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STUDIES OF ENERGY RECOVERY LINACS AT ... - CASA

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VR = ω2<br />

2c<br />

Io<br />

fRF /h (Rd/Qo) yc,1<br />

91<br />

(4.25)<br />

where VR is the real component of the HOM voltage and yc,1 is the first pass dis-<br />

placement of the bunch through the cavity. The real component of the voltage<br />

corresponds to the electric field and is the means by which the beam bunch<br />

couples to the HOM.<br />

3. The bunch is deflected by the HOM excited by the passage of previous bunches<br />

according to<br />

∆y ′ c,1 = VI<br />

where VI is the imaginary component of the voltage and corresponds to the<br />

Vb<br />

(4.26)<br />

magnetic field. The location of the kick, depending on the simulation code and<br />

the manner in which the input file is configured, can occur immediately before<br />

or after the location of the accelerating cavity where the energy gain is<br />

implemented. After its passage, the bunch coordinates are stored in an array.<br />

The array contains all bunches present in the linac on the first pass and in the<br />

recirculation pass.<br />

4. Before the arrival of a recirculated bunch, the HOM voltage decays according to<br />

⎛<br />

⎜<br />

⎝ VR<br />

VI<br />

⎞<br />

⎟<br />

⎠<br />

t+dt<br />

ωdt<br />

− 2Q = e L<br />

⎛<br />

⎜<br />

⎝<br />

cos(ω dt) − sin(ω dt)<br />

sin(ω dt) cos(ω dt)<br />

⎞ ⎛<br />

⎟ ⎜<br />

⎠<br />

⎝ VR<br />

VI<br />

⎞<br />

⎟<br />

⎠<br />

t<br />

(4.27)<br />

where dt is the time interval between an injected bunch into the linac and a re-<br />

circulated bunch.<br />

5. The first pass beam is propagated from the cavity through the recirculator and<br />

back to the cavity according to a user-input transfer matrix.

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