Difference between revisions of "Phase space Limiting Particles"
(Created page with "Since the angle phi has been constrained to remain constant, the x and y components of the momentum will increase in the positive first quadrant. This implies that the z compone…") |
|||
Line 1: | Line 1: | ||
+ | <center><math>\textbf{\underline{Navigation}}</math> | ||
+ | |||
+ | [[VanWasshenova_Thesis#Determining_wire-theta_correspondence|<math>\vartriangleleft </math>]] | ||
+ | [[VanWasshenova_Thesis#Determining_wire-theta_correspondence|<math>\triangle </math>]] | ||
+ | [[CED_Verification_of_DC_Angle_Theta_and_Wire_Correspondance|<math>\vartriangleright </math>]] | ||
+ | |||
+ | </center> | ||
+ | |||
+ | |||
+ | |||
+ | |||
+ | |||
Since the angle phi has been constrained to remain constant, the x and y components of the momentum will increase in the positive first quadrant. This implies that the z component of the momentum must decrease by the relation: | Since the angle phi has been constrained to remain constant, the x and y components of the momentum will increase in the positive first quadrant. This implies that the z component of the momentum must decrease by the relation: | ||
Line 39: | Line 51: | ||
These particles are outside the light cone and are more timelike, thus not visible in normal space. This will reduce the number of particles that will be detected. | These particles are outside the light cone and are more timelike, thus not visible in normal space. This will reduce the number of particles that will be detected. | ||
+ | |||
+ | |||
+ | |||
+ | <center><math>\textbf{\underline{Navigation}}</math> | ||
+ | |||
+ | [[VanWasshenova_Thesis#Determining_wire-theta_correspondence|<math>\vartriangleleft </math>]] | ||
+ | [[VanWasshenova_Thesis#Determining_wire-theta_correspondence|<math>\triangle </math>]] | ||
+ | [[CED_Verification_of_DC_Angle_Theta_and_Wire_Correspondance|<math>\vartriangleright </math>]] | ||
+ | |||
+ | </center> |
Revision as of 14:24, 30 May 2017
Since the angle phi has been constrained to remain constant, the x and y components of the momentum will increase in the positive first quadrant. This implies that the z component of the momentum must decrease by the relation:
In the Center of Mass frame, this becomes:
Since the momentum in the CM frame is a constant, this implies that pz must decrease. We can use the variable rapidity:
where
this implies that as
For forward travel in the light cone:
This corresponds to the scattered electron proven earlier.
For backward travel in the light cone:
Similarly, this corresponds to the Moller electron.
For a particle that transforms from the Lab frame to the CM frame where the particle is not within the light cone:
These particles are outside the light cone and are more timelike, thus not visible in normal space. This will reduce the number of particles that will be detected.