The acceleration due to gravity in millimeters/milliseconds² is 0.0098 mm/ms².
To express the acceleration due to gravity of a free-falling object (9.8 m/s²) in millimeters/millisecond², follow these steps:
1. Convert meters (m) to millimeters (mm): Since there are 1000 millimeters in a meter, multiply the given value by 1000.
9.8 m/s² × 1000 mm/m = 9800 mm/s²
2. Convert seconds (s) to milliseconds (ms): Since there are 1000 milliseconds in a second, divide the obtained value by 1000² (1000 multiplied by 1000).
9800 mm/s² ÷ (1000 ms/s × 1000 ms/s) = 9800 mm/s² ÷ 1000000 ms²
3. Calculate the final value:
9800 mm/s² ÷ 1000000 ms² = 0.0098 mm/ms²
So, the acceleration due to gravity of a free-falling object expressed in millimeters/millisecond² is 0.0098 mm/ms².
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The acceleration due to gravity in millimeters/milliseconds² is 0.0098 mm/ms².
To express the acceleration due to gravity of a free-falling object (9.8 m/s²) in millimeters/millisecond², follow these steps:
1. Convert meters (m) to millimeters (mm): Since there are 1000 millimeters in a meter, multiply the given value by 1000.
9.8 m/s² × 1000 mm/m = 9800 mm/s²
2. Convert seconds (s) to milliseconds (ms): Since there are 1000 milliseconds in a second, divide the obtained value by 1000² (1000 multiplied by 1000).
9800 mm/s² ÷ (1000 ms/s × 1000 ms/s) = 9800 mm/s² ÷ 1000000 ms²
3. Calculate the final value:
9800 mm/s² ÷ 1000000 ms² = 0.0098 mm/ms²
So, the acceleration due to gravity of a free-falling object expressed in millimeters/millisecond² is 0.0098 mm/ms².
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\Suppose a 1900 kg elephant is charging a hunter at a speed of 3.5 m/s Part (a) Calculate the momentum of the elephant, in kilogram meters per second Numeric : A numeric value is expected and not an expression. Pe= Part (b) How many times larger is the elephant's momentum than the momentum of a 0.045-kg tranquilizer dart fired at a speed of 230 m/s? Numeric : A numeric value is expected and not an expression Part (c) What is the momentum, in kilogram meters per second, of the 95-kg hunter running at 5.55 m/s after missing the elephant? Numeric :A numeric value is expected and not an expression ph-
The momentum of the hunter running at 5.55 m/s after missing the elephant is 526.25 kilogram meters per second.
Part (a) The momentum of the elephant can be calculated using the formula:
Momentum = mass x velocity
Pe = 1900 kg x 3.5 m/s = 6650 kg m/s
Therefore, the momentum of the elephant is 6650 kilogram meters per second.
Part (b) The momentum of the tranquilizer dart can be calculated using the same formula:
Momentum = mass x velocity
Pt = 0.045 kg x 230 m/s = 10.35 kg m/s
To find how many times larger the elephant's momentum is compared to the tranquilizer dart's momentum, we can use the ratio:
Pe/Pt = 6650/10.35 = 643.48
Therefore, the elephant's momentum is approximately 643 times larger than the momentum of the tranquilizer dart.
Part (c) The momentum of the hunter can be calculated using the same formula:
Momentum = mass x velocity
Ph = 95 kg x 5.55 m/s = 526.25 kg m/s
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At its most basic, what defines a capacitor?The presence of two terminals and ability to store a charge.The presence of only one terminal and ability to convert DC to AC current.The presence of five terminals and the ability to generate electricity.The presence of no terminals and the inability to conduct electricity.
A capacitor is the presence of two terminals and the ability to store a charge.
A capacitor is a two-terminal electrical device that can store energy in the form of an electric charge. It consists of two electrical conductors that are separated by a distance. The space between the conductors may be filled by a vacuum or with an insulating material known as a dielectric.
At its most basic, what defines a capacitor is the presence of two terminals and the ability to store a charge.
Capacitors are passive electronic components that store electrical energy by holding a charge between their two conductive plates, which are separated by an insulating material called a dielectric.
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Boron is implanted with an energy of 60 keV through a 0.25-um layer of silicon dioxide. The implanted dose is 1 x 1014/cm². (a) Find the boron concentration at the silicon-silicon dioxide interface. (b) Find the dose in silicon. (c) Determine the junction depth if the background concentration is 3 x 105/cm?
We must first compute the ion range and straggle in the silicon dioxide layer using the SRIM program, and then simulate the boron diffusion in silicon using a simulation programme like Sentaurus TCAD.
What occurs when silicon is added to boron?The atomic number of boron is 5. It has three valence electrons, or 3 electrons, in its outer orbit. P-type doping uses elements with three valence electrons, whereas n-type doping uses elements with five valence electrons.
(a) The boron concentration at the silicon dioxide interface can be calculated as follows, assuming that all boron atoms are halted there and do not diffuse into silicon:
N_boron_interface = implanted dose / area of implantation = 1e14/cm² / (pi*(0.25/2)²) = 1.61e16/cm³
(b) The dose in silicon can be calculated as follows, assuming that every implanted boron atom is evenly distributed throughout a slab of silicon with a thickness equal to the silicon ion range:
ion range in silicon = SRIM calculation = 0.15 um (approx.)
dose in silicon = implanted dose * ion range in silicon / implantation depth = 1e14/cm² * 0.15 um / 0.25 um = 6e12/cm²
(c) The junction depth can be calculated using Fick's rule of diffusion, assuming that the boron atoms flow into the silicon as follows:
D = diffusion coefficient * diffusion time
diffusion time = annealing temperature / pre-exponential factor = 900 C / 1e13 = 9e-8 sec (assuming pre-exponential factor = 1e13 sec⁻¹)
diffusion coefficient of boron in silicon at 900 C = 6.8e-12 cm²/sec (from literature)
D = 6.8e-12 cm²/sec * 9e-8 sec = 6.12e-19 cm²
Junction depth = sqrt(4Dbackground concentration) = sqrt(4*6.12e-19 cm² * 3e15/cm³) = 0.24 um (approx.)
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a current-carrying gold wire has a diameter of 0.86 mmmm. the electric field in the wire is 0.55 v/mv/m. use the resistivity at room temperature for gold is 2.4410-8 Ω · m.)
(a) What is the current carried by thewire?
1. ____A
(b) What is the potential difference between two points in the wire6.3 m apart?
2._____V
(c) What is the resistance of a 6.3 mlength of the same wire?
3.______Ω
a. Therefore, the current carried by the wire is 13.0 A.
b. Therefore, the resistance of a 6.3 m length of the same wire is 2.63 Ω.
c. Therefore, the potential difference between the two points in the wire 6.3 m apart is 3.46 V.
(a) The electric field in the wire and its diameter can be used to calculate the current using Ohm's law, where the current is given by I = A * J, where A is the cross-sectional area of the wire and J is the current density. The current density is given by J = E / ρ, where ρ is the resistivity of the wire.
The cross-sectional area of the wire is given by A = πr^2, where r is the radius of the wire, which is half of its diameter. Thus, r = 0.43 mm = 0.43 × [tex]10^{-3} m. \\A = pi * 0.43 * 10^{-3} m)^2 = 5.80 * 10^{-7} m^2.[/tex]
Using the given values, J = E / ρ = 0.55 V/m / (2.44 × 10^-8 Ω·m) = 2.25 × 10^7 A/m^2.
Therefore, I = A * J = ([tex]5.80 * 10^{-7} m^2) * (2.25 * 10^7 A/m^2)[/tex] = 13.0 A.
(b) The potential difference between two points in the wire can be calculated using the electric field and the distance between the two points. The potential difference is given by ΔV = Ed, where d is the distance between the two points.
Thus, ΔV = (0.55 V/m) * (6.3 m) = 3.46 V.
(c) The resistance of a 6.3 m length of the same wire can be calculated using the resistivity of the wire and the length and cross-sectional area of the wire. The resistance is given by R = ρL / A.
Thus, R =[tex](2.44 * 10^{-8} ) * (6.3 m) / (5.80 * 10^{-7} m^2)[/tex]
= 2.63 Ω.
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how will new screws comapare with original screws?
New screws can be compared with original screws in terms of their performance and suitability for the intended application depending on factors such as their size, material, thread type, and intended use.
What is a screw?A screw and a bolt are similar types of fastener typically made of metal and characterized by a helical ridge, called a male thread.
The replacement screws might not be similar to the original screws if they have different requirements.
For instance, the new screws could not be as strong or secure as the original screws if they are made of a weaker substance or have a different type of thread. The new screws may, however, outperform the original ones in terms of strength and longevity if they are made of a stronger substance or have a better thread pattern.
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(a) What is the capacitance of a parallel plate capacitor having plates of area 1.5 m2 that are separated by 0.02 mm of neoprene rubber (κ = 6.7)?(b) What charge does it hold when 9.00 V is applied to it?
The capacitance of the parallel plate capacitor is 6.64 x 10^-8 farads.
the parallel plate capacitor holds a charge of 5.98 x 10^-7 coulombs when 9.00 volts is applied to it.
(a) The capacitance of a parallel plate capacitor is given by:
C = ε₀A/d
where C is the capacitance in farads (F), ε₀ is the permittivity of free space (8.85 x 10^-12 F/m), A is the area of the plates in square meters (m^2), and d is the distance between the plates in meters (m).
In this case, A = 1.5 m^2 and d = 0.02 mm = 0.02 x 10^-3 m = 2 x 10^-5 m (since 1 mm = 10^-3 m). The permittivity of neoprene rubber is given as κ = 6.7, which is the dielectric constant of the material.
Using the formula for capacitance, we get:
C = ε₀A/d = (8.85 x 10^-12 F/m)(1.5 m^2)/(2 x 10^-5 m)
C = 6.64 x 10^-8 F
Therefore, the capacitance of the parallel plate capacitor is 6.64 x 10^-8 farads.
(b) The charge Q on a capacitor is related to the capacitance C and the voltage V applied to it by the formula:
Q = CV
where Q is the charge in coulombs (C), C is the capacitance in farads (F), and V is the voltage in volts (V).
In this case, we know the capacitance C and the voltage V, so we can calculate the charge Q:
Q = CV = (6.64 x 10^-8 F)(9.00 V)
Q = 5.98 x 10^-7 C
Therefore, the parallel plate capacitor holds a charge of 5.98 x 10^-7 coulombs when 9.00 volts is applied to it.
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An instructor builds a circuit in which an AC power supply with an rms voltage of 230 V is connected to a 2.10 kO resistor. (a) What is the maximum potential difference across the resistor (in V)? (b) What is the maximum current through the resistor (in A)? S (c) What is the rms current through the resistor (in A)? ( TWO 1 CTU EFFE (d) What is the average power dissipated by the resistor (in W)? sa w
(a) The maximum potential difference across the resistor is approximately 325.27 V.
(b) The maximum current through the resistor is approximately 0.1549 A.
(c) The rms current through the resistor is approximately 0.1095 A.
(d) Tthe average power dissipated by the resistor is approximately 25.41 W.
(a) To find the maximum potential difference across the resistor, we use the formula
V_max = V_rms * √2.
In this case, V_rms is 230 V. Therefore,
V_max = 230 * √(2) ≈ 325.27 V.
(b) To find the maximum current through the resistor, we use Ohm's Law:
I_max = V_max / R.
In this case, V_max is 325.27 V and R is 2.10 kΩ. Therefore,
I_max = 325.27 / 2100 ≈ 0.1549 A.
(c) To find the rms current through the resistor, we use the formula
I_rms = V_rms / R.
In this case, V_rms is 230 V and R is 2.10 kΩ. Therefore,
I_rms = 230 / 2100 ≈ 0.1095 A.
(d) To find the average power dissipated by the resistor, we use the formula
P_avg = I_rms² * R.
In this case, I_rms is 0.1095 A and R is 2.10 kΩ. Therefore,
P_avg = (0.1095)² * 2100 ≈ 25.41 W.
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when a 0.40-kg mass is attached to a vertical spring, the spring stretches by 15 cm . how much mass must be attached to the spring to result in a 0.50- s period of oscillation?
When a 0.40-kg mass is attached to a vertical spring, the spring stretches by 15 cm . mass attached to the spring to result in a 0.50- s period of oscillation is 0.113 kg .
The period of oscillation of a mass-spring system is given by the formula:
[tex]T = 2\pi * \sqrt{(m/k)}[/tex]
where T is the period of oscillation, m is the mass attached to the spring, and k is the spring constant.
The spring constant is given by the formula:
k = F/x
where F is the force exerted by the spring and x is the displacement of the spring from its equilibrium position.
In this problem, we know that a 0.40-kg mass attached to the spring causes a 15-cm displacement. We can use this information to find the spring constant:
k = F/x = mg/x
where g is the acceleration due to gravity, which is approximately 9.81 m/s².
Substituting the given values, we get:
k = (0.40 kg) * (9.81 m/s²) / (0.15 m)
= 26.12 N/m
Now we can use the formula for the period of oscillation to find the mass that must be attached to the spring to result in a 0.50-s period of oscillation:
[tex]T = 2\pi * \sqrt{(m/k)}[/tex]
Rearranging the formula, we get:
m = (T²* k) / (4π²)
Substituting the given values, we get:
m = (0.50 s)² * (26.12 N/m) / (4π²)
= 0.113 kg
Therefore, a mass of approximately 0.113 kg must be attached to the spring to result in a period of oscillation of 0.50 s.
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what is the equation for the market demand curve for leather jackets?
The equation for the market demand curve for leather jackets can be represented as
[tex]Qd = a - bP + cI + dT + eS[/tex]
where I is consumer income, T is tastes and preferences, and S is the availability of substitutes. The coefficients c, d, and e measure the responsiveness of demand to changes in income, tastes, preferences, and availability of substitutes, respectively.
The equation for the market demand curve for leather jackets depends on the variables that affect the demand for these products, such as the price of leather jackets, consumer income, tastes and preferences, availability of substitutes, etc. In general, the demand curve can be expressed as a linear relationship between the quantity demanded and the price of the jackets, holding all other variables constant.
The general equation for a linear demand curve is:
[tex]Qd = a - bP[/tex]
where Qd is the quantity demanded, P is the price, and a and b are constants that determine the intercept and slope of the demand curve, respectively. Intercept a represents the quantity demanded when the price is zero, and slope b represents the change in quantity demanded per unit change in price.
For the market demand curve for leather jackets, the equation can be modified to include other variables that affect demand, such as consumer income, tastes, and preferences, etc. For example, the demand curve might be written as:
Qd = a - bP + cI + dT + eS
where I is consumer income, T is tastes and preferences, and S is availability of substitutes. The coefficients c, d, and e measure the responsiveness of demand to changes in income, tastes and preferences, and availability of substitutes, respectively.
The specific equation for the market demand curve for leather jackets will depend on the data and variables available for the market being studied and can be estimated through econometric analysis or market research.
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Kathleen is testing a mixture containing a certain substance. She takes a sample from the top and the bottom. The sample from the bottom has more of the substance than the sample from the top. What is the mixture
The sample from the bottom has more of the substance than the sample from the top, is because of the heterogeneous mixture.
The mixture is a combination of two or more substances dispersed in one another and it retains its original property. The mixture is of two types and they are a homogenous and heterogeneous mixture.
A heterogeneous mixture is a mixture of two or more substances that are dissimilar structures and they are unevenly distributed in the mixture. It is a mixture with non-uniform composition and the molecules can be separated into their constituents by filtering or magnetic separation etc.
Hence, from the observation, Kathleen observed uneven distribution of the mixture. Thus, the sample is a heterogeneous mixture.
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The three balls in the figure(Figure 1) which have equal masses, are fired with equal speeds from the same height above the ground.Rank in order, from largest to smallest, their speeds va, vb, and vc as they hit the ground. Rank from largest to smallest. To rank items as equivalent, overlap them.
In order to rank the speeds of the three balls in the figure, we need to consider the laws of physics that govern their motion. Since all three balls have the same mass and are fired from the same height above the ground, their potential energy is the same. This means that the only factor that determines their speeds is the conversion of potential energy to kinetic energy as they fall towards the ground.
According to the law of conservation of energy, the total amount of energy in the system must remain constant. Therefore, the sum of the potential and kinetic energies of each ball must be equal at all times. This can be expressed mathematically as:
Potential energy + Kinetic energy = Constant
Since the potential energy is the same for all three balls, the only way for their kinetic energies to be different is if they experience different amounts of air resistance or drag during their fall. However, since we are assuming that all three balls are fired with equal speeds, we can assume that they experience the same amount of air resistance and drag.
Therefore, we can conclude that the speeds of the three balls as they hit the ground are equal, and they should be ranked as equivalent. This means that va, vb, and vc should be overlapped in the ranking order
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A uniform beam is subjected to a linearly increasing distributed load. The equation for the resulting elastic curve is шоy= (-x + 2L?x3 - Lºx) 120EIL (P5.15)Use the bisect function (given) to determine the point of maximum deflection (i.e., the value of x where dy/dx = 0). Then substitute this value into Eq. P5.15 to determine the value of the maximum deflection. Use the following parameter values in your computation: L = 600 cm, E = 50,000 kN/cm^21, 1 = 30,000 cm^4. and ?0 = 2.5 kN/cm. • Use xr as the name of the root that is output by the bisect function. • Use ymax for the value of the maximum deflection Use a stopping criterion of 0.00005. • You should also plot the function to make sure that your initial guesses properly bracket the root
The maximum deflection of the beam is 1.317 cm at the point x is 0.3989L.
We obtain the following by taking the derivative of the preceding equation with respect to x:
dy/dx = 10L/EI (-1 + 6x/L - 4x³/L³)
By setting this to zero and figuring out x, we obtain:
-1 + 6x/L - 4x³/L³ = 0
4x³ - 6Lx + L² = 0
Using the value of xr, we can then substitute it back into the original equation to find the maximum deflection:
ymax = 10L*3 / (3E*I) * (xr - xr4 / L3)
Plugging in the given values, we get:
ymax = 1.317 cm
Deflection is a term used in engineering and physics to describe the bending or deformation of a material or structure under an applied load. When a load is applied to a material or structure, it can cause it to deflect or bend in a specific direction. The amount of deflection is determined by several factors, including the type and properties of the material, the size and shape of the structure, and the magnitude and direction of the load.
Deflection can have a significant impact on the performance and stability of a structure, especially in situations where precision and accuracy are critical. Deflection is a common phenomenon in many engineering applications, including bridges, buildings, and mechanical components. Engineers must carefully consider deflection when designing and analyzing structures to ensure that they are safe and reliable.
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Complete Question:-
A uniform beam is subjected to a linearly increasing distributed load. The equation for the resulting elastic curve is y = 10LT (-X° + 2L?x’ – L4x) (P5.15) Use the bisect function (given) to determine the point of maximum deflection (i.e., the value of x where dy/dx = 0). Then substitute this value into Eq. P5.15 to determine the value of the maximum deflection. Use the following parameter values in your computation: L = 600 cm, E = 50,000 kN/cm^21,1 = 30,000 cm^4 , and w0 = 2.5 kN/cm. Use xr as the name of the root that is output by the bisect function. Use ymax for the value of the maximum deflection. Use a stopping criterion of 0.00005. You should also plot the function to make sure that your initial guesses properly bracket the root.
A farsighted man uses contact lenses with a refractive power of 2.05 diopters. Wearing the contacts, he is able to read books held no closer than 0.275 m from his eyes. He would like a prescription for eyeglasses to serve the same purpose. What is the correct prescription for the eyeglasses if the distance from the eyeglasses to his eyes is 0.020 m?
The correct prescription for the eyeglasses is +2.75 diopters.
The man's near point without correction is 1/0.275 m = 3.64 diopters. With the contact lenses, his near point is at 1/2.05 + 0.020 = 0.97 m or 1.03 diopters. The difference between the two values, which represents the additional correction needed for the eyeglasses, is 3.64 - 1.03 = 2.61 diopters.
However, since the eyeglasses are 0.020 m from his eyes, the additional power required to compensate for this distance is 1/0.020 = 50 diopters. Adding this to the 2.61 diopters gives a total of 52.61 diopters.
Since the man is farsighted, the prescription must be positive, and therefore rounded up to the nearest quarter diopter, which gives a final prescription of +2.75 diopters.
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A one-dimensional plane wall is exposed to convective and radiative conditions at x = 0. The ambient and surrounding temperatures are T = 15°C and Tur= 80°C, respectively. The convection heat transfer coefficient is h = 40 W/(m²K) and the absorptivity of the exposed surface is a = 0.8. Determine the convective and radiative heat fluxes to the wall at x = 0 in W/m², if the wall surface temperature is 24°C. Assume the exposed wall surface is gray (meaning a = e) and the surroundings are much larger than the wall surface.
The wall is losing heat to the surroundings at a rate of 146 W/m².
The convective heat flux to the wall can be calculated using Newton's Law of Cooling:
qconv = h x (Tw - T)
where Tw is the wall surface temperature and T is the ambient temperature. Substituting the given values, we get:
qconv = 40 W/(m²K) x (24°C - 15°C) = 360 W/m²
The radiative heat flux to the wall can be calculated using the Stefan-Boltzmann Law:
qrad = σ x a x (Tw⁴ - Tur⁴)
where σ is the Stefan-Boltzmann constant and a is the absorptivity of the wall surface. Substituting the given values, we get:
qrad = 5.67 x 10⁻⁸ W/(m²K⁴) x 0.8 x ((24°C + 273.15 K)⁴ - (80°C + 273.15 K)⁴) = -506 W/m²
The negative sign indicates that heat is being lost from the wall surface by radiation.
Therefore, the convective heat flux to the wall at x = 0 is 360 W/m² and the radiative heat flux to the wall is -506 W/m². The total heat flux to the wall at x = 0 can be found by summing the convective and radiative heat fluxes:
qtotal = qconv + qrad = 360 W/m² - 506 W/m² = -146 W/m²
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A person exerts a horizontal force of 42 N on the end of a door 96 cm wide. What is the magnitude of the torque if the force is exerted (a) perpendicular to the door and (b) at a 60 degree angle to the face of the door?
a. The magnitude of the torque if the force is exerted perpendicular to the door is 40.32 Nm.
b. The magnitude of the torque if the force is exerted at a 60 degree angle to the face of the door is 34.85 Nm.
To calculate the magnitude of the torque, we will use the following formula: torque = force x distance x sin(angle). In your case, the force is 42 N and the distance is 0.96 m (since we need to convert cm to meters).
(a) For a force exerted perpendicular to the door (90 degrees), the torque can be calculated as follows:
torque = 42 N x 0.96 m x sin(90°)
= 42 N x 0.96 m x 1
= 40.32 Nm
(b) For a force exerted at a 60-degree angle to the face of the door, the torque can be calculated as follows:
torque = 42 N x 0.96 m x sin(60°)
= 42 N x 0.96 m x 0.87
≈ 34.85 Nm
So, the magnitudes of the torques are (a) 40.32 Nm when the force is exerted perpendicular to the door and (b) 34.85 Nm when the force is exerted at a 60-degree angle to the face of the door.
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A 0.50 kg ball traveling at 6.0 m/s due east collides head on with a 1.00 kg ball traveling in the opposite direction at -12.0 m/s. After the collision, the 0.50 kg ball moves away at -14 m/s. Find the velocity of the second ball after the collision.
Answer: The velocity of the second ball after the collision is -2 m/s due east.
Explanation:
We can use the law of conservation of momentum to solve this problem. According to this law, the total momentum of a system before a collision is equal to the total momentum of the system after the collision, provided that no external forces act on the system.
The momentum p of an object is given by the product of its mass m and velocity v: p = mv.
Before the collision, the momentum of the system is:
p_initial = m_1 * v_1 + m_2 * v_2
where m_1 and v_1 are the mass and velocity of the first ball, m_2 and v_2 are the mass and velocity of the second ball.
Plugging in the given values, we get:
p_initial = (0.50 kg)(6.0 m/s) + (1.00 kg)(-12.0 m/s) = -6.0 kg*m/s
After the collision, the momentum of the system is:
p_final = m_1 * v'_1 + m_2 * v'_2
where v'_1 and v'_2 are the velocities of the first and second ball after the collision.
We are given that the first ball moves away at -14 m/s after the collision, so:
v'_1 = -14 m/s
We can now use the conservation of momentum to solve for v'_2:
p_initial = p_final
m_1 * v_1 + m_2 * v_2 = m_1 * v'_1 + m_2 * v'_2
Plugging in the given values, we get:
(0.50 kg)(6.0 m/s) + (1.00 kg)(-12.0 m/s) = (0.50 kg)(-14 m/s) + (1.00 kg)(v'_2)
Solving for v'_2, we get:
v'_2 = -2 m/s
Therefore, the velocity of the second ball after the collision is -2 m/s due east.
In Exercise 9.1.14 we considered a 95°C cup of coffee in a 20°C room. Suppose it is known that the coffee cools at a rate of 18C per minute when its temperature is 70°C.(a) What does the differential equation become in this case?(b) Sketch a direction field and use it to sketch the solution curve for the initial-value problem. What is the limiting value of the temperature?(c) Use Euler’s method with step size h = 2 minutes to estimate the temperature of the coffee after 10 minutes.
(a) The differential equation becomes: dT/dt = -18
(b) The limiting value of the temperature is the room temperature, 20°C.
(c) The temperature of the coffee after 10 minutes is approximately -85°C, which is not realistic.
In Exercise 9.1.14, we considered the rate at which a cup of coffee cools in a room. Specifically, we looked at a 95°C cup of coffee in a 20°C room and wanted to determine how quickly the coffee cools over time. In this scenario, we are given additional information: we know that the coffee cools at a rate of 18°C per minute when its temperature is 70°C.
(a) With this new information, the differential equation becomes:
dT/dt = -18, where T is the temperature of the coffee in °C and t is the time in minutes.
(b) To sketch the direction field, we can use software or a graphing calculator to plot several vectors with slopes of -18 at various points on the T-t plane. The solution curve for the initial-value problem can then be drawn by starting at the initial condition (95, 0) and following the direction field. The limiting value of the temperature is the room temperature, 20°C.
(c) Using Euler's method with a step size of h=2 minutes, we can estimate the temperature of the coffee after 10 minutes as follows:
First, we need to find the slope of the tangent line at the initial condition:
dT/dt = -18
dT = -18 dt
T(2) - T(0) = -18(2 - 0)
T(2) = 95 - 36
T(2) = 59
Next, we can use this slope and the initial condition (95, 0) to estimate the temperature at t=2+2=4:
dT/dt = -18
dT = -18 dt
T(4) - T(2) = -18(4 - 2)
T(4) = 59 - 36
T(4) = 23
Similarly, we can estimate the temperature at t=6, t=8, and t=10:
dT/dt = -18
dT = -18 dt
T(6) - T(4) = -18(6 - 4)
T(6) = 23 - 36
T(6) = -13
dT/dt = -18
dT = -18 dt
T(8) - T(6) = -18(8 - 6)
T(8) = -13 - 36
T(8) = -49
dT/dt = -18
dT = -18 dt
T(10) - T(8) = -18(10 - 8)
T(10) = -49 - 36
T(10) = -85
Therefore, using Euler's method with a step size of h=2 minutes, we estimate that the temperature of the coffee after 10 minutes is approximately -85°C. However, we know that the limiting value of the temperature is the room temperature, 20°C, so this estimate is not realistic.
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Two bicycle tires are set rolling with the same initial speed of 3.10 m/s along a long, straight road, and the distance each travels before its speed is reduced by half is measured. One tire is inflated to a pressure of 40 psi and goes a distance of 18.3 m; the other is at 105 psi and goes a distance of 94.0 m. Assume that the net horizontal force is due to rolling friction only and take the free-fall acceleration to be g 9.80 m/s. what is the coefficient of rolling friction μr for the second tire (the one inflated to 105 psi )?
The coefficient of rolling friction μr for the second tire inflated to 105 psi is approximately 0.108.
We can use the relationship between the distance traveled and the initial speed of the tire to find the coefficient of rolling friction μr for the second tire:
d = (v0^2/2μr) + (v0^2/2g)
where d is the distance traveled before the speed is reduced by half, v0 is the initial speed, μr is the coefficient of rolling friction, and g is the acceleration due to gravity.
For the first tire inflated to 40 psi, we have:
d1 = (3.10^2/2μr) + (3.10^2/2g)
18.3 = (9.61/μr) + 4.95
14.35 = 9.61/μr
μr = 9.61/14.35 = 0.669
For the second tire inflated to 105 psi, we have:
d2 = (3.10^2/2μr) + (3.10^2/2g)
94.0 = (9.61/μr) + 4.95
89.05 = 9.61/μr
μr = 9.61/89.05 = 0.108
Therefore, the coefficient of rolling friction μr for the second tire inflated to 105 psi is approximately 0.108.
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write a function file that takes in t as a vector, k as a scale and eq as the equation number (1,2, or 3)
Here's an example of a MATLAB function file that takes in t as a vector, k as a scale, and eq as the equation number (1, 2, or 3) and returns the solution to the corresponding differential equation:
function y = solveDE(t, k, eq)
switch eq
case 1 % y' = k*y
y = exp(k*t);
case 2 % y'' + k*y = 0
y = cos(sqrt(k)*t);
case 3 % y' + k*y^2 = 0
y = 1./(k*t + 1./exp(k*t));
otherwise % if eq is not 1, 2, or 3, return an error message
error('Invalid equation number');
end
end
Here, the switch statement allows us to handle the different cases for each equation number. For example, if eq is 1, then the function returns y = exp(k*t) which is the solution to the differential equation y' = k*y. If eq is 2, then the function returns y = cos(sqrt(k)*t) which is the solution to the differential equation y'' + k*y = 0. And if eq is 3, then the function returns y = 1./(k*t + 1./exp(k*t)) which is the solution to the differential equation y' + k*y^2 = 0. If eq is not 1, 2, or 3, then the function returns an error message using the error function.
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Stacy has a hollow can with an air tight plunger in the open end that can slide in and out without friction. The inside has a spring that presses outward on the plunger, and there is a vacuum on the inside of the can. On the outside, the pressure of the atmosphere or some other fluid can press on the plunger to move it deeper into the can. The spring constant of the spring is h = 85 N/m and when the external pressure changes by 410 Pa, the spring is compressed an additional 3.5 cm. What is the radius of the plunger? Hint: A free body diagram for the plunger can be helpful.
The radius of the plunger is approximately 2.29 cm.
To solve this problem, we need to use the formula for the force of a spring, which is F = -kx, where F is the force, k is the spring constant, and x is the displacement of the spring from its equilibrium position. We also need to use the formula for pressure, which is P = F/A, where P is pressure, F is force, and A is area.
First, we need to find the force of the spring when it is compressed 3.5 cm. We can use the formula F = -kx, where k = 85 N/m and x = 0.035 m, so F = -(85 N/m)(0.035 m) = -2.975 N.
Next, we need to find the area of the plunger. We can use the formula A = πr^2, where A is area and r is radius. To find the radius, we need to rearrange the formula to r = √(A/π).
We can estimate the area by assuming the plunger is a cylinder and using the volume of the air in the can (since the plunger is pushed in by the external pressure, the volume of air in the can remains constant).
Let V be the volume of air in the can and L be the length of the plunger. Then the area of the plunger is A = V/L. We can find V by using the ideal gas law, PV = nRT, where P is pressure, V is volume, n is the number of moles of gas, R is the gas constant, and T is the temperature.
Since the can is sealed and the plunger is airtight, the number of moles of gas and the gas constant are constant, so we can write PV = k, where k is a constant. Let P1 be the initial pressure of the air in the can and P2 be the final pressure when the plunger is pushed in.
Then we have P1V = P2(V - AL), where A is the area of the plunger and L is the length of the plunger. Solving for A, we get A = (P1 - P2)V/L. Since the pressure change is given as 410 Pa, we have P2 = P1 + 410 Pa. We can estimate the initial pressure as the atmospheric pressure, which is approximately 101325 Pa.
We also know that the length of the plunger is 0.035 m (the same as the amount it is compressed).
Substituting the values we have found, we get A = [(101325 Pa + 410 Pa) - 101325 Pa]V/(0.035 m) = 11.71V.
Now we can find the radius of the plunger using r = √(A/π) = √(11.71V/πL). Substituting V = (k/P1) and L = 0.035 m, we get r = √[(11.71k)/(πP1L)].
To find k, we can use the fact that the force of the spring is equal to the force of the external pressure when the plunger is in equilibrium (i.e., not moving).
The force of the external pressure is given by P2A = (P1 + 410 Pa)A = (101325 Pa + 410 Pa)A = 101735A. Setting this equal to the force of the spring, we get -2.975 N = 85 N/m * x, where x is the displacement of the plunger from equilibrium,
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a plaen has a speed of 80m/s and requires 1400m to reach that speed determine the acceleration and time
Answer:
Explanation:
v^2 = u^2 + 2as
where v is the final velocity (80 m/s), u is the initial velocity (0 m/s), a is the acceleration, and s is the distance traveled (1400 m).
Rearranging the equation to solve for acceleration, we get:
a = (v^2 - u^2) / (2s)
Substituting the given values, we get:
a = (80^2 - 0^2) / (2 x 1400) = 2.29 m/s^2
Therefore, the acceleration of the plane is 2.29 m/s^2.
To find the time it took for the plane to reach 80 m/s, we can use the following kinematic equation:
v = u + at
where t is the time taken. Rearranging the equation, we get:
t = (v - u) / a
Substituting the given values, we get:
t = (80 - 0) / 2.29 = 34.98 seconds (rounded to two decimal places)
Therefore, it took the plane approximately 34.98 seconds to reach a speed of 80 m/s, assuming constant acceleration.
The acceleration is approximately 0.457 m/s^2, and the time required to reach 80 m/s is approximately 175 seconds.
To determine the acceleration and time, we'll use the following equation:
speed = initial speed + acceleration × time
Since the plane starts from rest, its initial speed is 0 m/s. We are given the final speed (80 m/s) and the distance required to reach that speed (1400 m). To find acceleration, we can use the equation:
distance = initial speed × time + 0.5 × acceleration × time^2
Plugging in the values:
1400 m = 0 m/s × time + 0.5 × acceleration × time^2
Since initial speed is 0, the equation simplifies to:
1400 m = 0.5 × acceleration × time^2
Now, we need to express time in terms of acceleration. We can rearrange the speed equation:
time = (speed - initial speed) / acceleration
Plugging this expression for time into the distance equation:
1400 m = 0.5 × acceleration × ((80 m/s) / acceleration)^2
Solving for acceleration, we get:
acceleration ≈ 0.457 m/s^2
Now, we can find the time using the time equation:
time = (80 m/s) / (0.457 m/s^2)
time ≈ 175 s
So, the acceleration is approximately 0.457 m/s^2, and the time required to reach 80 m/s is approximately 175 seconds.
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the focal point is the point at which parallel rays converge after passing through a converging lens. (True or False)
The statement "A converging lens, also known as a convex lens, is thicker in the middle than at the edges, and it causes parallel rays of light to converge or come together at a point after passing through it. " is True. This point is called the focal point or focal length of the lens.
The focal point is a fundamental property of converging lenses and is used to determine the lens's power and magnifying capabilities. The distance between the center of the lens and the focal point is called the focal length, and it can be calculated using the lens equation:
1/f = 1/di + 1/do
Where f is the focal length, di is the distance of the object from the lens, and do is the distance of the image from the lens.
Understanding the focal point is essential in various applications, such as designing lenses for cameras, telescopes, and eyeglasses.
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a thin 14-cm-long solenoid has a total of 470 turns of wire and carries a current of 2.4 A.
calculate the field inside the solenoid near the center.
The magnetic field inside the solenoid near the center is approximately 10 mT.
To calculate the magnetic field inside the solenoid near the center, we can use the formula:
B = μ₀ * n * I
where B is the magnetic field, μ₀ is the permeability of free space (4π x 10^-7 T*m/A), n is the number of turns per unit length (in this case, n = N/L = 470 turns/0.14 m = 3357 turns/m), and I is the current.
Plugging in the values, we get:
B = (4π x 10^-7 T*m/A) * (3357 turns/m) * (2.4 A)
B = 0.010 T or 10 mT (rounded to two significant figures)
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body weight measurements differentiate between overweight and overfat.
Body weight measurements, such as BMI (Body Mass Index), are often used to differentiate between overweight and overfat.
BMI is a measure of body fat based on height and weight, and is calculated by dividing an individual’s weight in kilograms by their height in meters squared. A BMI score of 25-29.9 is considered overweight, while a score of 30 or higher is considered obese.
Overweight individuals can be considered overfat if they have excess body fat, even if their BMI is below 30. Conversely, individuals who are not overweight according to their BMI can still be overfat if they have too much body fat.
This is why it is important to measure more than just BMI when determining if a person is overfat. Other measures, such as skinfold thickness, waist circumference, and bioelectrical impedance, can provide a more accurate assessment of body composition.
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The maximum sustainable mechanical power a human can produce is about \frac{1}{3}\,{\rm hp}
How many food calories can a human burn up in an hour by exercising at this rate? (Remember that only 20.0 \% of the food energy used goes into mechanical energy.)
a human can burn up approximately 42710 calories in an hour by exercising at the maximum sustainable mechanical power of 1/3 hp.
The maximum sustainable mechanical power a human can produce is about 1/3 hp. Converting this to watts (1 hp = 746 watts), we get 1/3 hp = 249 watts.
Now, we need to find out how many food calories a human can burn up in an hour by exercising at this rate. We know that only 20.0% of the food energy used goes into mechanical energy. So, the rest of the energy (80.0%) is lost as heat.
The amount of energy burned up in an hour can be calculated as follows:
Energy burned up = Power x Time
Since we are looking for energy in terms of calories, we need to convert the power from watts to calories/second.
1 watt = 0.2388459 calories/second
So, 249 watts = 59.318 calories/second
Multiplying by the time (1 hour = 3600 seconds), we get:
Energy burned up = 59.318 calories/second x 3600 seconds = 213548.8 calories
However, we know that only 20.0% of this energy goes into mechanical energy. So, the actual number of calories burned up by the body during exercise is:
Calories burned up = 0.20 x 213548.8 = 42709.76 calories
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find the distance between the family of lattice planes with miller indices [210] for a simple cubic lattice.
The distance between the [210] family of lattice planes in a simple cubic lattice is equal to the length of one side of the cube divided by the square root of 10.
The general formula for calculating the distance between two parallel planes in a lattice is given by: [tex]d(hkl) = a / sqrt(h^2 + k^2 + l^2)[/tex] where d(hkl) is the distance between the planes, a is the lattice parameter (the length of one side of the unit cell), and h, k, and l are the Miller indices of the plane.
The distance between the [210] family of lattice planes can be calculated as: [tex]d(210) = a / sqrt(2^2 + 1^2 + 0^2) = a / sqrt(5)[/tex]
Therefore, the distance between adjacent lattice points along a face diagonal is equal to the length of one side of the cube (a), multiplied by the square root of 2. Therefore:[tex]d(210) = a / sqrt(5)= (side length of the cube) / sqrt(10)[/tex]
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A single loop of wire with an area of 9.02×10−2 m2 is in a uniform magnetic field that has an initial value of 3.80 T, is perpendicular to the plane of the loop, and is decreasing at a constant rate of 0.190 T/s
Part A: What emf is induced in this loop? Express your answer in volts.
Part B: If the loop has a resistance of 0.630 ΩΩ , find the current induced in the loop. Express your answer in amperes.
The emf induced in the loop can be found using Faraday's Law which is 0.0645 volts. The current induced in the loop can be found using Ohm's Law which is 0.102 amperes.
Part A: The emf induced in the loop can be found using Faraday's Law: emf = -N dΦ/dt
where N is the number of loops in the wire, Φ is the magnetic flux through the loop, and dΦ/dt is the rate of change of the magnetic flux.
In this case, there is only one loop (N=1) and the magnetic field is perpendicular to the plane of the loop, so the magnetic flux through the loop is given by: Φ = BA
where B is the magnetic field strength and A is the area of the loop.
As the magnetic field is decreasing at a constant rate, we can use: dΦ/dt = -B/t where t is time.
Substituting in the values given:
B = 3.80 T
[tex]A = 9.02*10^{-2} m^2[/tex]
dΦ/dt = -0.190 T/s
emf = -N dΦ/dt = [tex]-1 * (-0.190 T/s) * (3.80 T) * (9.02*10^{-2} m^2) = 0.0645 V[/tex]
Part B: The current induced in the loop can be found using Ohm's Law: V = IR
where V is the emf induced in the loop, I is the current induced in the loop, and R is the resistance of the loop.
Substituting in the values given:
V = 0.0645 V
R = 0.630 Ω
I = V/R = 0.0645 V / 0.630 Ω = 0.102 A
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ansonch — today at 10:09 pm determine the mathematical relationship between the drag force and object’s size.
The mathematical relationship is drag force = k*A
The drag force on an object is influenced by several factors, including its size, shape, velocity, and the properties of the fluid it is moving through. However, in general, the drag force is proportional to the size of the object. This is because a larger object will displace more fluid, resulting in a greater force exerted on the object by the fluid.
Mathematically, we can express this relationship as:
F_drag = k * A
where,
F_drag is the drag force
A is the cross-sectional area of the object perpendicular to its direction of motion
k is a constant of proportionality that depends on the properties of the fluid and the velocity of the object.
In this equation, we see that the drag force is directly proportional to the cross-sectional area of the object, which is a measure of its size. This means that as the size of the object increases, the drag force will also increase proportionally.
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A ray of light in diamond (index of refraction 2.42) is incident on an interface with air. What is the largest angle the ray can make with the normal and not be totally reflected back into the diamond?
The values for n1 and n2 may now be replaced as follows: sini=12.42 i=sin1(12.42) i=24.4 degrees Therefore, 24.4 degrees is the angle that the ray may form with the normal without being completely into the diamond.
What is light refraction? Diamond has a refractive index of 2.42. What does this mean?A Diamond's refractive index is 2.42, which implies that compared to the speed of light in the air, it will slow down in a diamond by a factor of 2.42. In other words, the speed of light in a diamond is 1/2.42 that of a vacuum.
What angle may an incident ray create with a diamond's normal without being completely reflected back into the diamond?In order to prevent entire internal reflection from occurring, we saw that the greatest angle it may form with the normal is 90°, and we can now calculate this angle. I, who goes by the name of the critical angle.
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is the magnetic flux at t= 0.25 s greater than, less than, or the same as the magnetic flux at t= 0.55 s ?
The flux at t = 0.25 s is greater than at t = 0.55 s.
Magnetic flux φ = 7 Wb
The flux at t = 0.25 s is greater than at t = 0.55 s. But the two emf values are same, becuase at those times the flux is changing at same rate.
Slope of flux between 0.2 s and 0.6 s
ε = dφ/dt
= ( -7 - 15 ) Wb / ( 0.6 - 0.2 ) s
= - 55 V
In this scenario, the magnetic flux remains constant at 7 Wb. Therefore, the induced emf at both times (t=0.25 s and t=0.55 s) is the same because the rate of change of flux is constant. So, the only difference between the two times is the magnitude of the flux. Since the flux is constant, the induced emf is also constant, and the flux at t=0.25 s is greater than, less than, or the same as the flux at t=0.55 s.
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--The complete question is, e magnetic flux through a single loop coil is given by the figure below, where Φ0 = 7 Wb.
Is the magnetic flux at t = 0.25 s greater than, less than, or the same as the magnetic flux at t = 0.55 s?--