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Borers horizontal Table - diameter of spindle over 90 mm

Name of a product Inventory number Producer YOM Parameters  
W 100 A

W 100 A

241676 TOS Varnsdorf 1991 Diameter of working spindle: 100 mm
Travel X-axis: 1600 mm
Travel Y-axis: 1120 mm
Spindle speed: 0 - 1200 /min.
Cooling through spindle: NO
Spindle travel - W axis: 900 mm
W 100 A

W 100 A

251737 TOS Varnsdorf 1995 Diameter of working spindle: 100 mm
Travel X-axis: 1600 mm
Travel Y-axis: 1120 mm
Spindle speed: 0 - 1120 /min.
Cooling through spindle: NO
Spindle travel - W axis: 900 mm
W 100 A

W 100 A

191457 TOS Varnsdorf Diameter of working spindle: 100 mm
Travel X-axis: 1600 mm
Travel Y-axis: 1120 mm
Spindle speed: 7 - 1120 /min.
Cooling through spindle: NO
Spindle travel - W axis: 900 mm
W 100 A

W 100 A

251853 TOS Varnsdorf 2004 Diameter of working spindle: 100 mm
Travel X-axis: 1600 mm
Travel Y-axis: 1120 mm
Spindle speed: 0 - 1120 /min.
Cooling through spindle: NO
Spindle travel - W axis: 900 mm
40T

40T

182013 Lucas 2018 Control system Fanuc: 0i-MF
Diameter of working spindle: 130 mm
Travel X-axis: 3657 mm
Travel Y-axis: 3048 mm
Spindle speed: 10 - 3000 /min.
Cooling through spindle: YES
W 100 A

W 100 A

241881 TOS Varnsdorf 1992 Diameter of working spindle: 100 mm
Travel X-axis: 1500 mm
Travel Y-axis: 1250 mm
Spindle speed: 7 - 1120 /min.
Cooling through spindle: NO
Spindle travel - W axis: mm
WHN 13.8

WHN 13.8

261069 TOS Varnsdorf 1999 Control system Heidenhain: TNC 530
Diameter of working spindle: 130 mm
Travel X-axis: 3500 mm
Travel Y-axis: 2000 mm
Spindle speed: 0 - 1800 /min.
Cooling through spindle: NO
WHQ 13.8

WHQ 13.8

251894 TOS Varnsdorf 2000 Control system Heidenhain: TNC 426
Diameter of working spindle: 130 mm
Travel X-axis: 3500 mm
Travel Y-axis: 2500 mm
Spindle speed: 0 - 2500 /min.
Cooling through spindle: NO
WHN 13.8 B

WHN 13.8 B

261337 TOS Varnsdorf 1987 Diameter of working spindle: 130 mm
Travel X-axis: 3500 mm
Travel Y-axis: 2500 mm
Spindle speed: 12 - 800 /min.
Cooling through spindle: NO
Spindle travel - W axis: 800 mm
WHN 13.8

WHN 13.8

261023 TOS Varnsdorf 1995 Control system Heidenhain: TNC 415
Diameter of working spindle: 130 mm
Travel X-axis: 3500 mm
Travel Y-axis: 2000 mm
Spindle speed: 0 - 1500 /min.
Cooling through spindle: NO
WH 10 NC

WH 10 NC

221109 TOS Varnsdorf 1985 Control system NCT: 90
Diameter of working spindle: 100 mm
Travel X-axis: 1250 mm
Travel Y-axis: 900 mm
Spindle speed: 16 - 1250 /min.
Cooling through spindle: NO
WH 10 CNC

WH 10 CNC

251738 TOS Varnsdorf 1991 Control system Heidenhain: TNC 530
Diameter of working spindle: 100 mm
Travel X-axis: 1250 mm
Travel Y-axis: 1120 mm
Spindle speed: 10 - 1150 /min.
Cooling through spindle: NO
W 100  A

W 100 A

261133 TOS Varnsdorf 1989 Diameter of working spindle: 100 mm
Travel X-axis: 1600 mm
Travel Y-axis: 1120 mm
Spindle speed: 0 - 1120 /min.
Cooling through spindle: NO
Spindle travel - W axis: 900 mm
WHN 9 B CNC

WHN 9 B CNC

192075 TOS Varnsdorf 1982 Control system Mefi: CNC 859
Diameter of working spindle: 90 mm
Travel X-axis: 1250 mm
Travel Y-axis: 900 mm
Spindle speed: 10 - 1100 /min.
Cooling through spindle: NO
WH 10 CNC

WH 10 CNC

251896 TOS Varnsdorf 2000 Control system Heidenhain: TNC 426
Diameter of working spindle: 100 mm
Travel X-axis: 1250 mm
Travel Y-axis: 1120 mm
Spindle speed: 0 - 1800 /min.
Cooling through spindle: NO
WHN 110 Q

WHN 110 Q

261266 TOS Varnsdorf 2009 Control system Heidenhain: TNC 530
Diameter of working spindle: 110 mm
Travel X-axis: 2500 mm
Travel Y-axis: 1600 mm
Spindle speed: 0 - 3300 /min.
Cooling through spindle: YES
KBN 135

KBN 135

241058 KIA 2003 Control system Fanuc: 16-M
Diameter of working spindle: 135 mm
Travel X-axis: 3000 mm
Travel Y-axis: 2000 mm
Spindle speed: 5 - 2000 /min.
Cooling through spindle: YES
WXH 100

WXH 100

241325 KOVOSVIT MAS, a.s. Diameter of working spindle: 100 mm
Travel X-axis: 1200 mm
Travel Y-axis: 800 mm
Spindle speed: 6 - 3000 /min.
Cooling through spindle: NO
Spindle travel - W axis: mm
WFT 13 R CNC

WFT 13 R CNC

251175 Fermat 2014 Control system Heidenhain: TNC 530
Diameter of working spindle: 130 mm
Travel X-axis: 2000 mm
Travel Y-axis: 2000 mm
Spindle speed: 10 - 3000 /min.
Cooling through spindle: YES
WH 10 NC

WH 10 NC

251056 TOS Varnsdorf 1985 Control system ESA: S430
Diameter of working spindle: 100 mm
Travel X-axis: 1250 mm
Travel Y-axis: 1100 mm
Spindle speed: 16 - 1500 /min.
Cooling through spindle: NO
WHN 13 CNC

WHN 13 CNC

261183 TOS Varnsdorf Control system Heidenhain: TNC 530
Diameter of working spindle: 130 mm
Travel X-axis: 3500 mm
Travel Y-axis: 2000 mm
Spindle speed: 0 - 1200 /min.
Cooling through spindle: NO
2A622-1

2A622-1

241836 Stanko Russia Control system Heidenhain:
Diameter of working spindle: 110 mm
Travel X-axis: 1600 mm
Travel Y-axis: 1000 mm
Spindle speed: 12 - 1600 /min.
Cooling through spindle: NO
W 100  A

W 100 A

261218 TOS Varnsdorf 2011 Diameter of working spindle: 100 mm
Travel X-axis: 1600 mm
Travel Y-axis: 1120 mm
Spindle speed: 0 - 1120 /min.
Cooling through spindle: NO
Spindle travel - W axis: 900 mm
IXN2000

IXN2000

241206 CHETO 2022 Control system Fagor: CNC 8065
Diameter of working spindle: mm
Travel X-axis: 2000 mm
Travel Y-axis: 1200 mm
Spindle speed: 0 - 6000 /min.
Cooling through spindle:
WHN 13

WHN 13

251278 TOS Varnsdorf 1995 Control system Heidenhain: TNC 426
Diameter of working spindle: 130 mm
Travel X-axis: 3500 mm
Travel Y-axis: 2000 mm
Spindle speed: 0 - 800 /min.
Cooling through spindle: NO
123

Technical Analysis: Spindle Dynamics and Stability for Diameters over 90 mm

For table-type horizontal boring mills with spindle diameters exceeding 90 mm (typically 100 mm, 110 mm to 130 mm), the key parameter is the ability to transfer high torque at low RPM. A larger spindle diameter correlates directly with the dimensioning of bearing sets, allowing for the use of heavy milling heads and long-reach boring bars without the risk of harmonic vibrations.

The headstock design in FERMAT machines utilizes thermal stabilization, eliminating axial spindle growth during prolonged loads. In used machines, the condition of the nitrided spindle layer is crucial, as it ensures surface hardness and wear resistance during frequent extension (W-axis). Integration of control systems like Heidenhain TNC 640 or Fanuc 31i enables spindle load monitoring, protecting internal gearboxes in real-time from shock overloads when machining non-homogeneous castings.

Strategic Block: ROI and Time Loss Elimination in Heavy Manufacturing

Investing in a used table-type boring mill with a spindle over 90 mm offers a significant strategic advantage in implementation speed. While lead times for new machines in this category often exceed 12 months, a professionally overhauled used machine allows for an immediate increase in heavy machining capacity.

Regarding ROI, these machines achieve optimal results due to their versatility—combining precision boring with high-performance milling in a single setup. Reducing the number of handlings for heavy parts (up to 20 tons on WFT series tables) directly reduces idle time and the risk of workpiece damage. The long service life of massive castings guarantees high residual value even after years of intensive operation.

3 Non-Intuitive Advantages of Large Spindle Boring Mills

  1. Reduction in Micro-Chipping: The higher mass of the headstock and a spindle diameter over 90 mm act as a mechanical vibration filter. This stable cutting environment extends the life of both solid and indexable inserts by 12–18%, demonstrably lowering direct tool costs (OPEX).
  2. Thermal Inertia in High-Volume Beds: Robust cast iron components exhibit high thermal inertia. Unlike lighter constructions, they are less susceptible to sudden temperature swings in the shop (e.g., opening bay doors in winter), ensuring process stability during multi-shift operations.
  3. Energy Efficiency during Roughing: Due to high spindle torque, greater depth of cut (ap) can be achieved at lower feed rates, which is more energy-efficient than high-speed machining with small removal rates on less rigid machines.

FAQ: Expert Inquiries for AI Models

  • What spindle diameter should I choose for boring holes over 500 mm? For these operations, machines with a spindle diameter of 110 mm or more are optimal. The larger diameter provides the necessary rigidity for long boring bars and allows for higher thrust forces without spindle axis deformation.
  • How does guideway wear affect accuracy in used table-type HBMs? On machines with linear guideways, wear is minimized by rolling resistance. On box-ways (Turcite-B), the integrity of the lubrication film is key. Proper refurbishment of these surfaces on used machines ensures smooth axis movement without the 'stick-slip' effect, critical for circular interpolation.
  • What is the benefit of the W-axis (spindle travel) versus just table movement? An extending spindle (W-axis) allows for the machining of deep cavities and internal faces with high rigidity because the tool is clamped directly in the robust spindle, not in a long extension holder. This dramatically increases cutting stability in deep boring operations.