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Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

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Page 1: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Optics and magnetic field calculation for the Hall D Tagger

Guangliang YangGlasgow University

Page 2: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

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-5 -3 -1 1 3 5

X (m)

Y (

m)

Main beam energy: 12 GeV.Bending angle: 13.4 degrees.Object distance: 3 m.Total focal plane length: 10.3 m.

Two identical dipole magnets:Magnet length : 3.11 m.Field: 1.5 T.

Focal plane(red: without quadrupole, Blue: with a quadrupole.)Lower part from 1-4.3 GeV electron energy.Length ~4m.

Upper part from 4.3-9 GeV electron energy.Length: ~6 m.

Edge angles:At first magnet, entrance edge: 5.9 degrees.At second magnet, exit edge ~ 6.6 degrees.

Quadrupole magnet:Length 0.5m.Field gradient: -0.47 KGs/cm.

Red – without quad.

Blue – with quad.

12 GeV Tagger Design - 2 identical magnets.

Transport result

Page 3: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

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Electron enregy (GeV)

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without quadruplewith quadrupole

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Electron energy (GeV)

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Dispersion Resolution

Two identical magnets tagger with and without quadrupole (Transport calculation).

Page 4: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

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Electron Energy (GeV)

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Electron Energy (GeV)

without quadrupolewith quadrupole

Beta Vertical height

Two identical magnets tagger with and without quadrupole (Transport calculation).

Beta is the angle between an outgoing electron trajectory and the focal plane.

Page 5: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Magnetic field calculated by using Opera 3D, version 10.025.

Mesh used by Tosca for magnetic field calculation .

Page 6: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

2 D magnetic field histogram calculated by TOSCA.

Magnetic field along a line perpendicular to the magnet output edge.

TOSCA Magnetic Field Calculation.

Page 7: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Magnetic field along electron beam trajectory (1GeV).

Page 8: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Magnetic field along electron beam trajectory (8 GeV).

Page 9: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Magnetic field along electron beam trajectories between 3.9 and 5.0 GeV.

Page 10: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Electron beam trajectories – using 81 trajectory ray bundles.

Page 11: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Electron beam trajectories - central ray only.

Page 12: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Calculated electron trajectories (81 per ray bundle).

Beam trajectories calculated from TOSCA in the mid plane for 3 GeV and 8 GeV. Those trajectories having the same direction focus on position 1, and those trajectories having the same starting position focus on position 2. ( Electrons travelling in the direction shown by the top arrow ).

Electron trajectory bundles according to their directions at the object position.

(3 GeV) (8 GeV)

1 21

2

Page 13: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

ObjectImage

Sketch showing the two focusing positions

Position 1

Position 2

Lens

Page 14: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Beam trajectories calculated by TOSCA in a vertical plane for 3 GeV electron beam.

Exit edge

Exit edge

Focal plane

Focal plane

Without quadrupole With quadrupole

Page 15: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

The intersections of the beam trajectories with the plane through the focusing point and perpendicular to the beam , the red line shows the beam spot profile .

TOSCA calculation of the beam spot profile at the focal plane.

Page 16: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

• Electron trajectories have been calculated using Opera 3 D post processor.

• By using the calculated electron trajectories, beam spot size, and focal plane position have been determined.

Comparison of focal planes calculated using Transport and Tosca – results are almost identical.

Tosca.

Page 17: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Comparison of optical properties calculated using Transport and Tosca.

Resolution. Half vertical height.

Page 18: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Detector positions

Red line indicates the focal plane position calculated by using Transport. (From 1 GeV to 9 GeV)

Main beam

Magnet 1Magnet 1

Photon beam

Straight thin window flange

Page 19: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Comparison of optical properties along the Point to Point and the Straight line focal planes (without quadrupole).

Resolution. Half vertical height.

Page 20: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Comparison of optical properties along the Point to Point and the Straight line focal planes (with quadrupole).

Resolution. Half vertical height.

Page 21: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Part 5. Effects of positioning error. • The effects of positioning error on the Tagger optics are simulated by

using Opera 3 D. In these calculations, the second magnet is intentionally put in a wrong position.

• various positioning errors have been investigated:

1. the second magnet is moved up or down 2 mm along a straight line parallel to the first magnet long exit edge.

2. the second magnet is moved right or left 2 mm along a straight line perpendicular to the first magnet long exit edge.

3. the second magnet is rotate around the bottom right corner of the second magnet at a angle of 0.1 degree or -0.1degree.

• It has been found that the Tagger optical properties are insensitive to the positioning error.

Page 22: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Effects of the second magnet positioning error on the tagger optical properties.

Page 23: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Effects of the second magnet positioning error on the tagger optical properties.

Page 24: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Effects of the second magnet positioning error on the tagger optical properties.

Dispersion along the straight line focal plane (cacualted by using Tosca)

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Electron energy (GeV)

Dis

pers

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(mm

/%E

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L -2mm

L +2mm

R -0.1 degree

R +0.1degree

T -2mm

T +2mm

Page 25: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Effects of the second magnet positioning error on the tagger optical properties.

Energy calibration error( relative to the properly positioned Tagger)

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Electron enrgy (GeV)

Err

or %

E0

L -2mm

L +2mm

R -0.1 degree

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T -2mm

T +2mm

Page 26: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Electron beam trajectories – using 81 trajectory ray bundles.

Electron trajectories from 4.1 to 4.8 GeV (Red line shows the straight line focal plane position.)

(T +2mm)

Page 27: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Z-component of stray field at focal plane position.

Page 28: Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University

Component of stray field normal to z-direction at focal plane position.