Difference between revisions of "Calculation of radiation yield"
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<math>\Phi_n(Z,E_0,k) = \frac{p}{p_0}(\frac{4}{3}-2EE_0(\frac{p^2+p^2_0}{p^2p^2_0})+\frac{\omega_0E}{p^3_0}+\frac{\omega E_0}{p^3}-\frac{\omega\omega_0}{pp_0}+l[\frac{k}{2pp_0}(\omega_0(\frac{EE_0+p^2_0}{p^3_0})-\omega(\frac{EE_0+p^2}{p^3})+\frac{2kEE_0}{p^2p^2_0})+\frac{8EE_0}{3pp_0}+\frac{k^2(E^2E^2_0+p^2p^2_0)}{p^3p^3_0}])</math> | <math>\Phi_n(Z,E_0,k) = \frac{p}{p_0}(\frac{4}{3}-2EE_0(\frac{p^2+p^2_0}{p^2p^2_0})+\frac{\omega_0E}{p^3_0}+\frac{\omega E_0}{p^3}-\frac{\omega\omega_0}{pp_0}+l[\frac{k}{2pp_0}(\omega_0(\frac{EE_0+p^2_0}{p^3_0})-\omega(\frac{EE_0+p^2}{p^3})+\frac{2kEE_0}{p^2p^2_0})+\frac{8EE_0}{3pp_0}+\frac{k^2(E^2E^2_0+p^2p^2_0)}{p^3p^3_0}])</math> | ||
+ | <math>p_0 = \sqrt{E^2_0-1}</math> | ||
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Revision as of 21:25, 9 May 2008
The number of photons per MeV per incident electron per
of radiator (Z,A) is given by [*]:,
where
- photon kinetic energy in MeV;- incident electron total energy (in units of the electron rest mass);
- incident photon energy (in units of the electron rest mass);
Calculation of
;
;
;
;
;
;
;
Case A: For
the screening effect is negligible, (free electron form) and in this case .Case B: For
we have
Calculation of
, :
, :
Reference: [*] J.L. Matthews, R.O. Owens, Accurate Formulae For the Calculation of High Energy Electron Bremsstrahlung Spectra, NIM III (1973) I57-I68.