linkage between the primary and secondary winding of the transformer caused by the leakage flux.
Leakage flux or magnetic flux is generated in the inductor as a result of the inductor's current. When the current in the inductor changes, the magnetic field also changes, causing the magnetic flux in the inductor to change.In parallel, the leakage inductance should not be used with the magnetizing inductance.
The leakage inductance generates an unwanted voltage drop and distorts the current flowing in the primary winding.
The magnetizing inductance, on the other hand, is utilized for energy storage and is the inductance necessary to maintain the magnetic field in the inductor.
As a result, the magnetizing inductance must be in series with the leakage inductance to prevent the leakage inductance from impeding the flow of current and causing unnecessary energy loss.
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About how many half-lives have elapsed when a radioactive substance has decayed to less than 1% of its original amount? 05 O 50 07 O 10 32 99
About 7 half-lives have elapsed when a radioactive substance has decayed to less than 1% of its original amount.
Radioactive decay is a process where a nucleus of an unstable atom loses energy by emitting radiation. The amount of time it takes for half of a sample to decay is called the half-life of the substance. If we want to know the amount of time it takes for a radioactive substance to decay to less than 1% of its original amount, then it would require a minimum of 7 half-lives to pass by.
This is because, after each half-life, the amount of radioactive substance will be reduced by 50%. So, if we take 50% for 7 times (7 half-lives), it will give us a value that is less than 1%. Therefore, about 7 half-lives have elapsed when a radioactive substance has decayed to less than 1% of its original amount.
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