04.08.2013 Views

STUDIES OF ENERGY RECOVERY LINACS AT ... - CASA

STUDIES OF ENERGY RECOVERY LINACS AT ... - CASA

STUDIES OF ENERGY RECOVERY LINACS AT ... - CASA

SHOW MORE
SHOW LESS

You also want an ePaper? Increase the reach of your titles

YUMPU automatically turns print PDFs into web optimized ePapers that Google loves.

4.1 The Pillbox Cavity<br />

Although the cavities used in particle accelerators have geometries much more<br />

complicated than the simple pillbox, the advantage of the pillbox cavity is that<br />

the electric and magnetic fields can be solved analytically. These solutions offer<br />

important insights about the properties of the modes. For accelerator applications,<br />

the modes of primary interest are the transverse magnetic (TM) modes. In particular<br />

the TM010 mode is used for acceleration and the TM110 modes are those which<br />

facilitate BBU. Details of the derivation of the electric and magnetic fields of TM<br />

modes is presented in Appendix A.<br />

4.1.1 TMmn0 Modes<br />

The two components of interest, the longitudinal component of the electric field<br />

and the azimuthal component of the magnetic field, for the TMmn0 modes, are given<br />

by<br />

Ez(ρ, φ, z) = E0Jm<br />

Hφ(ρ, φ, z) = iE0<br />

xmnρ<br />

R<br />

ɛ0ωmn0R<br />

xmn<br />

<br />

J ′ m<br />

R<br />

82<br />

<br />

cos(mφ) (4.1)<br />

<br />

xmnρ<br />

<br />

cos(mφ) (4.2)<br />

where Jm(xmnρ/R) are Bessel functions of order m and where xmn ≡ γmnR is the<br />

n th root of the Bessel function and R is the radius of the cavity (see Fig. A.1 for<br />

reference).<br />

The TM010, or monopole, mode is given by<br />

Ez(ρ, φ, z) = E0J0<br />

Hφ(ρ, φ, z) = iE0<br />

x01ρ<br />

R<br />

<br />

ɛ0ω010R<br />

x01<br />

<br />

J ′ 0<br />

x01ρ<br />

R<br />

<br />

(4.3)<br />

(4.4)

Hooray! Your file is uploaded and ready to be published.

Saved successfully!

Ooh no, something went wrong!