Answer:
11.87m/s
Explanation:
To solve this problem it is necessary to apply the concepts related to frictional force and centripetal force.
The frictional force of an object is given by the equation
Where,
Friction Coefficient
N = Normal Force, given also as mass for acceleration gravity
In the other hand we have that centripetal force is given by,
The force experienced to stay on the road through friction is equal to that of the centripetal force, therefore
Re-arrange to find the velocity,
Therefore the speed that it is necessaty to slow down the car in order to make the curve without sliding is 11.87m/s
Answer:
The volume flow rate is 3.27m³/s
Diameter at the refinery is 88.64cm
Explanation:
Given
At the wellhead
Pipes diameter, d2 = 59.1cm = 0.591m
Flow speed of petroleum f2 = 11.9m/s
At the refinery,
Pipes diameter, d1 = ? Unknown
Flow speed of petroleum, f1 = 5.29m/s
Calculating the volume flow rate of petroleum along the pipe.
Volume flow rate = Flow rate * Area along the pipe
V = 11.9 * πd²/4
V = 11.9 * 22/7 * 0.591²/4
V = 3.265778m³/s
The volume flow rate is 3.27m³/s -------- Approximated
Since it's not stated if the flowrate is uniform throughout the pipe, we'll assume that flow rate is the same through out...
Using V1A1 = V2A2, where V1 & V2 Volume flow rate at both ends and area = Area of pipes at both ends
This gives;
V1A1 = V1A2
V1*πd1²/4 = V2 * πd2²/4 ----------- Divide through by π/4
So, we are left with
V1d1² = V2d2²
5.29 * d1²= 11.9 * 59.1²
d1² = 11.9 * 59.1²/5.29
d1² = 7857.172
d1 = √7857.172
d1 = 88.6406904305240618
d1 = 88.64cm --------------- Approximated
Answer:
The magnitude of the force you must exert on the rope in order to accelerate upward is 705.6 N
Explanation:
The magnitude of force, you must exert can be estimated as follows;
Since it is upward motion, we must consider acceleration due to gravity which opposes the upward motion.
F = m(a+g)
where;
F is the magnitude of the upward force
m is your mass, which is the measure of inertia = 63kg
a is the acceleration of the rope = 1.4 m/s²
F = 63(1.4 + 9.8)
F = 63(11.2)
F = 705.6 N
Therefore, the magnitude of the force you must exert on the rope in order to accelerate upward is 705.6 N
Answer:
705.6 N
Explanation:
Force: This can be defined as the product of mass a acceleration.
The S.I unit of force is Newton.
The expression for the force on the rope in order to accelerate upward is given as,
F-W = ma .......................... Equation 1
Where F = Force exerted on the rope, W = weight of the rope, m = mass of the rope, a = acceleration.
But,
W = mg........................ Equation 2
Where g = acceleration due to gravity
substitute equation 2 into equation 1
F-mg = ma
F = ma+mg
F = m(a+g).............. Equation 3
Given: m = 63 kg, a = 1.4 m/s²
Constant: g = 9.8 m/s²
Substitute into equation 3
F = 63(1.4+9.8)
F = 63(11.2)
F = 705.6 N
The magnitude of the force exerted on the rope = 705.6 N
Answer:
4833J
Explanation:
Length=0.777
mass=2.67
# rods= 5
ω=573 rpm--> rad/s
I=kgm^2
K=1/2(number of rods)(I)(ω)=J
I know it's very late, but hope this helps anyone else trying to find the answer.
Answer:
Explanation:
In this case, power is the rate of transferring heat per unit time:
The heat is given by the formula of the latent heat of fusion, since the ice is melting.
Here m is the ice's mass and is the heat of fusion of ice. Recall that one day has 86400 seconds. Replacing (2) in (1) and solving: