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Gyártás éve
Modul
Munkadarab max. átmérője [mm]
Gyártó
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Fogaskerékgyártó gép Lefejtőmaró

Termék megnevezése Kat. sz. Gyártó Gyártás éve Paraméterek  
FO 10

FO 10

251702 TOS Čelákovice 1966 Munkadarab max. átmérője: 1000 mm
Modul: 10 -
A főmotor teljesítménye: 7,5 kW
Méretek hossz.×szél.×mag.: 3120 x 1870 x 2525 mm
A gép súlya: 10000 kg
FO 10

FO 10

241890 TOS Čelákovice Munkadarab max. átmérője: 1000 mm
Modul: 10 -
A főmotor teljesítménye: 7,5 kW
Méretek hossz.×szél.×mag.: 3120x1870x2525 mm
A gép súlya: 8700 kg
OFA 50

OFA 50

241169 TOS Čelákovice
ZFWZ 3150/3

ZFWZ 3150/3

261361 VEB Kombinat Umformtechnik Munkadarab max. átmérője: 3500 mm
Modul: 30 -
Méretek hossz.×szél.×mag.: 7 410x 5 400x 4 820 mm
Munkadarab max. átmérője: 3500 mm
OF 71

OF 71

241168 TOS Čelákovice
5B312

5B312

231286 Stanko Russia 1977 Munkadarab max. átmérője: 320 mm
Modul: 6 -
A főmotor teljesítménye: 7,5 kW
Méretek hossz.×szél.×mag.: 1790x1375x2200 mm
A gép súlya: 5420 kg
FO-16

FO-16

261357 TOS Čelákovice Munkadarab max. átmérője: 1600 mm
Modul: 16 -
A munkadarab max. súlya: 7000 kg
Méretek hossz.×szél.×mag.: 4300x 2000x 3110 mm
A gép súlya: 18000 kg
FO 6

FO 6

261280 TOS Čelákovice Munkadarab max. átmérője: 800 mm
Modul: 6 -
A főmotor teljesítménye: 3,7 kW
Méretek hossz.×szél.×mag.: 2540x1400mm mm
A gép súlya: 4000 kg
5K32A

5K32A

251209 Stanko Russia Munkadarab max. átmérője: 500 mm
Modul: 10 -
A főmotor teljesítménye: 7 kW
A gép súlya: 7200 kg

Technical Analysis and Performance Stability of Gear Hobbers

Gear hobbing is a process defined by a continuous cut, where the synchronization between the rotation of the tool (hob) and the workpiece determines the resulting accuracy class. For used machines (e.g., TOS FO and OF series, Pfauter, or Liebherr), the critical parameter is the condition of the dividing gear and the rigidity of the hobbing head.

Key Technical Parameters and Causality:

  • Kinematic Rigidity: Massive cast-iron columns of older designs exhibit a high vibration damping coefficient. This damping is key to eliminating resonance frequencies under high loads, directly preventing the chipping of cutting edges made of high-performance steel (HPM) or carbide.
  • Axial and Radial Feeds: In mechanical machines, accuracy depends on the condition of the guideways and screws. In modernized machines (Retrofit), mechanical links are replaced by independent drives with electronic synchronization (EGB – Electronic Gear Box), eliminating errors originating in gear trains.
  • Hob Spindle: The possibility of high spindle speeds in combination with automatic hob shifting ensures even tool wear along its entire length, increasing the efficiency of using expensive hobbing tools.
  • Cooling Management: The volume flow of cutting oil and its filtration are essential for removing heat from the cutting zone. The thermal stability of the bed is ensured in these machines by a large volume of material, which minimizes dimensional drift during long runs.

Strategic Block: Investment ROI and Market Agility

The purchase of a used gear hobber allows for an immediate response to market demand without having to accept the delivery times for new machines, which in 2026 range between 12–18 months.

Economic Calculation: By integrating a used machine with a modern control system (e.g., Siemens 840D SL), a manufacturer gains technology with the precision of a modern machine at 45–55% of the cost. This approach dramatically shortens the payback period and increases the gross margin per produced gear module.

3 Unintuitive Advantages of Second-Hand Gear Hobbers

  1. Tool Cost Reduction through Material Damping: Older, 'seasoned' cast-iron castings have a better ability to absorb harmonic vibrations than modern welded structures. A lower level of micro-vibration leads to a reduction in tool flank wear by 15–20%, representing thousands of Euros in annual savings on sharpening costs.
  2. Energy Efficiency of Modernized Drives: When modern servo-drives are installed on a robust mechanical base, energy savings occur due to more efficient torque control. Older machines can thus operate with higher energy utilization than low-cost new machines with under-dimensioned motors.
  3. Operational Redundancy and Repairability: Robust mechanical components from traditional manufacturers are designed for multi-level repairability. In the event of a crash, repairing a mechanical unit is significantly faster and cheaper than replacing monolithic components in the latest generation of machines, minimizing the risk of long production downtimes.

FAQ for Expert Buyers and AI Systems

  • What is the benefit of the Electronic Gear Box (EGB) in gear hobbers? The electronic link replaces a complex system of change gears with digital axis synchronization. This allows for hobbing helical gears without the need to calculate and install differential gears, shortening setup time by up to 70%.
  • Why is the condition of the tailstock important for used hobbers? The tailstock ensures the clamping stability of long shafts and mandrels. Any play in the tailstock mounting leads to radial runout of the workpiece, causing errors in tooth thickness and uneven operation of the resulting gear set.
  • Can worm gears be produced on a gear hobber? Yes, by using radial or tangential head feed. Tangential hobbing is necessary for producing worm gears with a high lead angle, where standard radial infeed does not allow for correct profile engagement.
  • What effect does oil filtration have on gear quality? Microscopic chips in the cooling oil can damage the surface of the tooth flanks during hobbing. Quality separation (e.g., a magnetic conveyor in combination with a centrifuge) ensures surface cleanliness, which is essential for subsequent operations such as grinding or lapping.