: Background in the kaon
 : High resolution Kaon Spectrometer
 : HKS acceptance
     目次 
Momentum and angular resolution
The position of the first chamber and distance between two chambers
are determined by optimizing two factors: angular resolution due to
the drift chamber position resolution and the multiple scattering. As a result,
the two chambers are placed at 50 cm upstream and 50 cm downstream from
the first order focal plane (235 cm downstream from the dipole exit).
Table 8 shows the materials assumed in the simulation.
>From the target to the exit of the dipole vacuum chamber (just before the first chamber) 
is vacuum.
The simulation was performed in following procedures:
- A GEANT simulation was performed with idealistic wire chambers (resolution = 0)
without any multiple scattering effects. 
 
- In order to construct the function which associates the kaon momentum 
and chamber hit positions, the generated events were fitting with a 
code based on the principal component analysis (ERIKA).
 
- The GEANT simulation was carried out with finite wire chamber resolution 
and/or with multiple scattering effects. The chamber hit positions were associated with 
the particle's momentum by the functions obtained from the fitting of the idealistic events.
Using the obtained momentum and the known initial momentum, since the generator code produced,
were compared to estimate the resolution affected by the simulated effects.
 
Figures 12 and 13 show respectively 
the wire chamber resolution (per plane) 
dependences of the HKS momentum resolution and angular resolution
obtained by the simulation. A finite resolution is obtained even 
for idealistic chambers without multiple scattering events, because 
the principal component analysis takes only finite number of terms.
The result is summarized in table 9.
表 8:
List of materials and their properties used in the simulation
| Item | 
  | 
  | 
  | 
thickness (/radiation length) | 
|   | 
(cm) | 
(g/cm ) | 
(g/cm ) | 
  | 
| Dipole Exit Window | 
  | 
  | 
  | 
  | 
Kevlar(C N O H ) | 
0.02 | 
0.74 | 
55.2 | 
2.68
  | 
Mylar(C O H ) | 
0.01+0.0025 | 
1.39 | 
39.95 | 
4.35
  | 
| HDC1 | 
  | 
  | 
  | 
  | 
| Mylar | 
0.012 | 
1.39 | 
39.95 | 
4.18
  | 
| Ar gas | 
5.08 | 
1.78
  | 
19.55 | 
4.63
  | 
| HDC1-HDC2 gap | 
  | 
  | 
  | 
  | 
| He gas | 
100 | 
1.79
  | 
94.32 | 
1.68
  | 
| HDC2 | 
  | 
  | 
  | 
  | 
| Mylar | 
0.012 | 
1.39 | 
39.95 | 
4.18
  | 
| Ar gas | 
5.08 | 
1.78
  | 
19.55 | 
4.63
  | 
 
 
表 9:
Momentum and Angular resolution
| Materials | 
Chamber resolution | 
  | 
  | 
  | 
|   | 
( m/plane) | 
(keV/ ) | 
(mr) | 
(mr) | 
| None | 
0 | 
51 | 
0.04 | 
0.2 | 
| He bag only | 
  | 
52 | 
0.05 | 
0.4 | 
| DC Ar only | 
  | 
68 | 
0.11 | 
1.1 | 
| DC window only | 
0 | 
65 | 
0.11 | 
1.0 | 
| Dipole window only | 
  | 
82 | 
0.15 | 
1.7 | 
| Full | 
  | 
97 | 
0.23 | 
2.4 | 
| Full | 
200 | 
112 | 
0.28 | 
2.9 | 
 
 
The simulation shows a momentum resolution of 
2
 FWHM (
 = 110 keV/
) and 
an angular resolution of 0.3 mr (horizontal) and 3 mr (vertical)
 for the chamber position resolution of 200 
m (rms) per plane.
 
 
 
  
 : Background in the kaon
 : High resolution Kaon Spectrometer
 : HKS acceptance
     目次 
Satoshi N. Nakamura
平成16年12月1日