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Bernhard Holzer, CERN-LHC * IP5 IP1 IP2 IP8 Introduction to Accelerator Physics Beam Dynamics for „Summer Students“ The Ideal World I.) Magnetic Fields and Particle Trajectories

Bernhard Holzer, CERN-LHC

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Introduction to Accelerator Physics Beam Dynamics for „Summer Students“ . Bernhard Holzer, CERN-LHC. The Ideal World . IP5. I.) Magnetic Fields and Particle Trajectories. IP8. IP2. IP1. *. Luminosity Run of a typical storage ring:. - PowerPoint PPT Presentation

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Page 1: Bernhard Holzer,  CERN-LHC

Bernhard Holzer, CERN-LHC

*

IP5

IP1IP2

IP8

Introduction to Accelerator Physics Beam Dynamics for „Summer Students“

The Ideal World I.) Magnetic Fields and Particle Trajectories

Page 2: Bernhard Holzer,  CERN-LHC

LHC Storage Ring: Protons accelerated and stored for 12 hours distance of particles travelling at about v ≈ c

L = 1010-1011 km ... several times Sun - Pluto and back

Luminosity Run of a typical storage ring:

guide the particles on a well defined orbit („design orbit“) focus the particles to keep each single particle trajectory within the vacuum chamber of the storage ring, i.e. close to the design orbit.

intensity (1011)

1 -

2 -

3 -

Page 3: Bernhard Holzer,  CERN-LHC

Lorentz force *( ) F q E v B

„ ... in the end and after all it should be a kind of circular machine“ need transverse deflecting force

typical velocity in high energy machines: 83*10 msv c

1.) Introduction and Basic Ideas

Example:

28 11031

mVs

smqFTB

mMVqF 300

technical limit for el. field:

mMVE 1

Eequivalent el. field ...

Page 4: Bernhard Holzer,  CERN-LHC

Bvevm

2

0

circular coordinate system

condition for circular orbit:

Lorentz force

centrifugal force

The ideal circular orbit

ρ

s

θ ●

y

BveFL

2

0 vmFcentr Bep

B ρ = "beam rigidity"

old greek dictum of wisdom:if you are clever, you use magnetic fields in an accelerator wherever it is possible.

Page 5: Bernhard Holzer,  CERN-LHC

2.) The Magnetic Guide Field

Normalise magnetic field to momentum:

Dipole Magnets:

define the ideal orbit homogeneous field created by two flat pole shoes

convenient units:

2m

VsTB

cGeVp

hInB 0

29

8

9

2

10*7000

10*3*3.8

10*7000

3.81m

sms

ceV

mVs

e

TB 3.8

cGeVp 7000

Example LHC:

m1

70003.8333.01

Bep

pBe

1

Page 6: Bernhard Holzer,  CERN-LHC

field map of a storage ring dipole magnet

ρ

α

ds

„normalised bending strength“

2πρ = 17.6 km ≈ 66%

The Magnetic Guide Field

km53.2

cGeVp

TB/

3.01

rule of thumb:

TB 8...1

Page 7: Bernhard Holzer,  CERN-LHC

classical mechanics:pendulum

there is a restoring force, proportional to the elongation x:

2

2* *d xm c xdt

general solution: free harmonic oszillation ( ) *cos( )x t A t

Storage Ring: we need a Lorentz force that rises as a function of the distance to ........ ? ................... the design orbit

( ) * * ( )F x q v B x

2.) Focusing Properties – Transverse Beam Optics

Page 8: Bernhard Holzer,  CERN-LHC

required: focusing forces to keep trajectories in vicinity of the ideal orbit

linear increasing Lorentz force

linear increasing magnetic field

Quadrupole Magnets:

normalised quadrupole field:

what about the vertical plane: ... Maxwell

E B = 0t

j

ygBxgB xy

LHC main quadrupole magnet

mTg /220...25

simple rule:)/(

)/(3.0cGeVp

mTgk

epgk/

By

x

Bx

yg

Page 9: Bernhard Holzer,  CERN-LHC

Focusing forces and particle trajectories:

1/B B

p q B

normalise magnet fields to momentum (remember: B*ρ = p / q )

Dipole Magnet Quadrupole Magnet

:/gk

p q

Page 10: Bernhard Holzer,  CERN-LHC

Example: heavy ion storage ring TSR

Separate Function Machines:

Split the magnets and optimise them according to their job:

bending, focusing etc

...!3

1!2

11/

)( 32 xnxmxkepxB

3.) The Equation of Motion:

only terms linear in x, y taken into account dipole fields quadrupole fields

* man sieht nur dipole und quads linear

Page 11: Bernhard Holzer,  CERN-LHC

Equation for the vertical motion:*

012

kk

no dipoles … in general …

quadrupole field changes sign

0 yky

0)1( 2 kxx

y

x

y

x

ρ

s

θ ●

y The Equation of Motion:

Equation for the horizontal motion:*

Page 12: Bernhard Holzer,  CERN-LHC

Differential Equation of harmonic oscillator … with spring constant K

Ansatz:

4.) Solution of Trajectory Equations

Define … hor. plane:

… vert. Plane:

21 K k

K k 0 xKx

Hor. Focusing Quadrupole K > 0:

0 01( ) cos( ) sin( ) x s x K s x K sK

0 0( ) sin( ) cos( ) x s x K K s x K s

For convenience expressed in matrix formalism:

01

*s

focs x

xM

xx

lKlKK

lKK

lKM foc

cossin

sin1cos

Page 13: Bernhard Holzer,  CERN-LHC

1cosh sinh

sinh cosh

defoc

K l K lKM

K K l K l

hor. defocusing quadrupole:

drift space: K = 0

10 1

drift

lM

! with the assumptions made, the motion in the horizontal and vertical planes are independent „ ... the particle motion in x & y is uncoupled“

s = s1s = 0

0 xKx

)sinh()cosh()( 21 sasasx

Ansatz: Remember from school

x(s) x 0 * s

Page 14: Bernhard Holzer,  CERN-LHC

focusing lens

dipole magnet

defocusing lens

Transformation through a system of lattice elements

combine the single element solutions by multiplication of the matrices

*.....* * * * etotal QF D QD B nd DM M M M M M

x(s)

s

court. K. Wille

0

typical values in a strong foc. machine:x ≈ mm, x´ ≤ mrad

xx '

s2

M(s2,s1) *xx '

s1

in each accelerator element the particle trajectory corresponds to the movement of a harmonic oscillator „

Page 15: Bernhard Holzer,  CERN-LHC

Tune: number of oscillations per turn

64.3159.32

Relevant for beam stability: non integer part

5.) Orbit & Tune:

LHC revolution frequency: 11.3 kHz kHz5.33.11*31.0

Page 16: Bernhard Holzer,  CERN-LHC

First turn steering "by sector:" One beam at the time Beam through 1 sector (1/8 ring),

correct trajectory, open collimator and move on.

LHC Operation: Beam Commissioning

Page 17: Bernhard Holzer,  CERN-LHC

Question: what will happen, if the particle performs a second turn ?

x

... or a third one or ... 1010 turns

0

s

Page 18: Bernhard Holzer,  CERN-LHC

Z X Y( )

II.) The Ideal World: Particle Trajectories, Beams & Bunches

Bunch in a Storage Ring

Page 19: Bernhard Holzer,  CERN-LHC

Astronomer Hill:

differential equation for motions with periodic focusing properties„Hill‘s equation“

Example: particle motion with periodic coefficient

equation of motion: ( ) ( ) ( ) 0 x s k s x s

restoring force ≠ const, we expect a kind of quasi harmonic k(s) = depending on the position s oscillation: amplitude & phase will depend k(s+L) = k(s), periodic function on the position s in the ring.

Page 20: Bernhard Holzer,  CERN-LHC

6.) The Beta Function

( ) * ( ) *cos( ( ) )x s s s

ε beam emittance = woozilycity of the particle ensemble, intrinsic beam parameter, cannot be changed by the foc. properties. scientifiquely spoken: area covered in transverse x, x´ phase space … and it is constant !!!

Ansatz:

„it is convenient to see“

... after some beer ... general solution of Mr Hill can be written in the form:

β(s) periodic function given by focusing properties of the lattice ↔ quadrupoles

ε, Φ = integration constants determined by initial conditions

( ) ( )s L s

Ψ(s) = „phase advance“ of the oscillation between point „0“ and „s“ in the lattice.For one complete revolution: number of oscillations per turn „Tune“

12 ( )y

dsQs

Page 21: Bernhard Holzer,  CERN-LHC

2 2( )* ( ) 2 ( ) ( ) ( ) ( ) ( ) s x s s x s x s s x s

7.) Beam Emittance and Phase Space Ellipse

x

●x(s)

s

Liouville: in reasonable storage rings area in phase space is constant.

A = π*ε=const

ε beam emittance = woozilycity of the particle ensemble, intrinsic beam parameter, cannot be changed by the foc. properties. Scientifiquely spoken: area covered in transverse x, x´ phase space … and it is constant !!!

Page 22: Bernhard Holzer,  CERN-LHC

Particle Tracking in a Storage Ring

Calculate x, x´ for each linear accelerator element according to matrix formalism

plot x, x´as a function of „s“

Page 23: Bernhard Holzer,  CERN-LHC

… and now the ellipse: note for each turn x, x´at a given position „s1“ and plot in the

phase space diagram

Page 24: Bernhard Holzer,  CERN-LHC

Emittance of the Particle Ensemble:

Z X Y( )

Page 25: Bernhard Holzer,  CERN-LHC

Emittance of the Particle Ensemble:

single particle trajectories, N ≈ 10 11 per bunch

))(cos()()( sssx

Gauß Particle Distribution:

2

2

21

2)( x

x

x

eeNx

particle at distance 1 σ from centre ↔ 68.3 % of all beam particles

)()(ˆ ssx

aperture requirements: r 0 = 12 * σ

LHC:

mmmm 3.0180*10*5* 10

180 m

5*10 10 m rad

Page 26: Bernhard Holzer,  CERN-LHC

1952: Courant, Livingston, Snyder: Theory of strong focusing in particle beams

D

yx ,

III.) The „not so ideal“ World Lattice Design in Particle Accelerators

Page 27: Bernhard Holzer,  CERN-LHC

01

*ss x

xM

xx

Recapitulation: ...the story with the matrices !!!Solution of Trajectory Equations

)cos()sin(

)sin(1)cos(

lKlKK

lKK

lKM foc

)cosh()sinh(

)sinh(1)cosh(

lKlKK

lKK

lKMdefoc

101 l

Mdrift

Equation of Motion:

… hor. plane:

… vert. Plane:

21 K k

K k

0 xKx

...****** DQDDBDQFtotal MMMMMMM

Page 28: Bernhard Holzer,  CERN-LHC

* /B p e Geometry of the ring: p = momentum of the particle,ρ = curvature radius

Bρ= beam rigidity

8.) Lattice Design: „… how to build a storage ring“

Circular Orbit: bending angle of one dipole

BBdldlds

The angle run out in one revolution must be 2π, so for a full circle

Bdl

B 2

Bdl 2 pq … defines the integrated dipole field around the machine.

Page 29: Bernhard Holzer,  CERN-LHC

7000 GeV Proton storage ring dipole magnets N = 1232 l = 15 m q = +1 e

Teslae

smm

eVB

epBlNdlB

3.8103151232

1070002

/2

8

9

Example LHC:

Page 30: Bernhard Holzer,  CERN-LHC

FoDo-Lattice A magnet structure consisting of focusing and defocusing quadrupole lenses in alternating order with nothing in between.(Nothing = elements that can be neglected on first sight: drift, bending magnets, RF structures ... and especially experiments...)

Starting point for the calculation: in the middle of a focusing quadrupolePhase advance per cell μ = 45°, calculate the twiss parameters for a periodic solution

Page 31: Bernhard Holzer,  CERN-LHC

9.) Insertions

yx ,

D

Page 32: Bernhard Holzer,  CERN-LHC

2

00

( )

At the end of a long symmetric drift space the beta function reaches its maximum value in the complete lattice. -> here we get the largest beam dimension.

-> keep l as small as possible

*

l l

β0

β-Function in a Drift:

7 sima beam size iside a mini beta quadrupole

Page 33: Bernhard Holzer,  CERN-LHC

... clearly there is another problem !!!

Example: Luminosity optics at LHC: β* = 55 cm for smallest βmax we have to limit the overall length and keep the distance “s” as small as possible.

... unfortunately ... in general high energy detectors that are installed in that drift spaces are a little bit bigger than a few centimeters ...

Page 34: Bernhard Holzer,  CERN-LHC

production rate of eventsis determined by thecross section Σreact

and a parameter L that is given by the design of the accelerator:… the luminosity

1 22 * *

0

*1 *4 b *x y

I ILe f

R L * react

The Mini-β Insertion:

Page 35: Bernhard Holzer,  CERN-LHC

p2-Bunch

p1-BunchIP

± σ 10 11 particles

10 11 particles

10.) Luminosity

m

mrad

m

yx

yx

yx

17

105

55.0

,

10,

,

mAI p 584

2808245.110

bnkHzf

scmL 2

34 1100.1

Example: Luminosity run at LHC

yx

pp

b

IInfe

L

21

02 *

41

Page 36: Bernhard Holzer,  CERN-LHC

Mini-β Insertions: BetafunctionsA mini-β insertion is always a kind of special symmetric drift space.

greetings from Liouville

x

/

the smaller the beam size the larger the bam divergence

Page 37: Bernhard Holzer,  CERN-LHC

Mini-β Insertions: some guide lines

* calculate the periodic solution in the arc

* introduce the drift space needed for the insertion device (detector ...)

* put a quadrupole doublet (triplet ?) as close as possible

* introduce additional quadrupole lenses to match the beam parameters to the values at the beginning of the arc structure

parameters to be optimised & matched to the periodic solution:

, ,, ,

x x x x

y y x y

D DQ Q

8 individually powered quad magnets are needed to match the insertion ( ... at least)

Page 38: Bernhard Holzer,  CERN-LHC

Electrostatic Machines (Tandem –) van de Graaff Accelerator

creating high voltages by mechanical transport of charges

* Terminal Potential: U ≈ 12 ...28 MV using high pressure gas to suppress discharge ( SF6 )

Problems: * Particle energy limited by high voltage discharges * high voltage can only be applied once per particle ...

... or twice ?

IV) … let´s talk about acceleration

Page 39: Bernhard Holzer,  CERN-LHC

Example for such a „steam engine“: 12 MV-Tandem van de Graaff Accelerator at MPI Heidelberg

* The „Tandem principle“: Apply the accelerating voltage twice ... ... by working with negative ions (e.g. H-) and stripping the electrons in the centre of the structure

Page 40: Bernhard Holzer,  CERN-LHC

12.) Linear Accelerator1928, Wideroe

+ + + +- --

* RF Acceleration: multiple application of the same acceleration voltage; brillant idea to gain higher energies

Energy Gain per „Gap“:

tUqW RFsin0

500 MHz cavities in an electron storage ring

drift tube structure at a proton linac(GSI Unilac)

Page 41: Bernhard Holzer,  CERN-LHC

13.) The AccelerationWhere is the acceleration?Install an RF accelerating structure in the ring:

z

c

E

B. SalvantN. Biancacci

Page 42: Bernhard Holzer,  CERN-LHC

14.) The Acceleration for Δp/p≠0“Phase Focusing” below transition

ideal particle particle with Δp/p > 0 faster particle with Δp/p < 0 slower

Focussing effect in the longitudinal directionkeeping the particles close together ... forming a “bunch”

f s f rev h s

2* qU0 coss

E s≈ some Hzoscillation frequency:

Page 43: Bernhard Holzer,  CERN-LHC

... so sorry, here we need help from Albert:

0 500 1000 1500 2000 2500 3000 3500 4000 4500 50000

0.1

0.2

0.3

0.4

0.5

0.6

0.7

0.8

0.9

1

kinetic energy of a proton

v/c

E total

mc 2 1

1 v 2

c 2

vc

1mc 2

E 2

... some when the particles do not get faster anymore

.... but heavier !

Page 44: Bernhard Holzer,  CERN-LHC

15.) The Acceleration for Δp/p≠0“Phase Focusing” above transition

ideal particle particle with Δp/p > 0 heavier particle with Δp/p < 0 lighter

Focussing effect in the longitudinal directionkeeping the particles close together ... forming a “bunch”

... and how do we accelerate now ???with the dipole magnets !

Page 45: Bernhard Holzer,  CERN-LHC

S34 S45

B2

B1194 mm420 mm

ADT Q5 Q6 Q7ACSACS

ACSACS

4xFour-cavity cryo module 400 MHz, 16 MV/beamNb on Cu cavities @4.5 K (=LEP2)Beam pipe diam.=300mm

D3 D4

The RF system: IR4

Bunch length (4) ns 1.06Energy spread (2) 10-3 0.22Synchr. rad. loss/turn

Synchr. rad. power

keV

kW

7

3.6

RF frequency MHz

400

Harmonic number 35640RF voltage/beam MV 16Energy gain/turn keV 485

Synchrotron frequency

Hz 23.0

Page 46: Bernhard Holzer,  CERN-LHC

~ 200 turns

LHC Commissioning: RF

RF off Bunch length ~ 1.5 ns ~ 45 cm

RF on, phase adjusted, beam captured

RF on, phase optimisation

Z X Y( )

a proton bunch: focused longitudinal by the RF field

Page 47: Bernhard Holzer,  CERN-LHC

Problem: panta rhei !!!(Heraklit: 540-480 v. Chr.)

Z X Y( )

Bunch length of Electrons ≈ 1cmjust a stupid (and nearly wrong) example)

U0

t

cMHz500

cm60

cm60

994.0)84sin(

1)90sin(

o

o3100.6

UU

typical momentum spread of an electron bunch: 3100.1

pp

Page 48: Bernhard Holzer,  CERN-LHC

17.) Dispersion and Chromaticity: Magnet Errors for Δp/p ≠ 0

Influence of external fields on the beam: prop. to magn. field & prop. zu 1/p

dipole magnet

focusing lensgk pe

particle having ... to high energy to low energy ideal energy

ep

dlB

/

ppsDsxD

)()(

Page 49: Bernhard Holzer,  CERN-LHC

. ρ

Closed orbit for Δp/p > 0

( ) ( )ipx s D sp

Matrix formalism:

( ) ( ) ( ) px s x s D sp

0 0( ) ( ) ( ) ( ) px s C s x S s x D sp

DispersionExample: homogeneous dipole field

00

D

Dpp

xx

SCSC

xx

s

Page 50: Bernhard Holzer,  CERN-LHC

00 0 1p p

p ps

x C S D xx C S D x

Example

3

1...2

( ) 1...2

1 10

x mm

D s mp

p

Amplitude of Orbit oscillation contribution due to Dispersion ≈ beam size

Dispersion must vanish at the collision point

Calculate D, D´: ... takes a couple of sunny Sunday evenings !

or expressed as 3x3 matrix

D

!

Page 51: Bernhard Holzer,  CERN-LHC

V.) Are there Any Problems ???

sure there are

Some Golden Rules to Avoid Trouble

Page 52: Bernhard Holzer,  CERN-LHC

xco(s) (s) * 1

s1

s1 *cos(s1 s Q) ds2sinQ

Assume: Tune = integer

Q 1 0

Integer tunes lead to a resonant increase of the closed orbit amplitude in presence of the smallest dipole field error.

Qualitatively spoken:

I.) Golden Rule number one: do not focus the beam !

Problem: Resonances

Page 53: Bernhard Holzer,  CERN-LHC

Tune and Resonances

m*Qx+n*Qy+l*Qs = integer

Qx =1.0 Qx =1.3

Qy =1.0

Qy =1.3

Qx =1.5

Qy =1.5

Tune diagram up to 3rd order

… and up to 7th order

Homework for the operateurs: find a nice place for the tune where against all probability the beam will survive

Page 54: Bernhard Holzer,  CERN-LHC

II.) Golden Rule number two: Never accelerate charged particles !

0K(s)xx 0(s))xK(K(s)x SC

Transport line with quadrupoles Transport line with quadrupoles and space charge

0xcγβea

I2rK(s)x 332

0

KSC

Fdef

Page 55: Bernhard Holzer,  CERN-LHC

Golden Rule number two: Never accelerate charged particles !

0 500 1000 1500 2000 2500 3000 3500 4000 4500 50000

0.1

0.2

0.3

0.4

0.5

0.6

0.7

0.8

0.9

1

Ekin of a proton

v/c

... at low speed the particles repel each other

Problem at low energies

Linac 2 Ekin=60 MeV Linac 4 Ekin=150 MeV

Qx,y r0 N

2x,y2Tune Shift due to Space Charge Effect

Page 56: Bernhard Holzer,  CERN-LHC

Courtesy W. Herr

Qx x

* * rp * N p

2 p ( x y )* x

the colliding bunches influence each other change the focusing properties of the ring !!

Qx

Qx

and again the resonances !!!

most simple case: linear beam beam tune shift

III.) Golden Rule number three:

Never Collide the Beams !

25 ns

Page 57: Bernhard Holzer,  CERN-LHC

IV.) Golden Rule Number four: Never use Magnets

magl

eff BdslB0

*

“effective magnetic length”

Page 58: Bernhard Holzer,  CERN-LHC

Again: the phase space ellipse for each turn write down – at a given

position „s“ in the ring – the single partilce amplitude x and the angle x´... and plot it.

01

*s

turns x

xM

xx

Clearly there is another problem ...... if it were easy everybody could do it

A beam of 4 particles – each having a slightly different emittance:

Page 59: Bernhard Holzer,  CERN-LHC

Installation of a weak ( !!! ) sextupole magnet

The good news: sextupole fields in accelerators cannot be treated analytically anymore. no equatiuons; instead: Computer simulation„ particle tracking “

Page 60: Bernhard Holzer,  CERN-LHC

Catastrophy !

Effect of a strong ( !!! ) Sextupole …

„dynamic aperture“

Page 61: Bernhard Holzer,  CERN-LHC

Golden Rule XXL: COURAGE

and with a lot of effort from Bachelor / Master / Diploma / PhD and Summer-Students the machine is running !!!

thank’x for your help and have a lot of fun