Answer:
mnbhngbfcvdxc
Explanation:
Answer:
paying too much on the black market instead of getting a prescription
Explanation:
i just took the quiz
Answer:
Paying too much on the black market instead of getting a prescription
Explanation:
The rest of the options are risks associated with using legal drugs without medical supervision.
b. is the electric field in the direction of the current or opposite to the current?
Answer:
a
b
The direction of the electric field is opposite that of the current
Explanation:
From the question we are told that
The current is
The diameter of the ring is
Generally the radius is mathematically represented as
The cross-sectional area is mathematically represented as
=>
=>
Generally according to ampere -Maxwell equation we have that
Now given that it implies that
So
Where is the permittivity of free space with value
is the permeability of free space with value
is magnetic flux which is mathematically represented as
Where E is the electric field strength
So
=>
=>
=>
The negative sign shows that the direction of the electric field is opposite that of the current
B. 2 cm/s2
C. 5 cm/s2
D. 6 cm/s2
The asteroid 234 Ida has a mass of about 4×1016 kg and an average radius of about 16 km. The acceleration due to gravity will be 1.04 cm/s². Hence, option A is correct.
The acceleration an object experiences as a result of gravitational force is known as acceleration due to gravity. M/s² is its SI unit. Its vector nature—which includes both magnitude and direction—makes it a quantity. The unit g stands for gravitational acceleration. At sea level, the standard value of g on the earth's surface is 9.8 m/s².
The formula for the acceleration due to gravity is g=GM/r².
According to the question, the given values are :
Mass, M = 4 × 1016 kg or
M = 4 × 10¹⁶.
Radius, r = 16 km or,
r = 16000 meter.
G = 6.67 × 10⁻¹¹ Nm²/kg²
g = (6.67 × 10⁻¹¹ ) (4 × 10¹⁶) / 16000²
g = 0.0104 m/s² or,
g = 1.04 cm/s².
Hence, the acceleration due to gravity will be 1.04 m/s²
To get more information about Acceleration due to gravity :
#SPJ2
Answer:
1 cm/s²
Explanation:
I just took the quiz
planet?
A. You would weigh the same on both planets because the planets
are the same size.
B. You would weigh less on planet A because it has less mass than
planet B.
C. You would weigh the same on both planets because your mass
would be the same on both.
D. You would weigh more on planet A because it has less mass than
planet B.
The statement which correctly explains the weight you would experience on each planet is: B. You would weigh less on planet A because it has less mass than planet B.
Weight can be defined as the force acting on a body or an object as a result of gravity.
Mathematically, the weight of an object is given by the formula;
Where;
Hence, we can deduce that the weight and gravity acting on an object is highly dependent on the mass of an object.
Therefore, the higher the mass in a planet, the higher the gravity existing there.
Read more: brainly.com/question/18320053
Answer:
B
Explanation:
The more mass an object has, the more gravity it has.
A. Hydrosphere
B Lithosphere
C. Atmosphere
2
A Lithosphere
B Atmosphere
C Biosphere
lithosphere and biosphere
srry ik im super late but to help other people theres the answer
Answer:
3.27 turns
Explanation:
To find how many turns (θ) will the stone make before coming to rest we will use the following equation:
Where:
: is the final angular velocity = 0
: is the initial angular velocity = 71.150 rpm
α: is the angular acceleration
First, we need to calculate the angular acceleration (α). To do that, we can use the following equation:
Where:
I: is the moment of inertia for the disk
τ: is the torque
The moment of inertia is:
Where:
m: is the mass of the disk = 105.00 kg
r: is the radius of the disk = 0.297 m
Now, the torque is equal to:
Where:
F: is the applied force = 46.650 N
μ: is the kinetic coefficient of friction = 0.451
The minus sign is because the friction force is acting opposite to motion of grindstone.
Having the moment of inertia and the torque, we can find the angular acceleration:
Finally, we can find the number of turns that the stone will make before coming to rest:
I hope it helps you!