(a) It takes approximately 1.91 seconds for the capacitor to lose half of its charge.
(b) It takes approximately 1.91 seconds for the capacitor to lose half of its charge and half of its stored energy.
(a) To find the time it takes for the capacitor to lose half of its charge, we can use the formula Q(t) = Q₀ * [tex]e^(^\frac{t}{^R^C} ^)[/tex], where Q₀ is the initial charge on the capacitor, R is the resistance, C is the capacitance, and t is the time. We want to solve for t when Q(t) = Q₀/2.
Substituting the given values, we have
6.00 × 10⁻⁵ C
= 1/2 * 1.2 × 10⁻⁵ C *[tex]e^(^\frac{-t}{225} ^*^1^.^2^*^1^0^-^5[/tex]).
Simplifying, we get [tex]e^(^\frac{t}{^R^C} ^)[/tex]= 0.5, which gives t = 1.91 s.
(b) The energy stored in a capacitor is given by the formula U = 1/2 * C * V², where U is the energy, C is the capacitance, and V is the potential difference across the capacitor. To find the time it takes for the capacitor to lose half of its stored energy, we need to determine the potential difference across the capacitor when it has lost half of its energy.
Since the energy stored in a capacitor is proportional to the square of the potential difference, the potential difference across the capacitor when it has lost half of its energy is equal to (1/sqrt(2)) * 50.0 V = 35.4 V. We can then use the same formula as in part (a) with V = 35.4 V to find the time it takes for the capacitor to discharge to this potential.
Substituting the given values, we have
0.5 * 1.2 × 10⁻⁵ F * (35.4 V)²
= 1/2 * 1.2 × 10⁻⁵ C * (35.4 V)
= 2.12 × 10⁻⁴ C,
which gives [tex]e^(^\frac{t}{^R^C} ^)[/tex] = 0.5.
Solving for t, we get t = 1.91 s, which is the same as the time it takes for the capacitor to lose half of its charge.
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Recall from eqn 16.26 that H=G-T (∂G/∂T)p (18.9) Hence show that ΔG-ΔH = T(∂ΔG/∂T)p (and explain what happens to these terms as the temperature T → 0.
As T→0, the difference ΔG−ΔH approaches zero, indicating that the free energy change and enthalpy change become equal. H=G+TS=G−T(∂G/∂T)p=−T2(∂T/∂(G/T))p, is known as the Maxwell relation, which relates partial derivatives of thermodynamic quantities.
Starting with the expression H=G−T(∂G/∂T)p, we can write the differential form of ΔG and ΔH as:
dΔG=(∂ΔG/∂T)p dT
dΔH=(∂ΔH/∂T)p dT
By dividing these two expressions, we obtain:
d(ΔG−ΔH)=dΔG−dΔH
= (∂ΔG/∂T)p dT − (∂ΔH/∂T)p dT
= [∂(ΔG−ΔH)/∂T]p dT
Therefore, we can write:
ΔG−ΔH=∫[∂(ΔG−ΔH)/∂T]p dT
Now, we can use the expression H=G−T(∂G/∂T)p to write H as:
H=G−T(∂G/∂T)p
ΔH=ΔG−T(∂ΔG/∂T)p
ΔG−(ΔG−T(∂ΔG/∂T)p)=∫[∂(ΔG−ΔH)/∂T]p dT
Simplifying this gives:
T(∂ΔG/∂T)p=ΔG−ΔH
Therefore, we have shown that ΔG−ΔH=T(∂ΔG/∂T)p.
As a result, ΔG and ΔH become dominated by the enthalpy and internal energy terms, respectively. In this limit, we can write:
ΔG≈ΔH+TΔS
ΔH≈ΔE+PΔV
where ΔS is the entropy change, ΔE is the internal energy change, and ΔV is the volume change. Substituting these expressions in the equation ΔG−ΔH=T(∂ΔG/∂T)p, we get:
ΔE+PΔV−ΔE−PΔV=0
A subfield of physics known as thermodynamics is concerned with the investigation of energy and its changes in diverse physical systems. It is focused on how variations in temperature, pressure, and other factors impact the link between heat, work, and other types of energy.
The laws of thermodynamics control how energy behaves in various systems, particularly when it transforms from one form to another.The principles of thermodynamics also play a crucial role in understanding the behavior of materials at different temperatures and pressures, and in predicting chemical reactions and phase changes.The second law of thermodynamics states that some energy is lost as waste heat throughout every energy transfer.
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Complete Question:-
Recall from eqn 16.26 that H=G−T( ∂T/∂G) p . Hence show that ΔG−ΔH=T( ∂T/∂ΔG) p , and explain what happens to these terms as the temperature T→0. H=G+TS=G−T( ∂T/∂G ) p =−T/2( ∂T/∂(G/T)) p
1) Identify a source of interest to you. Provide the bibliographic information for the reader.
2) Summarize the source in at least two well developed paragraphs. Identify the main point of the article as well as the evidence advanced in support of it.
3) Significance. Identify the significance of the source—why is it important?—what practical or theoretical consequences might follow from the main point?—what limitations, objections, or weaknesses might be present that could serve to undermine the significance of the source?
4) Explain what you learned about philosophy as a whole; would you recommend that our class address the themes covered in the source? Why or why not?
5) Recommendation: One a scale of 1-5, with five being the highest, rank the quality and importance of this article. Be sure to explain your ranking.
https://aeon.co/essays/natural-laws-cant-be-broken-but-can-they-be-defined
The significance of a source in research is crucial as it determines the reliability and validity of the information presented. A credible source is important because it ensures that the information presented is accurate and trustworthy.
Using sources that are not credible or reliable can lead to the spread of misinformation, which can have practical consequences such as wrong decisions and actions based on incorrect information. Theoretical consequences could include flawed research or faulty arguments. It is important to consider the limitations, objections, or weaknesses of a source, as these can undermine its significance. This includes evaluating factors such as bias, sample size, and methodology used in the research.
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--The complete Question is, Identify the significance of the source—why is it important?—what practical or theoretical consequences might follow from the main point?—what limitations, objections, or weaknesses might be present that could serve to undermine the significance of the source?--
Students measure velocity as a function of changing time for an object moving at a constant rate. The following math model was generated, but the students had to linearize the data first to create this math model. What relationship originally existed between velocity and time? velocity(m/s) = (10(m))/(t(s))
Inverse proportional relationship between velocity and time originally existed for the measured data of an object moving at a constant rate, which was linearized to obtain the equation: velocity(m/s) = (10(m))/(t(s)).
The original relationship between velocity and time was inverse proportional. This can be seen in the equation given: velocity = (10m)/(t), where m is a constant of proportionality representing the distance travelled by the object. As time increases, velocity decreases, and vice versa. This is a characteristic of motion at a constant rate, where the object covers equal distances in equal time intervals, resulting in a uniform decrease in velocity over time. To linearize the data, the students likely plotted velocity versus the inverse of time, which would give a straight line with a negative slope.
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a 7.6-kg cat moves from rest at the origin to hunk of cheese located 9.7 m along the x-axis while acted on by a net force with 3.5 n, 3.6 n/m, and 1.7 n/m2.Find the cat's speed v as it passes the hunk of cheese.m/s
The cat's speed as it passes the hunk of cheese is approximately 22.5 m/s.
To find the cat's speed as it passes the hunk of cheese, we'll need to calculate the net force acting on the cat and then use Newton's second law of motion to find the acceleration.
Finally, we'll use the kinematic equations to find the final speed.
Step 1: Calculate the net force acting on the cat
F_net = 3.5 N + 3.6 N/m * 9.7 m + 1.7 N/m² * (9.7 m)²
F_net = 198.373 N
Step 2: Use Newton's second law of motion to find the acceleration
F_net = m * a
198.373 N = 7.6 kg * a
a = 198.373 N / 7.6 kg
a ≈ 26.1 m/s²
Step 3: Use the kinematic equations to find the final speed
v² = u² + 2as, where u is the initial speed (0 m/s since the cat starts from rest), a is the acceleration, and s is the displacement along the x-axis.
v² = 0² + 2 * 26.1 m/s² * 9.7 m
v^2 = 506.34 m²/s²
v = √(506.34 m²/s²)
v ≈ 22.5 m/s
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1.Use the value of the buoyant force to calculate an experimental value of the volume of the 250 g mass in kg/m3 (Fb = rhoLVD g). The density of water is approximately 1000 kg/m3. Show your work.
2. Use the measured dimensions of the 250 g mass to calculate the volume of the mass, Show your work.side=1.5cm length=5.5cm
3. Determine the percent difference between the measured volume of the 250 g mass and the value calculated from the buoyant force measurement. Show your work.
Object Weight in Air (N) Weight in Water (N) Buoyant Force (N) Volume Displaced (mL)
250 g Hanging Mass 3.1 2.6 -.05 65
The measured volume of 65 mL in the given case is 425 %
The buoyant force is given by Fb = rhoLVDg, where rhoL is the density of the fluid (in this case, water), V is the volume of the displaced fluid, and g is the acceleration due to gravity.
We know that the buoyant force on the 250 g mass is -0.05 N (since it is pushing up against the weight of the mass). We can solve for V as follows:
-0.05 N = (1000 kg/m[tex]^3[/tex])(V m[tex]^3[/tex])(9.8 m/s[tex]^2[/tex])
V = -0.05/(1000*9.8) = -5.1 x 10[tex]^-6 m^3[/tex]
This value is negative, which doesn't make sense (since volume can't be negative). Therefore, there may be some experimental error or measurement uncertainty in the buoyant force measurement.
The volume of the 250 g mass can be calculated using its dimensions (side = 1.5 cm, length = 5.5 cm). Since the mass is rectangular in shape, its volume can be found as V = side^2 * length. Converting the units to meters, we have:
V = (0.015 m[tex])^2 *[/tex]0.055 m = 1.24 x 10[tex]^-5 m^3[/tex]
The percent difference between the measured volume of the 250 g mass and the value calculated from the buoyant force measurement can be found as:
% difference = |(measured volume - calculated volume)/calculated volume| * 100%
Using the measured volume of 65 mL (which is equivalent to 6.5 x 10[tex]^-5 m^3[/tex]), we have:
% difference = |(6.5 x 10[tex]^-5[/tex] - 1.24 x 10[tex]^-5[/tex])/1.24 x 10[tex]^-5[/tex]| * 100% = 425%
This means that the calculated volume from the buoyant force measurement is more than four times larger than the measured volume. As noted earlier, this suggests that there may be some experimental error or measurement uncertainty in the buoyant force measurement.
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A rod is laid out along the x-axis with one end at the origin and the other end at x = L. The linear density is given by the following: rho(x) = rho0+(rho1-rho0)(x/L)2, where rho0 and rho1 are constant values. For L = 0.65 m, rho0 = 1.2 kg/m, and rho1 = 5.3 kg/m, determine the center of mass of the rod, in meters.
The center of mass of the rod, in meters is at a distance of 0.142 meters from the origin along the x-axis.
To determine the center of mass of the rod, we can use the formula:
xcm = (1/M) ∫ρ(x)xdx
where M is the total mass of the rod and ρ(x) is the linear density at position x.
To find M, we can integrate the linear density function over the length of the rod:
M = ∫ρ(x)dx from x=0 to x=L
Substituting the given linear density function, we have:
M = ∫[rho0+(rho1-rho0)(x/L)2]dx from x=0 to x=L
M = rho0L + (rho1-rho0)(L/3)
M = 1.2(0.65) + (5.3-1.2)(0.65/3)
M = 2.6 kg
Now, we can integrate the product of ρ(x) and x over the length of the rod to find the numerator of the center of mass formula:
∫ρ(x)xdx from x=0 to x=L
= ∫[rho0+(rho1-rho0)(x/L)2]x dx from x=0 to x=L
= [rho0x2/2 + (rho1-rho0)(x/L)4/20] from x=0 to x=L
= rho0L2/2 + (rho1-rho0)L4/20
= 0.369 kg·m
Finally, we can calculate the center of mass using the formula:
xcm = (1/M) ∫ρ(x)xdx
xcm = (1/2.6) (0.369)
xcm = 0.142 m
Therefore, the center of mass of the rod is located at 0.142 meters from the origin along the x-axis.
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A current of 0.8 A passes through a lamp with a resistance of 5 Ohms. What is the power supplied to the lamp in Watts? Round your answer to 2 decimal places. Question 32 of 33 3.0 Points A hair dryer uses 578 W of power. If the hair dryer is using 7 A of current, what is the voltage (in Volts) that produces this current ? Round your answer to 1 decimal place. Question 33 of 33 3.0 Points A 2.1 V battery supplies energy to a simple circuit at the rate of 59 W. What is the resistance of the circuit in Ohms? Round your answer to 1 decimal place.
1) Power in lamp 3.2 Watts, 2) Current in hair dryer is 82.6 Volts, 3) Resistance in circuit is 0.1Ω
To find the power supplied to the lamp, you can use the formula P = I²R, where P is power, I is current, and R is resistance.
1. Plug in the given values: P = (0.8 A)² × 5 Ohms
2. Calculate: P = 0.64 × 5
3. Get the result: P = 3.2 Watts
Answer: The power supplied to the lamp is 3.2 Watts.
Question 33:
To find the voltage of the hair dryer, you can use the formula P = IV, where P is power, I is current, and V is voltage.
1. Rearrange the formula to solve for voltage: V = P / I
2. Plug in the given values: V = 578 W / 7 A
3. Calculate: V = 82.5714
4. Round to 1 decimal place: V = 82.6 Volts
Answer: The voltage that produces the current for the hair dryer is 82.6 Volts.
Question 34:
To find the resistance of the circuit, you can use the formula P = V²/R, where P is power, V is voltage, and R is resistance.
1. Rearrange the formula to solve for resistance: R = V² / P
2. Plug in the given values: R = (2.1 V)² / 59 W
3. Calculate: R = 4.41 / 59
4. Get the result: R = 0.07475
5. Round to 1 decimal place: R = 0.1 Ω
Answer: The resistance of the circuit is 0.1 Ohms.
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Sound A has a high pitch and sound B has a low pitch. Which of the following statements about these two sounds are correct? (There could be more than one correct choice.) a. The frequency of A is greater than the frequency of B. The period of A is shorter than the period of c. The amplitude of A is larger than the amplitude of d. Sound B travels faster than sound B through air. e. The wavelength of A is longer than the wavelength of B.
Answer: a. The frequency of A is greater than the frequency of B.
c. The period of A is shorter than the period of B.
e. The wavelength of A is longer than the wavelength of B.
Explanation:
The frequency of a sound, or the number of waves or cycles per second, determines its pitch. Sounds with higher pitches have a higher frequency than those with lower pitches.
The length of time it takes for a sound wave to complete one full cycle is known as its period. The relationship between the period and frequency is inverse. This implies that the time shortens as the frequency lengthens.
The distance between two successive wave points that are in phase, or have the same displacement and velocity, is known as the wavelength of a sound wave. The wavelength has an inverse relationship with sound speed and a direct relationship with frequency. Accordingly, if the sound speed remains constant, the wavelength will decrease as the frequency rises.
The maximum displacement of particles from their resting state is the amplitude of a sound wave. The pitch and frequency of the sound are unaffected by the amplitude. It solely controls the sound's volume or intensity.
The medium that sound travels through determines its speed. In general, sound moves more quickly through solids than through liquids and through liquids than through gases. A sound wave's frequency or pitch have no bearing on how quickly it travels.
A particle moving in one dimension (the -axis) is described by the wave function Ψ(x) = Ae^-bx for x ≥0
Ae^bx for x<0
where b 2.00 m^-1, A>0, and the +z-axis points toward the right. Find the probability of finding this particle in each of the following regions: within 40.0cm of the origin.
P = __
Therefore, the probability wave function for finding the particle within 40.0 cm of the origin is approximately 0.276.
The wave function over that region:
P = ∫ |Ψ(x)|^2 dx
For the region within 40.0 cm of the origin, we need to split the integral into two parts: one from 0 to 0.4 m (since the particle is moving along the x-axis) and the other from -0.4 m to 0 (since the wave function is different for x<0).
P = ∫(0 to 0.4) |Ae^-bx|^2 dx + ∫(-0.4 to 0) |Ae^bx|^2 dx
P = ∫(0 to 0.4) A^2e^-2bx dx + ∫(-0.4 to 0) A^2e^2bx dx
P = [A^2/2b] [1 - - [tex]e^{-0.8b[/tex]] + [A^2/2b] [1 - - [tex]e^{-0.8b[/tex]
P = A^2/b [1 - [tex]e^{-0.8b[/tex]]
Wave function is normalized, the total probability of finding the particle anywhere along the x-axis is 1. Therefore, we can solve for A using this condition:
∫ |Ψ(x)|^2 dx = 1
∫(0 to infinity) |Ae^-bx|^2 dx + ∫(-infinity to 0) |Ae^bx|^2 dx = 1
A^2 [ ∫(0 to infinity) e^-2bx dx + ∫(-infinity to 0) e^2bx dx ] = 1
A^2 [ 1/b + 1/b ] = 1
A^2 = b/2
A = [tex]\sqrt{(b/2)}[/tex]
An into the expression for P, we get:
P = (b/2)/b [1 - [tex]e^{-0.8b[/tex]]
P = 1/2 [1 - [tex]e^{-0.8b[/tex]]
Now we can substitute the value of b:
P = 1/2 [1 - [tex]e^{-1.6[/tex]]
P ≈ 0.276
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In a material having an index of refraction n, a light ray has frequency f, wavelength ? and speed v.a) What is the frequency of this light in vacuum and in a material having refractive index n1?
b) What is the wavelength of this light in vacuum and in a material having refractive index n1?
c) What is the speed of this light in vacuum and in a material having refractive index n1?
In a material having an index of refraction n, a light ray has frequency f, wavelength λ and speed v then,
a) The frequency of the light in a vacuum and in a material with refractive index [tex]n_1[/tex] is f.
b) The wavelength of the light in a vacuum is λ₀ [tex]=\frac{c}{f}[/tex], and in a material with refractive index n1 is λ₁ =λ₀/n1.
c) The speed of light in a vacuum is c, and in a material with refractive index n1 is [tex]v_1 = \frac{c}{n_1}[/tex].
a) The frequency of the light ray in both the material and in vacuum:
The frequency of a light wave remains constant when it passes through different materials. So, the frequency of the light ray in vacuum and in a material with refractive index n1 will be the same as the given frequency, f.
b) The wavelength of the light ray in vacuum and in a material with refractive index n1:
In vacuum, the wavelength of the light ray (λ₀) can be calculated using the formula:
v = c = λ₀ * f
Where c is the speed of light in vacuum ([tex]3.0 \times 10^8[/tex] m/s).
Solving for λ₀, we get:
λ₀[tex]=\frac{c}{f}[/tex]
In the material with refractive index [tex]n_1[/tex], the wavelength (λ₁) can be calculated using the formula:
λ₁ = λ₀ / [tex]n_1[/tex]
c) The speed of the light ray in a vacuum and in a material with refractive index n1:
In a vacuum, the speed of the light ray is the speed of light (c), which is [tex]3.0 \times 10^8[/tex] m/s.
In the material with a refractive index [tex]n_1[/tex] , the speed (v₁) can be calculated using the formula:
[tex]v_1 = \frac{c}{n_1}[/tex].
In summary:
a) The frequency of the light in a vacuum and in a material with refractive index [tex]n_1[/tex] is f.
b) The wavelength of the light in a vacuum is λ₀ [tex]=\frac{c}{f}[/tex], and in a material with refractive index n1 is λ₁ =λ₀/n1.
c) The speed of light in a vacuum is c, and in a material with refractive index n1 is [tex]v_1 = \frac{c}{n_1}[/tex].
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determine the range of frequencies that will be passed by a series rlc bandpass filter with r = 16 ω, l = 25 mh, and c = 0.4µf. find the quality factor.
The range of frequencies that will be passed by the series RLC bandpass filter is approximately between 1540 Hz and 1642 Hz, and the quality factor is approximately 15.62.
To determine the range of frequencies that will be passed by a series RLC bandpass filter, we need to first find the resonant frequency (f₀), lower cutoff frequency (fL), upper cutoff frequency (fH), and quality factor (Q).
Given: R = 16 Ω, L = 25 mH, and C = 0.4 µF
Step 1: Calculate the resonant frequency (f₀).
f₀ = 1 / (2 * π * √(L * C))
f₀ = 1 / (2 * π * √(0.025 * 0.0000004))
f₀ ≈ 1591 Hz
Step 2: Calculate the quality factor (Q).
Q = √(L / C) / R
Q = √(0.025 / 0.0000004) / 16
Q ≈ 15.62
Step 3: Calculate the bandwidth (BW).
BW = f₀ / Q
BW ≈ 1591 / 15.62
BW ≈ 102 Hz
Step 4: Calculate the lower and upper cutoff frequencies (fL and fH).
fL = f₀ - (BW / 2)
fL ≈ 1591 - (102 / 2)
fL ≈ 1540 Hz
fH = f₀ + (BW / 2)
fH ≈ 1591 + (102 / 2)
fH ≈ 1642 Hz
The range of frequencies that will be passed by the series RLC bandpass filter is approximately between 1540 Hz and 1642 Hz, and the quality factor is approximately 15.62.
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In Racial Formations by micheals Omi and Howard Winant , how is race quantified? Explain in detail and what affect did the
quantification have on minority groups. Explain in at least two paragraphs.
determine the characteristic impedance of two 1-oz cu lands 100 mils in width that are located on opposite sides of a 47-mil glass epoxy board
The characteristic impedance of the two 1-oz cu lands 100 mils in width that are located on opposite sides of a 47-mil glass epoxy board is approximately 47.4 ohms.
The characteristic impedance (Z0) of a transmission line depends on the geometry of the line and the dielectric constant of the material between the conductors. The formula for the characteristic impedance of a microstrip transmission line is:
Z0 = (87.3 + 100*(w/h)ln(4w/h)) * (h/w)
where w is the width of the trace, h is the height of the substrate, and ln is the natural logarithm.
Assuming a standard FR-4 epoxy substrate with a dielectric constant of 4.5, and using the formula above with w = 100 mils (0.1 inch) and h = 47 mils (0.047 inch), we get:
Z0 = (87.3 + 100*(0.1/0.047)ln(40.1/0.047)) * (0.047/0.1) = 47.4 ohms
Therefore, the characteristic impedance of the two 1-oz cu lands 100 mils in width that are located on opposite sides of a 47-mil glass epoxy board is approximately 47.4 ohms.
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An air capacitor is made from two flat parallel plates 1.50 mm apart. the magnitude of change on each plate is0.0180uC when the potential difference is 200 VWhat maximum voltage can be applied without dielectric breakdown? (Dielectric breakdown for air occurs at an electric field strength of 3.0×106V/m.)
Answer should be measured in V
The maximum voltage that can be applied to the air capacitor without causing dielectric breakdown is 4500 V.
An air capacitor consists of two flat parallel plates that are 1.50 mm apart. The charge on each plate is 0.0180 µC and the potential difference across the plates is 200 V.
To determine the maximum voltage that can be applied without causing dielectric breakdown, we need to consider the dielectric breakdown strength for air, which is [tex]3.0 x 10^6 V/m[/tex].
First, we must convert the plate separation from millimeters to meters: 1.50 mm = 0.00150 m.
Next, we can calculate the electric field strength (E) using the formula E = V/d, where V is the potential difference (200 V) and d is the plate separation (0.00150 m).
[tex]E = 200 V / 0.00150 m = 133,333.33 V/m[/tex]
Since the dielectric breakdown strength for air is 3.0 x 10^6 V/m, we can now find the maximum voltage (V_max) using the formula
V_max = E_max * d,
where E_max is the dielectric breakdown strength (3.0 x 10^6 V/m) and d is the plate separation (0.00150 m).
[tex]V_max = (3.0 x 10^6 V/m) * 0.00150 m = 4500 V[/tex]
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Starting at t = 0s, a horizontal net force F = (0.275N/s)ti+(-0.460N/s2)t^2j is applied to a box that has an initial momentum p = (-2.90kg?m/s)i+(3.95kg?m/s)j. What is the momentum of the box at t = 2.05s?
The momentum of the box at t = 2.05s is (-2.3345375i - 1.131034j) kgm/s.
To find the momentum of the box at t = 2.05s, we need to use the equation:
p(t) = p(0) + ∫Fnet(t)dt
where p(0) is the initial momentum of the box, Fnet(t) is the net force acting on the box at time t, and ∫ represents the definite integral.
First, let's find the net force at t = 2.05s:
Fnet(2.05s) = (0.275N/s)(2.05s)i + (-0.460N/s²)(2.05s)²j
= 0.563875i - 4.86195j N
Next, let's integrate the net force from t = 0s to t = 2.05s:
∫Fnet(t)dt = ∫(0.275t)i + (-0.460t²)j dt
= (0.138t²)i - (0.153333t³)j from t = 0s to t = 2.05s
= (0.5654625)i - (5.081034j) Ns
Finally, we can find the momentum of the box at t = 2.05s:
p(2.05s) = p(0) + ∫Fnet(t)dt
= (-2.90kgm/s)i + (3.95kgm/s)j + (0.5654625)i - (5.081034j) Ns
= (-2.3345375)i - (1.131034j) kgm/s
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C. A child slides from rest (Vo = 0) down a frictionless water slide with height h = 15 m. Use the last equation in the Introduction to find their final speed v at h = 0. Show work.
At the bottom of the slide, the child is moving. Energy conservation will be used in this process.
The kid has all of his or her gravitational potential energy at the top of the slide, according to
Ui = mgh.
where m is the mass of the child
g=9.8
The height of the slide h = L sin 45o
How do kinetic energy and potential energy differ from one another?Mass and speed or velocity are the two factors that determine kinetic energy, whereas height, distance, and mass determine potential energy. Water in motion is an illustration of kinetic energy, whereas water at the top of a hill is an illustration of potential energy.
At the bottom of the slide, all of that energy will have been converted to kinetic energy:
Kf = ½ M V 2
we aren't losing any energy to friction, we must have
L sin 45o = ½ M V 2
L=21.21m
Solving v=12.124m/s
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A weight lifter benches a bar a vertical distance of 1.5m. What is the work done on the weights if the lifter exerts a constant force of 1000N?
Answer: 1500 Joules
Explanation: To calculate the work done by the weight lifter, we can use the formula:
Work = Force x Distance x cos(theta)
where "Force" is the force applied by the weight lifter, "Distance" is the vertical distance that the weight is lifted, and "theta" is the angle between the direction of the force and the direction of the displacement.
In this case, the force applied by the weight lifter is 1000N and the vertical distance lifted is 1.5m. Since the force is applied vertically upwards and the displacement is also vertical, the angle between the direction of the force and the direction of the displacement is 0 degrees (cos(0) = 1).
Therefore, the work done by the weight lifter is:
Work = 1000N x 1.5m x cos(0) = 1500 Joules
So the work done by the weight lifter on the weights is 1500 Joules.
18) if the intensity level by 10 identical engines in a garage is 100 db, what is the intensity level generated by each one of these engines? a) 50 db b) 90 db c) 44 db d) 20 db e) 10 db
the intensity level generated by each one of these engines 20 db.
To solve this problem, we need to use the formula for calculating the combined intensity level of multiple sound sources, which is:
L = 10 log (I / I0)
where L is the intensity level in decibels (db), I is the intensity of the sound waves, and I0 is the reference intensity (which is 10^-12 W/m^2).
We know that the intensity level of 10 identical engines in a garage is 100 db. We can use this information to calculate the total intensity of the sound waves generated by these engines:
100 db = 10 log (I / I0)
10 = log (I / I0)
I / I0 = 10^10
Now we need to find the intensity level generated by each engine. Since there are 10 engines generating the sound waves, we can divide the total intensity by 10 to get the intensity generated by each engine:
I' / I0 = (I / I0) / 10
I' / I0 = 10^9
Finally, we can use the formula again to calculate the intensity level generated by each engine:
L' = 10 log (I' / I0)
L' = 10 log (10^9)
L' = 10 x 9
L' = 90 db
Therefore, the intensity level generated by each one of these engines is 90 db. However, the question is asking for the answer in terms of the difference in intensity level compared to the combined intensity of all 10 engines. We can use the formula:
ΔL = L - L'
where ΔL is the difference in intensity level, L is the combined intensity level of all 10 engines (which is 100 db), and L' is the intensity level generated by each engine (which we just calculated as 90 db).
ΔL = 100 - 90
ΔL = 10 db
So the correct answer is d) 20 db (which is the difference between the combined intensity level of 100 db and the intensity level generated by each engine of 90 db, expressed as a difference in intensity level compared to the combined intensity level).
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a bowling ball has a mass of 2.83 kg, a moment of inertia of 2.8 X 10^-2 kg and a radius of 10.0m. If it rolls down the lane without slipping at a linear speed of 4.0m/s, what is its total kinetic energy?a.) 45Jb) 32Jc) 11Jd)78J
The total kinetic energy of the bowling ball is (a) 45J.
The formula for kinetic energy is 1/2mv², where m is the mass and v is the linear speed. However, since the bowling ball is rolling without slipping, it also has rotational kinetic energy, which is 1/2Iw², where I is the moment of inertia and w is the angular velocity.
To find the angular velocity, we can use the formula v = rw, where r is the radius. Rearranging this formula, we get w = v/r = 4.0m/s / 10.0m = 0.4 rad/s.
Now we can calculate the rotational kinetic energy: 1/2 * 2.8 X 10⁻² kg * (0.4 rad/s)² = 4.48 X 10⁻⁴ J.
To find the total kinetic energy, we just need to add the translational kinetic energy and the rotational kinetic energy: 1/2 * 2.83 kg * (4.0m/s)² + 4.48 X 10⁻⁴ J = 45 J.
Therefore, the answer is (a) 45J.
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A 21.0 g iron block initially at 25.1 °c absorbs 520 j of heat. what is the final temperature of the iron?
The final temperature of the 21.0 g iron block initially at 25.1 °C after absorbing 520 J of heat is 35.4 °C.
To find the final temperature, follow these steps:
1. Determine the specific heat capacity of iron, which is 0.449 J/g°C.
2. Use the formula q = mcΔT, where q is heat absorbed (520 J), m is mass (21.0 g), c is specific heat capacity (0.449 J/g°C), and ΔT is the change in temperature.
3. Rearrange the formula to solve for ΔT: ΔT = q / (mc).
4. Plug in the values: ΔT = 520 J / (21.0 g * 0.449 J/g°C) ≈ 5.3 °C.
5. Add the initial temperature (25.1 °C) to the change in temperature (5.3 °C) to find the final temperature: 25.1 °C + 5.3 °C = 35.4 °C.
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For the series-parallel network of Fig. 9.7, determine V1, R1, and R2 using the information provided. Show all work! Assume R internal = 0 Ω for all meters.
The series-parallel network circuit the total voltage is flow in the cicuit is 8 volts.
I_2=1mA from fig
[tex]I_1-I_2=2mA\\I_1=2mA+1mA\\[/tex]
KVL in Mesh 1
[tex]14-(I_1-I_2)R_2-2kI_1=0\\14-2mR_2-6=0\\8/2mA=R_2\\So, R_2=2k\ohm\\[/tex]
KVL in Mesh 2
[tex]-I2R_1-(I_2-I_1)R_2=0\\-1mR_1-(-2m) \times4k=0\\8=1mR_1R_1=8K\ohm\\V_1=1mA\times R_1=8v\\V_1=8v[/tex]
Electric potential difference and voltage are terms used to describe the electrical energy that an electric charge contains. Electric charges are propelled through a conductor by this force. Voltage is denoted by the letter "V" and is measured in volts (V).
In simple terms, voltage is the push or pressure that drives electric current through a circuit. The higher the voltage, the greater the force pushing the current. Voltage can be produced by a variety of sources such as batteries, generators, and power plants. Voltage is an essential concept in the field of electrical engineering and plays a crucial role in the design and operation of electrical systems. Understanding voltage is crucial for the safe and effective use of electrical equipment and appliances.
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what is the strength (in v/m) of the electric field between two parallel conducting plates separated by 2.90 cm and having a potential difference (voltage) between them of 1.45 ✕ 104 v? v/m
The strength of the electric field between the two conducting plates is approximately 5.0 × 10^5 V/m. To calculate the strength (in v/m) of the electric field between two parallel conducting plates, we can use the formula:
Given the potential difference (voltage) between the plates is 1.45 × 10^4 V, and the distance between them is 2.90 cm (which is 0.029 m in SI units), you can calculate the electric field strength as follows:
Electric field strength = Voltage / distance between plates
In this case, the voltage between the two plates is 1.45 ✕ 10^4 V and the distance between them is 2.90 cm (which is 0.029 m when converted to SI units).
So, the electric field strength is:
Electric field strength = 1.45 ✕ 10^4 V / 0.029 m = 5.00 ✕ 10^5 V/m
Therefore, the strength of the electric field between the two parallel conducting plates is 5.00 ✕ 10^5 V/m.
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If a meter was counted as "1-2-1-2-1-2-1-2." It could be described as
A syncopation
B quadruple meter
C triple meter
D duple meter
If a meter was counted as "1-2-1-2-1-2-1-2." It could be described as duple meter (option D)
What is duple meter?Duple meter is a musical term that refers to a rhythmic pattern in which each measure or bar contains two beats. The first beat is typically accented, and the second beat is unaccented. This creates a sense of forward motion or a "two-step" feel in the music.
The meter "1-2-1-2-1-2-1-2" is an example of duple meter, specifically simple duple meter. This is because there are two beats per measure and each beat is divided into two equal parts or subdivisions. The accents are usually on the first beat of each measure, which creates a steady and predictable rhythmic pattern.
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with 24 v across a 1,000 ohm resistor the current equals?
24 v across a 1,000 ohm resistor the current equals to 24 mA using ohm's law.
To find the current flowing through a 1,000 ohm resistor with 24 volts across it, you can use Ohm's Law, which states:
Calculate an electric circuit's voltage, resistance, and current. In order to maintain the required voltage drop across the electric components, ohm's law is also applied.
I (the amount of current flowing through a conductor) = V (the potential difference applied to the ends) divided by R (resistance) is the formula for Ohm's law.
Current (I) = Voltage (V) / Resistance (R)
In this case, Voltage (V) = 24 volts and Resistance (R) = 1,000 ohms. Plugging in these values:
Current (I) = 24 V / 1,000 ohms = 0.024 A (Amperes)
So, the current flowing through the 1,000 ohm resistor is 0.024 A or 24 mA (milliamperes).
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a car accelerates uniformly from rest and reaches a speed of 21.2 m/s in 8.95 s. assume the diameter of a tire is 58.3 cm, find the number of revolutions the tire makes during this motion, assuming that no slipping occurs
The tire makes approximately 144.7 revolutions during the motion.
The first step to finding the number of revolutions the tire makes during the motion is to calculate the distance traveled by the car using the formula:
d = (1/2)a[tex]t^2[/tex]+ vt
where d is the distance traveled, a is the acceleration, t is the time, and v is the final velocity.
Substituting the given values, we get:
d = (1/2)(21.2 m/s)/(8.95 s) * (8.95 s[tex])^2[/tex]= 84.4 m
The circumference of the tire can be calculated using the formula:
C = πd
where C is the circumference and d is the diameter of the tire.
Substituting the given value, we get:
C = π(58.3 cm) = 0.583 m
The number of revolutions the tire makes during the motion can be calculated by dividing the distance traveled by the circumference of the tire:
n = d/C = 84.4 m / 0.583 m = 144.7 revolutions
Therefore, the tire makes approximately 144.7 revolutions during the motion.
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a 400 gg ball swings in a vertical circle at the end of a 1.5-mm-long string. when the ball is at the bottom of the circle, the tension in the string is 13 n. You may want to review (Pages 192 - 194). For help with math skills, you may want to review: Mathematical Expressions involving Squares For general problem-solving tips and strategies for this topic, you may want to view a Video Tutor Solution of Vertical circle. What is the speed of the ball at that point? Express your answer to two significant figures and include the appropriate units. HA ?
The speed of the ball at the bottom of the circle is approximately 5.83 m/s.To find the speed of the ball at the bottom of the circle, we'll use the following terms and equations:
1. Gravitational force (Fg) = mass (m) × gravitational acceleration (g)
2. Centripetal force (Fc) = tension in the string (T) - gravitational force (Fg)
3. Centripetal force (Fc) = mass (m) × speed squared (v) ÷ radius (r)
First, let's find the gravitational force (Fg):
Fg = m × g
Fg = 0.4 kg (converted from 400 g) × 9.81 m/s
Fg ≈ 3.92 N
Next, let's find the centripetal force (Fc):
Fc = T - Fg
Fc = 13 N - 3.92 N
Fc ≈ 9.08 N
Now, let's find the speed (v) using the centripetal force equation:
Fc = m × v÷ r
9.08 N = 0.4 kg × v ÷ 1.5 m (converted from 1.5 mm)
Rearrange the equation to solve for v:
v^2 = (9.08 N × 1.5 m) ÷ 0.4 kg
v^2 ≈ 34.05
v = √34.05
v ≈ 5.83 m/s
Therefore, the speed of the ball at the bottom of the circle is approximately 5.83 m/s (rounded to two significant figures).
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what is the best description of a mechanical wave
B, A mechanical wave transfers energy through empty space
Explanation:A wave that is an oscillation of matter and is responsible for the transfer of energy through a medium is called a mechanical wave. The distance of the wave's propagation is limited by the medium of transmission.
OrA mechanical wave is a wave that is not capable of transmitting its energy through a vacuum. Mechanical waves require a medium in order to transport their energy from one location to another. A sound wave is an example of a mechanical wave.
Answer:
A is your answer
Explanation:
I am an former AP Physics student.
(1 pt) how would reducing the surface pressure affect the power required to operate the pumps (answer qualitatively)?
Reducing the surface pressure would lead to a decrease in the power required to operate the pumps. This is because reducing the pressure at the surface of a liquid lowers the boiling point of the liquid.
As a result, less energy is required to move the liquid through the pumps. This is because the lower boiling point means the liquid is less resistant to flow, and the pumps can move it more easily.
Additionally, reducing the surface pressure can reduce the amount of air in the liquid, which can also decrease the power required to operate the pumps. When there is air in the liquid, the pumps have to work harder to move the liquid through the system.
By reducing the surface pressure, the amount of air in the liquid can be reduced, and the pumps can work more efficiently.
Overall, reducing the surface pressure can lead to a decrease in the power required to operate the pumps, making the system more energy efficient.
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It is important to note that reducing the surface pressure may also affect the flow rate of the fluid, which could in turn affect the power required by the pump.
Surface pressure, also known as atmospheric pressure, is the force exerted by the weight of the Earth's atmosphere on the surface below. It is the result of the constant collisions between air molecules and the surface they come into contact with.
The unit of measurement for surface pressure is typically expressed in millibars (mb) or inches of mercury (inHg). It varies depending on factors such as temperature, altitude, and weather conditions. The standard sea-level pressure is around 1013 mb or 29.92 inHg. Surface pressure is an important parameter for meteorology and weather forecasting. It is used to determine areas of high and low pressure, which influence wind patterns, air masses, and precipitation.
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Complete Question:-
How would reducing the surface pressure affect the power required to operate the pumps (answer qualitatively)?
a pendulum is pulled back from its equilibrium (center) position and then released. at what points in the motion of the pendulum after release is its kinetic energy greatest?
The kinetic energy of a pendulum is greatest at the bottom of its swing, when it is moving fastest.
As the pendulum swings away from its equilibrium position, it gains potential energy, which is converted into kinetic energy as it swings back toward the center. At the top of the swing, the pendulum briefly comes to a stop before changing direction and swinging back down, so its kinetic energy is momentarily zero. But as it reaches the bottom of the swing, it has the highest velocity and therefore the greatest amount of kinetic energy.
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how many kilograms are in 16 lb? (hint: 2.20 lb = 1 kg and treat this conversion as exact)
There are 7.26 kilograms in 16 lb. This is because we can use the conversion factor of 2.20 lb = 1 kg. Therefore, we can divide 16 lb by 2.20 lb/kg to get the equivalent weight in kilograms: 16 lb / 2.20 lb/kg = 7.26 kg
So, if you have 16 lb of something, it is equivalent to 7.26 kg.
To convert 16 pounds (lb) to kilograms (kg), you can use the conversion factor provided: 1 kg = 2.20 lb. To find the number of kilograms in 16 lb, you can set up a proportion:
16 lb × (1 kg / 2.20 lb)
The "lb" units cancel out, leaving you with:
16 ÷ 2.20 kg
After performing the division, you get:
7.27 kg (approximately)
So, there are approximately 7.27 kilograms in 16 pounds, using the given conversion factor.
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