Respuesta :
Answer:
Explanation:
Speed of electron
v = 4 × 10^5 •j m/s
Magnetic field
B = 5 × 10^-5 T at angle of 45° to horizontal
Charge of electron
q = 1.6 × 10^-19C
Magnitude of force F?
The Force exerted in an electric field is given as
F = q(v×B)
Now, x component of the magnetic field
Bx = BCos45 = 5×10^-5 Cos45
Bx = 3.54 × 10^-5 •i T
Also, y component
By = BSin45 = 5 × 10^-5Sin45
By = 3.54 × 10^-5 •j T
B = 3.54 × 10^-5 •i + 3.54 × 10^-5 •j T
Now, F = q(v×B)
Note that,
i×i=j×j=k×k=0
i×j =k, j×k = i, k×i = j
j×i = -k, k×j = -i and i×k = -j
Therefore
F = q(v×B)
F = 1.6×10^-19(4×10^5•j × (3.54 × 10^-5 •i + 3.54 × 10^-5 •j T))
F = 1.6×10^-19 (4×10^5 × 3.54 × 10^-5 (j×i) + 4×10^5 × 3.54 × 10^-5(j×j))
F = 1.6×10^-19(14.14(-k) + 0)
F = —2.26 × 10^-18 •k N
It is in the negative direction of z axis
The magnitude of the force the field experience is 2.26 × 10^-18 N
"When The magnitude of the force the field experience is 2.26 × 10^-18 N". It is in the negative direction of = z-axis
Calculation of Magnitude force
The Speed of electron are:
v is = 4 × 10^5 •j m/s
Then Magnetic field
Now, B = 5 × 10^-5 T at an angle of 45° to horizontal
Then Charge of the electron is:
After that q = 1.6 × 10^-19C
Now, Magnitude of force F?
When The Force exerted in an electric field is given as
F is = q(v×B)
Now, x components of the magnetic field is:
Bx is = BCos45 = 5×10^-5 Cos45
Bx is = 3.54 × 10^-5 •i T
Also, y component is:
Then By = BSin45 = 5 × 10^-5Sin45
After that By = 3.54 × 10^-5 •j T
Now, B = 3.54 × 10^-5 •i + 3.54 × 10^-5 •j T
Now, F is = q(v×B)
Note that,
Then i×i=j×j=k×k=0
After that i×j =k, j×k = i, k×i = j
Then j×i = -k, k×j = -i and i×k = -j
Thus, F is = q(v×B)
Then F = 1.6×10^-19(4×10^5•j × (3.54 × 10^-5 •i + 3.54 × 10^-5 •j T))
After that F is = 1.6×10^-19 (4×10^5 × 3.54 × 10^-5 (j×i) + 4×10^5 × 3.54 × 10^-5(j×j))
F is = 1.6×10^-19(14.14(-k) + 0)
Then F = —2.26 × 10^-18 •k N
Now, It is in the negative direction of z axis
Therefore, The magnitude of the force the field experience is 2.26 × 10^-18 N
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