Introduction to CTF3. G.Geschonke CERN / PS

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Transcription:

Introduction to CTF3 G.Geschonke CERN / PS

Aim of review: Review the technical solutions are they realistic? Give us technical advice Comment on alternatives Guide our funding bodies: CERN Collaborations CTF3 is only possible as International collaboration INFN Frascati LAL Orsay Rutherford Appleton Laboratory SLAC Strathclyde University Uppsala University

CTF3 is not a user facility Experimental machine : Demonstration of the RF power generation scheme for CLIC Novel drive beam scheme in the two-beam scenario This two-beam scheme is not limited to CLIC long RF pulse at low frequency ==> short RF pulse at high frequency with high power using an electron beam for energy storage high efficiency Demonstration of major CLIC Components RF power source at 30 GHz with nominal CLIC parameters Make use of already existing material: LPI complex available since LEP shut-down: LEP injector Linac LIL and Electron-Positron Accumulator EPA Building : Linac tunnel, space for rings, control room Hardware: RF system: klystrons, modulators, accelerating sections magnets, power supplies, control system ==> some technical choices are a consequence of existing equipment

CLIC - CTF3 C L I C 'ULYH %HDP 7LPH 6WUXFWXUH &XUUHQW PV W UDLQ OHQJWK u VXESXOVHV $ *H9 FP EHWZHHQ EXQFKHV u PV WUDLQ OHQJWK u SXOVHV $ P V u u u SXOVHV $ P V SXOVHV $ FP EHWZHHQ EXQFKHV 5 &RU VLQL &7) 0HHWLQJ CTF3 CLIC (3 TeV) Drive beam Acceleration frequency MHz 2 998.55 937 repetition rate Hz 5 100 energy MeV 150 1180 Number of accelerating structures 16 + 2 182 average current after linac A 3.5 7.5 Number of klystrons 10 182 x 2 Number of RF pulse compressors 9 0 Beam pulse length Ps 1.4 92 Bunch spacing before compression cm 20 64 Delay Loop length m 42 39 Combiner Ring length m 84 78 Average beam current after A 35 240 compression Bunch spacing after compression cm 2 2 Drive beam energy per pulse kj 0.8 814 average beam power kw 4.1 81 000 Main beam Number of accelerating structures max 8 22 x 976 RF Pulse length ns 140 130 Acceleration Frequency GHz 30 30 Acceleration Gradient MV/m 150 150

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Bunch frequency multiplication - Combiner Ring injection 1 st turn injection line septum 2 nd turn 1 st deflector 2 nd deflector local inner orbits transverse deflector field O o = 20 cm 3 rd turn 5 th turn O o /5 (2 cm) SXOVH OHQJWK SXOVH JDS FP EHWZHHQ EXQFKHV FP EHWZHHQ EXQFKHV WUDL µv WUDLQ OHQJWK $ SHDN FXUUHQW WUDLQ $ SHDN FXUUHQW

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Main objectives and challenges Drive beam production: 3.5 A, Estimation: Stability of Voltage and beam current of 10-3! satellite bunches bunch phase coding Thermionic injector wide bw 1.5 GHz klystron Alternative: Laser gun Drive beam accelerator: Near 100% beam loading high beam current in short bunches beam stability strong damping of HOM, new RF structures Delay loop, Combiner ring, bunch compressor injection with RF deflector isochronous lattice Impedance coherent synchrotron radiation bunch length manipulation handling of 35 A beam current RF: pulse compression, long flat-top longer RF pulse, phase ramping New BOC development

Drive beam accelerating structure High beam current => Beam induced modes have to be damped Prototype of TDS structure built, RF power tested New structure type has been developed : (SICA = Slotted Iris Constant Aperture) TDS (Tapered Damped Structure) wake fields along structure with and without damping (SICA) WUDYHUVH ZDNH IRU FHOOV RIIVHW PP V PP SI: A+3,10,4, B-5,CELL-6,15 A: 1.700E+01 MM, B: 3.703E+01 MM. FOR REF., E.J., JUNE 2000 X COMPONENT OF WAKE POTENTIAL IN V [INDIRECT CALC.] VW GLVF *+] 6,&$ VWUXFWXUH 7UDYHUVH ZDNH VXSSUHVVLRQ : >9S&@ W 6L& ZHGJHV 4. 00 E 2. 00 0. 000E+00 &RXSOHU FHOO ZDYHJXLGH SRUWV WRWDO OHQJWK P S E -2.00-4.00 GLPSOH WXQLQJ KROHV 0. 000E+00 0. 500 1. 00 1. 50 2. 00 2. 50 V>P@

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RF power plant and 1.5 GHz Diode Gun Modulator MG 00 40 MW 03 40 MW 97 33 MW 98 33 MW 13 33 MW 15 33 MW 25 33 MW 27 33 MW 29 33 MW 31 40 MW 33 5 MeV 15 MeV 16MeV 16 MeV 16 MeV 16 MeV 16 MeV 16 MeV 16 MeV 16 MeV Splitter Splitter Splitter Splitter Splitter Splitter Splitter Splitter Splitter Splitter SHB Splitter G 01 PB1 PB2 B1 S1 S2 1.5GHz 0.5MW BW 150MHz 35 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10 A11 A12 A13 A14 A15 A16 Test & Probe beam RF 30 MW RF DEFL septum Splitter Attenuator - Phase shifter RF DEFL Attenuator 10MW FROM DBA Beam Energy ~150 MeV RF DEFL X 2 RING 02 1.5GHz 20 MW 1.6 us X 5 RING DBA energy is 150 MeV, 2.33 nc per bunch (3.5A), 2000 bunches, and 1.4us pulses driving 1.22m long structures. RF peak power at each DBA structure input ~30 MW. The LIPS/BOC gain ~ 2.0. Average waveguide length is 20m giving about a 10% loss from LIPS output to the input of the accelerating sections.

Major building modifications Radiation shielding Beam power 5 kw! shielding assumes : permanent beam loss of only 5% (250 W) beam loss monitors in interlock chain shut-off beam additional shielding required: some outside walls between accelerator tunnel and klystron gallery above up to 20 cm of iron above EPA: additional 90 cm concrete Other building modifications: make room for DL new CLEX building

Construction in phases Preliminary phase 2001 : / 2002 LPI + modified EPA new e-gun only 8 accelerating sections EPA ring 17 mm shorter transfer lines and EPA isochronous Initial phase: New injector, demonstrate bunch recombination by factor 3-5 using 2 RF deflectors limited beam current

Initial phase 2003 / 2004 Injector DBA CR 30 GHz test station new injector (no Sub-harmonic bunchers...) new accelerating structures for DBA 30 GHz test station after linac transfer lines combiner ring combination tests can be done at reduced bunch charge

Collaborations LAL: gun, HV deck pre-bunchers CLIO-type gun for prel. phases already delivered SLAC: triode assembly Injector optics and layout INFN Frascati: transfer lines, bunch lengthening chicane Delay Loop layout and hardware Combiner Ring layout and hardware RF deflectors Fast kickers Participate in commissioning and exploitation RAL and Strathclyde University: Laser for Photo-Injector option Uppsala University: mm wave detector for beam diagnostics participation in commissioning