Difference between revisions of "Aluminum Converter"
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Where <math> N </math> is the number of electrons that hit the target per second, <math> e </math> is electron charge and <math> f </math>, <math> I </math> and <math> ∆t </math> are given above. | Where <math> N </math> is the number of electrons that hit the target per second, <math> e </math> is electron charge and <math> f </math>, <math> I </math> and <math> ∆t </math> are given above. | ||
| − | <math> N= f | + | <math> N = \frac {f I ∆t} {e} = \frac {(300 Hz)(50 A) (5*10^{-11} ps)} {1.6*10^{-19} C} = 4.6875*10^{12} </math> |
| − | So, we have around <math> 4.6875*10^ | + | So, we have around <math> 4.6875*10^{12}</math> electrons per second or <math> 15.625*10^9 </math> electrons per pulse. |
==Calculating the stopping power due to collision of one 44 MeV electron in Aluminum== | ==Calculating the stopping power due to collision of one 44 MeV electron in Aluminum== | ||
| − | From NIST ([http://physics.nist.gov/ | + | From NIST ([http://physics.nist.gov/PhysRefData/Star/Text/ESTAR.html] see link here) the stopping power for one electron with energy of 44 MeV in Aluminum is <math> 1.78 MeV cm^2/g </math>. |
| − | <math> 1 mil = 1 | + | <math> 1 mil = \frac {1} {1000} inch * 2.54 \frac {cm} {inch} = 0.00254 cm </math> |
| + | The effective length of 1/2 mil Al: | ||
| + | <math> (2.70 \frac {g}{cm^3})(0.00127 cm) = 0.003429 \frac {g}{cm^2} </math> | ||
| + | The total stopping power due to collisions on Al per incident electron: | ||
| − | + | <math> (1.78 MeV \frac {cm^2}{g})(0.003429 \frac {g}{cm^2}) = 0.0061 \frac {MeV}{electron} </math> | |
| + | The energy deposited per pulse: | ||
| + | <math> (0.0061 \frac {MeV}{electron})(15.625*10^9 \frac {electrons}{pulse}) = 95.3125*10^6 \frac {MeV}{pulse} </math> | ||
| + | |||
| + | The energy deposited per second: | ||
| + | |||
| + | <math> (95.3125*10^6 \frac {MeV}{pulse})(300 \frac {pulses}{second}) = 28.6*10^9 \frac {MeV}{second} </math> | ||
| + | |||
| + | ==Calculating the temperature increase== | ||
| + | |||
| + | The power deposited in 1/2 mil Al is: | ||
| + | |||
| + | <math> P = (28.6*10^{15} \frac {eV}{second})(1.6*10^{-19} \frac {C}{eV}) = 4.575*10^{-3} W </math> | ||
| + | |||
| + | Stefan-Boltzmann Law (Wien Approximation) says <math> P = (0.924)(Area)(\sigma)(T^4) </math> | ||
| + | |||
| + | Solving for Temperature and taking into account the two sides of the converter we get: | ||
| + | |||
| + | <math> T^4 = \frac {P}{(0.924)(2A)(\sigma)} </math> | ||
| + | |||
| + | where <math> \sigma </math> is the Stefan-Boltzmann constant, <math> \sigma = 5.67*10^{-8} \frac {W}{m^2 K^4} </math>. Assume a beam spot diameter on the converter surface of 5mm, or an area of <math> A = 19.62 mm^2 = 19.62*10^{-6} m^2 </math>. | ||
| + | |||
| + | Plugging in the numbers we see that the temperature will increase <math> 217.2 K </math>. Now, adding in the temperature of the converter at room temperature we get : | ||
| + | |||
| + | <math> T = 300 + 217.2 = 517.2 K</math> | ||
| + | |||
| + | The melting temperature of Aluminum is <math> 933.5 K </math>. | ||
| + | |||
| + | ==Conclusion== | ||
| + | |||
| + | An Aluminum converter that is 1/2 mil thick being struck by a 44 MeV electron beam with a 50 picosecond pulse width, 300 Hz rep rate, and 50 Amp peak current is found to be safe from melting. | ||
Latest revision as of 20:52, 7 June 2010
Calculating the temperature of a 1/2 mil Aluminum converter with energy deposited from a 44 MeV electron beam.
Calculating number of particles per second
We have electron beam of:
Frequency:
Peak current:
Pulse width:
By , we have
Where is the number of electrons that hit the target per second, is electron charge and , and are given above.
So, we have around electrons per second or electrons per pulse.
Calculating the stopping power due to collision of one 44 MeV electron in Aluminum
From NIST ([1] see link here) the stopping power for one electron with energy of 44 MeV in Aluminum is .
The effective length of 1/2 mil Al:
The total stopping power due to collisions on Al per incident electron:
The energy deposited per pulse:
The energy deposited per second:
Calculating the temperature increase
The power deposited in 1/2 mil Al is:
Stefan-Boltzmann Law (Wien Approximation) says
Solving for Temperature and taking into account the two sides of the converter we get:
where is the Stefan-Boltzmann constant, . Assume a beam spot diameter on the converter surface of 5mm, or an area of .
Plugging in the numbers we see that the temperature will increase . Now, adding in the temperature of the converter at room temperature we get :
The melting temperature of Aluminum is .
Conclusion
An Aluminum converter that is 1/2 mil thick being struck by a 44 MeV electron beam with a 50 picosecond pulse width, 300 Hz rep rate, and 50 Amp peak current is found to be safe from melting.