Vacuum vessel

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Vacuum Vessel Port Layout

Vacuum Vessel Layout - Side Only.png

Vacuum Vessel Layout - Top Only2.pngVessel top dimensions.png

[1]

Section
Location/Port
Diagnostic(s)
Gate Valve
/ View
PA
Midplane 6" CF

Interferometry

GV / Plasma
4x Upper/Lower 2.75" CF

Poloidal visible spectroscopy

GV / Plasma
Upper Left 2.75" CF

Vessel Filament

GV / Plasma
Lower Left 2.75" CF
Empty
GV / Plasma
Upper/Lower angled 3.38" CF
Empty
GV / Plasma
Upper/Lower Center 1.5" CF

Re-entrant Mirnov probes

Bare / Plasma
Top Rectangular

Re-entrant Mirnov probes

Bare / Plasma
Bottom Rectangular

Re-entrant Mirnov probes

Bare / Plasma
AB
Midplane

Neutral Beam / Thomson scattering laser exit

GV / Plasma
Bottom 2.75" CF
Center Stack RTDs (1-4)
Bare? / Plasma
Top 2.75" CF
Center Stack RTDs (5-8)
Bare? / Plasma
BC
Upper 6" CF

Roots Blower

GV / Shell
Midplane 6" CF

Phantom Camera

GV / Plasma
Lower 6" CF
Blank -> ?Getter Thermocouples?
Bare / Shell
Bottom 4.62" CF
Shell Penetration
Bare? / Plasma
Top 4.62" CF
Shell Penetration
GV / Plasma
Left Mini CF
Beam-scraper RTDs
GV / Plasma
CD
Upper 6" CF

Upper shell flux loops

Bare / Shell
Midplane 8" CF

ChERS hydra port

GV / Plasma
Lower 6" CF, Left 2.75"

Lower shell flux loops

Bare / Shell
Lower 6" CF, Right 2.75", End

Lower shell flux loops

Bare / Shell
Lower 6" CF, Right 2.75", Tee

Toroidal array north-side sensors (#s 1-5)

Bare / Shell
DE
Upper 6" CF

Upper re-entrant shell thermocouple

Bare / Shell
Midplane 8" CF

Li filler / mirror

GV / Plasma
Lower 6" CF

Lower re-entrant shell thermocouple

Bare / Shell
Top Rectangular

Lower South Shell Heater Feedthroughs

Bare / Shell
Bottom Rectangular

Upper South Shell Heater Feedthroughs

Bare / Shell
EF
Upper 6" CF

Overpressure burst disk

Bare / Shell
Midplane 8" CF

Reflectometry

GV / Plasma
Lower 6" CF
Empty
Bare / Shell
FG
Upper 6" CF
Empty
Bare / Shell
Midplane 8" CF

Resitive Bolometer

GV / Plasma
Lower 6" CF

South RGA

GV / Shell
Bottom 4.62" CF
Shell Penetration
Bare? / Plasma
Top 4.62" CF

South E-beam / Li Granule Dropper?

GV / Plasma
GH
Upper 6" CF

Vessel Ion Gauge / Fast Ion Gauge

GV / Shell
Midplane Tangential 6" CF

Phantom Camera / Midplane Li Evaporator

GV / Plasma
Lower 6" CF
Rogowski coil
Bare / Shell
HI
Upper downward CF

Edge Thomson scattering views

GV / Plasma
Midplane 4.62" CF

Thomson scattering laser entrance

GV / Plasma
Lower angled 6" CF

ECH horn

GV / Plasma
Lower downward CF

Filterscope? Lyman-alpha diode?

GV / Plasma
Top Rectangular
HFS puffer valve/feedthrough,Thomson views
GV / Plasma
Bottom Rectangular
Thomson viewing dump
Bare / Plasma
IJ
Upper 6" CF

Upper shell flux loop sheath grounds

Bare / Shell
Midplane 6" CF
AXUV Bolometer/Lyman-alpha arrays
GV / Plasma
Lower 6" CF

Lower shell flux loop sheath grounds

Bare / Shell
JK
Rectangular
Pump duct / Beam Dump
Bare / Plasma
Bottom 4.62" CF
Shell Penetration
Bare? / Plasma
Top 4.62" CF
Shell Penetration
GV / Plasma
KL
Midplane, Left 2.75" CF
Beam Dump
Bare? / Plasma
Midplane, Center 2.75" CF
LFS puffer valve/feedthrough?
Bare / Plasma
Midplane, Right 2.75" CF
LOWEUS?
GV / Plasma
Upper, Top 3.38" CF
Empty
Bare / Shell
Upper, Middle 3.38" CF
Empty? Bdot feedthrough?
Bare / Shell
Upper, Bottom 3.38" CF
Empty
Bare / Shell
Lower, Top 3.38" CF
Empty? Bdot feedthrough?
Bare / Shell
Lower, Middle 3.38" CF
Empty
Bare / Shell
Lower, Bottom 3.38" CF
Empty
Bare / Shell
LM
Upper/Lower 8" CF

Top+bottom internal vertical field coils

Bare / Shell
Midplane 6" CF
Li filler / mirror
GV / Plasma
Top Rectangular
Lower North Shell Heater Feedthroughs
Bare / Shell
Bottom Rectangular
Upper North Shell Heater Feedthroughs
Bare / Shell
MN
Midplane, Left 2.75" CF

Blocked by diamagnetic loop North RGA?

GV / Plasma*
Midplane, Center 2.75" CF
Filterscope?
GV / Plasma
Midplane, Right 2.75" CF
Langmuir probe?
GV / Plasma
Upper, Top 3.38" CF (2.75" reducer)

Shell eddy sensors

Bare / Shell
Upper, Middle 3.38" CF
Empty
Bare / Shell
Upper, Bottom 3.38" CF
Diamagnetic loop feedthroughs, empty feedthroughs?
Bare / Shell
Lower, Top 3.38" CF
Empty
Bare / Shell
Lower, Middle 3.38" CF
Empty
Bare / Shell
Lower, Bottom 3.38" CF
Empty
Bare / Shell
NO
Upper Downward CF
Filterscope?
GV / Plasma
Midplane 6" CF
Sample exposure probe?
GV / Plasma
Bottom 4.62" CF
Shell Penetration
Bare? / Plasma
Top 4.62" CF
North E-beam
GV / Plasma
OP
Upper 6" CF (2.75" reducer)

Upper saddle coils

Bare / Shell
Midplane Tangential 6" CF
Midplane Li evaporator
GV / Plasma
Lower 6" CF, Right 2.75"

Lower saddle coils

Bare / Shell
Lower 6" CF, Left 2.75"

Toroidal array north-side sensors (#s 6-10)

Bare / Shell


Unassigned feedthroughs:

  1. Beam-dump RTDs
  2. HFS Langmuir Probes

Vacuum Vessel Construction

The LTX vacuum vessel, legacy hardware from CDX-U, is a 70 cm 304-stainless steel cylindrical shell with end caps on the top and bottom and a sealed center-stack. Each top and bottom plate has four rectangular ports (two at the east and west shell breaks, and two and the center of the north and south shell pairs), as well as four circular ports aligned with the circular shell penetrations.

"The vacuum chamber wall was formed by rolling a 3/8" thick sheet into a 56" outer-diameter cylinder and welding the sheet together at the vertical joint where the two ends of the sheet meet each other. Large diameter rings to mate between the cylindrical chamber wall and the top and bottom vacuum chamber plates (from the previous version of CDX-U ) were cut from 1.5" thick 304 stainless-steel sheet with a plasma torch. One side of each ring was faced-off with a large milling machine and the newly flattened side of one of the rings was welded to the top of the rolled cylinder. The opposite side of the newly attached ring was then faced off. and the process was repeated for the other ring. The final inner and outer-diameter cuts were then made on the rings. With the rings firmly welded onto the main vessel cylinder, the vessel structure had enough rigidity to begin cut ting port holes and welding the rectangular and circular ports onto the main cylindrical chamber." Menard, J. E. (1998). High-harmonic fast wave coupling and heating experiments in the CDX-U spherical tokamak. Princeton University. Princeton University. Retrieved from [2]

Vacuum Vessel The LTX vacuum vessel was originally designed for and installed on CDX-U in 1996 [94]. The vessel consists of a cylindrical outer wall (the “tub”), top and bottom flanges, and inboard flanges that seal the vacuum vessel to the centerstack. The outer vessel wall was constructed from rolled, 3/8” thick stainless steel with an inner radius of 0.702 m. This “tub” is organized into 16 segments and contains numerous ports for diagnostic access and electrical feedthroughs for in-vessel diagnostics (Figures 3.4 and 3.5. The top and bottom flanges are also constructed from stainless steel and are sealed to the “tub” with O-ring seals. The centerstack itself is housed in an Inconel 625 tube (6.875” outer diameter, 42” height, 1/16” wall thickness) and contains the Ohmic winding and return legs for the toroidal field coils [95]. For LTX, the outboard upper and lower rings on the vacuum vessel “tub”, which contain the O-ring sealing surfaces for the top and bottom flanges, were machined thinner to permit installation of the shell inside the vacuum vessel. Gussets were added to the top and bottom flanges for mechanical support to prevent flexing during vessel pump down. The outer centerstack surface (which is inside the vacuum vessel) is protected by a heat shield constructed from a layer of 0.03” thick pre-baked mica mat and 1/16” thick stainless steel shim. The heat shield was fabricated in three curved segments that are single point attached to the centerstack mounting gussets; single point attachment prevents the formation of a toroidal current path in the heat shield. To further protect the vessel against high- temperatures, the O-rings inside the Wilson seals used for re-entrant LTX hardware were replaced with Kalrez O-rings which are chemically resistant and suitable for use in high temperature (up to 327 ◦C) environments. Berzak, L. F. (2010). Plasma Start-up in a Spherical Tokamak with Close-fitting Conducting Walls. Princeton University. Princeton University. Retrieved from [3]

Vessel cylinder outer radius
71.1 cm
Vessel cylinder inner radius
70.2 cm
Vessel cylinder height
89.9 cm
Vessel volume
1.37 m3
Center column outer radius
9.4 cm
Center column limiter outer radius
11. cm