Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 1 Lecture 5  Magnetic Multipoles Magnetic Multipoles,

Slides:



Advertisements
Similar presentations
Differential Calculus (revisited):
Advertisements

Lecture 2 Jack Tanabe Old Dominion University Hampton, VA January 2011 Mathematical Formulation of the Two Dimensional Magnetic Field.
Eric Prebys, FNAL.  We have focused largely on a kinematics based approach to beam dynamics.  Most people find it more intuitive, at least when first.
VEKTORANALYS Kursvecka 6 övningar. PROBLEM 1 SOLUTION A dipole is formed by two point sources with charge +c and -c Calculate the flux of the dipole.
Lecture 3 Jack Tanabe Old Dominion University Hampton, VA January 2011 Conformal Mapping.
Beam dynamics in IDsBeam-based Diagnostics, USPAS, June 23-27, 2003, J. Safranek Beam dynamics in insertion devices m Closed orbit perturbation m Linear.
1 A. Derivation of GL equations macroscopic magnetic field Several standard definitions: -Field of “external” currents -magnetization -free energy II.
Wilson Lab Tour Guide Orientation 11 December 2006 CLASSE 1 Focusing and Bending Wilson Lab Tour Guide Orientation M. Forster Mike Forster 11 December.
Chapter 1 Vector analysis
EMLAB 1 Power Flow and PML Placement in FDTD. EMLAB 2 Lecture Outline Review Total Power by Integrating the Poynting Vector Total Power by Plane Wave.
PHY 042: Electricity and Magnetism
Eric Prebys, FNAL.  We consider motion of particles either through a linear structure or in a circular ring USPAS, Knoxville, TN, Jan , 2014 Lecture.
Anharmonic Oscillator Derivation of Second Order Susceptibilities
Jaypee Institute of Information Technology University, Jaypee Institute of Information Technology University,Noida Department of Physics and materials.
Lecture 4: Boundary Value Problems
Multipole expansion of the radiation fields
Lecture 18 Chapter XI Propagation and Coupling of Modes in Optical Dielectric Waveguides – Periodic Waveguides Highlights (a) Periodic (corrugated) WG.
Quadrupole Transverse Beam Optics Chris Rogers 2 June 05.
Lecture 3 - E. Wilson - 22 Oct 2014 –- Slide 1 Lecture 3 - Magnets and Transverse Dynamics I ACCELERATOR PHYSICS MT 2014 E. J. N. Wilson.
Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 1 Lecture 15  Radiation Damping Radiation Damping USPAS,
3. 3 Separation of Variables We seek a solution of the form Cartesian coordinatesCylindrical coordinates Spherical coordinates Not always possible! Usually.
1 Bunched-Beam RMS Envelope Simulation with Space Charge Christopher K. Allen Los Alamos National Laboratory.
Eric Prebys, FNAL. USPAS, Hampton, VA, Jan , 2015 Wakefields and Impedance 2 Consider the effect that one particle can have on subsequent particles.
Simulation of direct space charge in Booster by using MAD program Y.Alexahin, A.Drozhdin, N.Kazarinov.
Eric Prebys, FNAL.  In terms of total charge and current  In terms of free charge an current USPAS, Knoxville, TN, January 20-31, 2013 Lecture 2 - Basic.
Eric Prebys, FNAL.  In our previous discussion, we implicitly assumed that the distribution of particles in phase space followed the ellipse defined.
§3.4. 1–3 Multipole expansion Christopher Crawford PHY
Electric Potential.
Eric Prebys, FNAL.  In our earlier lectures, we found the general equations of motion  We initially considered only the linear fields, but now we will.
Daniel Dobos Seminar: Chaos, Prof. Markus
3.3 Separation of Variables 3.4 Multipole Expansion
Linear Imperfections equations of motion with imperfections: smooth approximation orbit correction for the un-coupled case transfer matrices with coupling:
Lecture 7 - E. Wilson - 2/16/ Slide 1 Lecture 7 - Circulating Beams and Imperfections ACCELERATOR PHYSICS MT 2009 E. J. N. Wilson.
By Verena Kain CERN BE-OP. In the next three lectures we will have a look at the different components of a synchrotron. Today: Controlling particle trajectories.
Zeuten 2 - E. Wilson - 2/26/ Slide 1 Transverse Dynamics – E. Wilson – CERN – 16 th September 2003  The lattice calculated  Solution of Hill 
Lecture 4 - E. Wilson - 23 Oct 2014 –- Slide 1 Lecture 4 - Transverse Optics II ACCELERATOR PHYSICS MT 2014 E. J. N. Wilson.
Eric Prebys, FNAL.  We consider motion of particles either through a linear structure or in a circular ring USPAS, Hampton, VA, Jan , 2015 Longitudinal.
Operated by the Southeastern Universities Research Association for the U.S. Depart. Of Energy Thomas Jefferson National Accelerator Facility Alex Bogacz,
Lecture 4 - E. Wilson –- Slide 1 Lecture 4 - Transverse Optics II ACCELERATOR PHYSICS MT 2009 E. J. N. Wilson.
Lecture 4 Longitudinal Dynamics I Professor Emmanuel Tsesmelis Directorate Office, CERN Department of Physics, University of Oxford ACAS School for Accelerator.
8. Wave Guides and Cavities 8A. Wave Guides Suppose we have a region bounded by a conductor We want to consider oscillating fields in the non-conducting.
WIR SCHAFFEN WISSEN – HEUTE FÜR MORGEN Motion in an Undulator Sven Reiche :: SwissFEL Beam Dynamics Group :: Paul Scherrer Institute CERN Accelerator School.
Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility Alex Bogacz IDS- NF Acceleration Meeting, Jefferson Lab,
Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility Alex Bogacz 1 Recirculating Linac Acceleration  End-to-end.
Lecture 8 - Circulating Beams and Imperfections
Lecture 4 - Transverse Optics II
THE METHOD OF LINES ANALYSIS OF ASYMMETRIC OPTICAL WAVEGUIDES Ary Syahriar.
Review Lecture Jeffrey Eldred Classical Mechanics and Electromagnetism
Magnetostatics & Magnet Design
Magnetic Multipoles Jeffrey Eldred
§3.4.1–3 Multipole expansion
Lecture 7 ACCELERATOR PHYSICS HT E. J. N. Wilson.
Lecture 4 - Transverse Optics II
Lecture 7 - Circulating Beams and Imperfections
Lecture 2 Jack Tanabe Old Dominion University Hampton, VA January 2011
Lecture 4 - Transverse Optics II
G. A. Krafft Jefferson Lab Old Dominion University Lecture 1
Low Emittance Lattices
Multipole Magnets from Maxwell’s Equations
Magnetic Multipoles, Magnet Design
Radiation Damping S.A. Bogacz, G.A. Krafft, S. DeSilva and R. Gamage
Alex Bogacz, Geoff Krafft and Timofey Zolkin
Accelerator Physics Coupling Control
Review Chapter 1-8 in Jackson
Radiation Damping - Low emittance lattices
Accelerator Physics Synchrotron Radiation
Physics 319 Classical Mechanics
Physics 417/517 Introduction to Particle Accelerator Physics
Lecture 2 - Transverse motion
Lecture 8 ACCELERATOR PHYSICS HT E. J. N. Wilson.
Presentation transcript:

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 1 Lecture 5  Magnetic Multipoles Magnetic Multipoles, Magnet Design USPAS, Fort Collins, CO, June 10-21, 2013 Alex Bogacz, Geoff Krafft and Timofey Zolkin

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 2 Lecture 5  Magnetic Multipoles Maxwell’s Equations for Magnets - Outline Solutions to Maxwell’s equations for magnetostatic fields: in two dimensions (multipole fields) in three dimensions (fringe fields, end effects, insertion devices...) How to construct multipole fields in two dimensions, using electric currents and magnetic materials, considering idealized situations. A. Wolski, University of Liverpool and the Cockcroft Institute, CAS Specialised Course on Magnets, 2009, USPAS, Hampton, VA, Jan , 2011

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 3 Lecture 5  Magnetic Multipoles Basis Vector calculus in Cartesian and polar coordinate systems; Stokes’ and Gauss’ theorems Maxwell’s equations and their physical significance Types of magnets commonly used in accelerators. following notation used in: A. Chao and M. Tigner, “Handbook of Accelerator Physics and Engineering,” World Scientific (1999). USPAS, Hampton, VA, Jan , 2011

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 4 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Maxwell’s equations

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 5 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Maxwell’s equations

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 6 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Physical interpretation of

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 7 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Physical interpretation of

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 8 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Linearity and superposition

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 9 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 10 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 11 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 12 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 13 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 14 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 15 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Generating multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 16 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 17 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 18 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 19 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 20 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 21 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 22 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 23 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 24 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 25 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields from a current distribution

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 26 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Superconducting quadrupole - collider final focus

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 27 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 28 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 29 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 30 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 31 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 32 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 33 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 34 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 35 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 36 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 37 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 38 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Generating multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 39 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Generating multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 40 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Generating multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 41 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Generating multipole fields in an iron-core magnet

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 42 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Maxwell’s Equations for Magnets - Summary

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 43 Lecture 5  Magnetic Multipoles Multipoles in Magnets - Outline Deduce that the symmetry of a magnet imposes constraints on the possible multipole field components, even if we relax the constraints on the material properties and other geometrical properties; Consider different techniques for deriving the multipole field components from measurements of the fields within a magnet; Discuss the solutions to Maxwell’s equations that may be used for describing fields in three dimensions. USPAS, Fort Collins, CO, June 10-21, 2013

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 44 Lecture 5  Magnetic Multipoles Previous lecture re-cap USPAS, Fort Collins, CO, June 10-21, 2013

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 45 Lecture 5  Magnetic Multipoles Previous lecture re-cap USPAS, Fort Collins, CO, June 10-21, 2013

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 46 Lecture 5  Magnetic Multipoles Allowed and forbidden harmonics USPAS, Fort Collins, CO, June 10-21, 2013

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 47 Lecture 5  Magnetic Multipoles Allowed and forbidden harmonics USPAS, Fort Collins, CO, June 10-21, 2013

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 48 Lecture 5  Magnetic Multipoles Allowed and forbidden harmonics USPAS, Fort Collins, CO, June 10-21, 2013

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 49 Lecture 5  Magnetic Multipoles Allowed and forbidden harmonics USPAS, Fort Collins, CO, June 10-21, 2013

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 50 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Allowed and forbidden harmonics

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 51 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Allowed and forbidden harmonics

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 52 Lecture 5  Magnetic Multipoles Measuring multipoles USPAS, Fort Collins, CO, June 10-21, 2013

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 53 Lecture 5  Magnetic Multipoles Measuring multipoles in Cartesian basis USPAS, Fort Collins, CO, June 10-21, 2013

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 54 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Measuring multipoles in Cartesian basis

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 55 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Measuring multipoles in Polar basis

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 56 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Measuring multipoles in Polar basis

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 57 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Measuring multipoles in Polar basis

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 58 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Advantages of mode decompositions

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 59 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Three-dimensional fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 60 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Three-dimensional fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 61 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Three-dimensional fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 62 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Three-dimensional fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 63 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Three-dimensional fields

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 64 Lecture 5  Magnetic Multipoles Symmetries in multipole magnets restrict the multipole components that can be present in the field. It is useful to be able to find the multipole components in a given field from numerical field data: but this must be done carefully, if the results are to be accurate. Usually, it is advisable to calculate multipole components using field data on a surface enclosing the region of interest: any errors or residuals will decrease exponentially within that region, away from the boundary. Outside the boundary, residuals will increase exponentially. Techniques for finding multipole components in two dimensional fields can be generalized to three dimensions, allowing analysis of fringe fields and insertion devices. In two or three dimensions, it is possible to use a Cartesian basis for the field modes; but a polar basis is sometimes more convenient. USPAS, Fort Collins, CO, June 10-21, 2013 Summary – Part II

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 65 Lecture 5  Magnetic Multipoles Appendix A - Field Error Tolerances Focusing ‘point’ error perturbs the betatron motion leading to the Courant-Snyder invariant change: Beam envelope and beta-function oscillate at double the betatron frequency USPAS, Fort Collins, CO, June 10-21, 2013

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 66 Lecture 5  Magnetic Multipoles Single point mismatch as measured by the Courant-Snyder invariant change: here, m =1 quadrupole, m =2 sextupole, m=3 octupole, etc Each source of field error (magnet) contributes the following Courant-Snyder variation USPAS, Fort Collins, CO, June 10-21, 2013 Appendix A - Field Error Tolerances

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 67 Lecture 5  Magnetic Multipoles multipole expansion coefficients of the azimuthal magnetic field, B  - Fourier series representation in polar coordinates at a given point along the trajectory): multipole gradient and integrated geometric gradient : USPAS, Fort Collins, CO, June 10-21, 2013 Appendix A - Field Error Tolerances

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 68 Lecture 5  Magnetic Multipoles Cumulative mismatch along the lattice (N sources): Standard deviation of the Courant-Snyder invariant is given by: Assuming weakly focusing lattice (uniform beta modulation) the following averaging (over the betatron phase) can by applied: USPAS, Fort Collins, CO, June 10-21, 2013 Appendix A - Field Error Tolerances

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 69 Lecture 5  Magnetic Multipoles Some useful integrals …. : will reduce the coherent contribution to the C-S variance as follows: Including the first five multipoles yields: USPAS, Fort Collins, CO, June 10-21, 2013 Appendix A - Field Error Tolerances

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 70 Lecture 5  Magnetic Multipoles Beam radius at a given magnet is : One can define a ‘good fileld radius’ for a given type of magnet as: Assuming the same multipole content for all magnets in the class one gets: The first factor purely depends on the beamline optics (focusing), while the second one describes field tolerance (nonlinearities) of the magnets: USPAS, Fort Collins, CO, June 10-21, 2013 Appendix A - Field Error Tolerances

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 71 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 A scalar potential description of the magnetic field has been very useful to derive the shape for the pole face of a multipole magnet. Appendix B - The vector potential

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 72 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Appendix B - The vector potential

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 73 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Appendix B - The vector potential

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 74 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Appendix B - The vector potential

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 75 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Appendix B - The vector potential

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 76 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Appendix B - The vector potential

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 77 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Appendix B - The vector potential

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 78 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Appendix B - The vector potential

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 79 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Appendix B - The vector potential

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 80 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Appendix B - The vector potential

Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility 81 Lecture 5  Magnetic Multipoles USPAS, Fort Collins, CO, June 10-21, 2013 Appendix B - The vector potential