Difference between revisions of "B-field calculation"

Latest revision as of 06:17, 5 February 2009

$c = 2.998 \cdot 10^8 \frac{m}{s}$

$\frac{MeV}{C} = 0.534 \cdot 10^{-21} \frac{m\cdot kg}{s}$

$p_e = 14 \frac{MeV}{c} = 7.47 \cdot 10^{-21} \frac{m\cdot kg}{s}$

$B = \frac{p_e}{q_e \cdot R}$

$1T=\frac{kg}{C\cdot s}$ , $q_e = 1.6\cdot 10^{-19} C$ , $1T=10^{-4}G$

$B(T) = \frac{p_e (\frac{MeV}{c})\cdot 0.33\cdot 10^{-2}}{R(m)}$

$B(T) = \frac{4.67\cdot 10^{-2}}{R(m)}$

$180^0 = \kappa + 90^0 + \beta$

$180^0 = \gamma + 90^0+ \beta$

$\kappa = \gamma$

$R = \frac{a}{cos(\beta)} = \frac{a}{cos(90^0 - \kappa)} = \frac{a}{sin(\kappa)}$

- general expression for B-field.

$B(T) = \frac{4.67\cdot 10^{-2}\cdot sin(\kappa)}{a(m)}$

If $\kappa = 2^0$ then $sin(\kappa) = 0.0348995$ and our B-field becomes:

$B(T) = \frac{0.163\cdot 10^{-2}}{a(m)}$

$a \simeq 0.12 m$ for the coils under consideration. Hence, B-field is:

$B = 0.01358 T = 135.8 G$

@@ Line 1: / Line 1: @@
-[[Image:B_field_trajectory.jpg |300px]]
+[[Image:B_field_trajectory2.jpg |300px]]
@@ Line 14: / Line 14: @@
 <math>1T=\frac{kg}{C\cdot s}</math>, <math>q_e = 1.6\cdot 10^{-19} C</math>, <math>1T=10^{-4}G</math>
+<math>B(T) = \frac{p_e (\frac{MeV}{c})\cdot 0.33\cdot 10^{-2}}{R(m)}</math>
 <math>B(T) = \frac{4.67\cdot 10^{-2}}{R(m)}</math>
@@ Line 26: / Line 29: @@
 <math>d = R \cdot (1 - cos(\kappa)) = \frac{a \cdot (1 - cos(\kappa))}{sin(\kappa)}</math>
+<math>B(T) = \frac{p_e (\frac{MeV}{c})\cdot 0.33\cdot 10^{-2}\cdot sin(\kappa)}{a(m)}</math> - general expression for B-field.
 <math>B(T) = \frac{4.67\cdot 10^{-2}\cdot sin(\kappa)}{a(m)}</math>
@@ Line 36: / Line 41: @@
 <math>B = 0.01358 T = 135.8 G</math>
+[http://wiki.iac.isu.edu/index.php/PhotoFission_with_Polarized_Photons_from_HRRL Go Back]