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Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

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Page 1: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Study of the Luminosity of LHeC,a Lepton Proton Collider in the

LHC Tunnel

CERN June 14 2006F. Willeke, DESY

Page 2: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

LHeC Design Goals

Luminosity L = 1 ∙1033 cm-

2s-1

Energy Ecm = 1.4 TeV

These input parameters are subject to be altered by further iterations

But this study assumes these parameters to be fixed

Page 3: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Design Asumptionsbased on LHC Proton beam parameters

Energy Ep = 7 TeVParticles per Bunch Np = 1.68 1011

Emittance Np = 3.75 radm Bunch spacing b = 25 nsBunch Length p = 7.55 cm

Ee = 70 GeV

Circumference = 26658.883 m

Page 4: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Luminosity

yeyeypypxexexpxp

brevep nfNNL

2 yeyeypypxexexpxp

brevep nfNNL

2

ypxpNp

ppe

e

NIL

2 ypxpNp

ppe

e

NIL

2

Matched beam cross sections at IP xp = xe, yp = ye

Lepton Beam-beam tune shift limit to be avoided

With the proton beam brightness given by LHC, Npp / Np=3.2·1020m-1

m

AI

ypxp

e 063.0 m

AI

ypxp

e 063.0

Page 5: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Lepton Beam Current Assumptions: Limited by RF Power only

depends on Bending radius

= 80% ∙ (CLHC-8∙Lstraigth) / 2 = 2886 m

eUloss= CgEe4 / (eMeV

CERN Power Consumption

If 50 MW beam power considered as a limit Ie = 68mA Ne=1.3 1010

5000 h/y x 50MW x 10 = 250 GWh/y

Page 6: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

mypxp 1 mypxp 1

Design Task: e-Ring and IR Design which provides

• sufficient dynamic aperture

•With matched beams,

• Small crossing angle <xe/p

• Small hour glass effect ye ≥ p

• tolerable synchrotron radiation background

• feasible components

Page 7: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

e-Ring Lattice Parameters bend radius & circumference fixed by LHC effective FODO structure

chosen (no alternative) the only choice to be made id the FODO cell length or the number of cell length of the arc

This determines the lepton beam emittance and the dynamic aperture

Constraints under the assumption of matched beam sizes at the IP:

Small emittance large * strong beam-beam effect no stabilitylarge emittance small * strong hourglass effect effect less lumiLong cells large emittance reduced dynamic aperture no stabilityShort cellsmall emittance, high cost

Page 8: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Dynamic Aperture ScalingTaken from HERA: 0.2

for FODO cell structure, N number of FODO Cells

Arc chromaticity IR chromaticity for matched beams

This assumes a

Plain FODO

structure

This assumes a

Plain FODO

structure

Page 9: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Choosing Lepton Ring Lattice Parameters

Page 10: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Main Parameters of LeHC

Page 11: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

e Lattice8 Octants with 500m Straight section each376 FODO cells, Cell length 60.3 mDipole length 2 x 12.52 m B= 810 GaussQuadrupole length 1.5 m (G = 8 T/m)

bend bend bend bend

54m

12.52m

xe = 8 nmfodo = 72 degree

Page 12: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY
Page 13: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Tunnel Cross Section

Page 14: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Bypass around Atlas and CMS

Page 15: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Which IR?

Page 16: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

IR Layout

Page 17: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY
Page 18: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

IR Parameters

xp = xe, yp = ye

xp = 0.5 nm xe = 7.6 nm

Need to match “flat” e beam with “round” p beam

xp/yp ≈ 4

xp = 1.8 m

yp = 0.5 m

xe = 12.7 cm

ye = 7.1 cm

IR optics with low-beta tripletts for both e and p beams

Page 19: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

IR Layout

IR free space: 1.25m x 2

Acceptance angle 10 degree

Crossing angle 2mr

IR free space: 1.25m x 2

Acceptance angle 10 degree

Crossing angle 2mr

Page 20: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Beam Separatione-low-beta

triplets

Vertically focussing Quadrupole

magnet for pOther

P beam

Crossing angle 2mr

Magnetic separation 2mr

60 mm separation @20m

Page 21: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Crab Crossing

p e

c=(0.5-3)mr

“Crabbed Trajectories

IP Transverse RF resonators Crab Cavities

c/2

degree

Crossing angle will enhance effective beam size 2 = +2s2

p e

IPCrab

cavity

Page 22: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY
Page 23: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Synchrotron Radiation ir = 10000 m

Page 24: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

SR Power Density on Absorber

Page 25: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY
Page 26: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Beam-Beam Effect Central crossing beam-beam parameters well within the HERA range

Page 27: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Parasitic Crossings

Page 28: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Luminosity vs Bunch Spacing

L independent of bunch spacing As long as Ie total can be maintainedAt very large bunch spacings limitations by Proton beam-beam effectSingle bunch instabilities of e-beam

up to 75ns bunch spacing far from becoming a problem

Page 29: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Quadrupole Magnets

Page 30: Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June 14 2006 F. Willeke, DESY

Conclusions A first look at a possible lepton proton collider in the LHC

tunnel with a luminosity of 1033cm-2s-1 appears to be technical possible

Simultaneous operation of pp and ep should be possible

(however with reduced pp luminosity)

More work is needed to determine the most optimum parameters, the optimum technical choices and the cost of such a facility

A workshop to discuss this exciting option together with experimental physicists and accelerator scientists is envisioned

Further activities on the layout of the accelerator should be coordinated with and integrated into the discussions on LHC upgrades