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CNC turning lathe, Swiss type lathe original manufacturer since 2007.

Cnc Turning

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Allowing for offset patterns, bi-direction cutting and semi finishing. Define and use customized inventory profiles to limit your toolpath, great for castings and in process inventory profiles. Users can draw their own inserts and holder profiles to match non-normal tooling. Custom shapes allow with gouge checking and undercutting compensation. This feature parameter can be turned on at any time to stop undercuts discovered parallel to the X or Z axis.

eMachineShop provides a cost-effective turning solution whether or not you want a single part, batch of prototypes, or a production order. Spindle rigidity and positioning are ensured by the use of a large diameter, precision-toothed curvic coupling. The strong headstock, mattress, and field shaped methods, over-sized ball-screws and servo motors, and strong turrets are all designed to carry out heavy chopping with spectacular chip elimination charges. Increases rigidity for heavy loading and makes optionally available live facilities unnecessary.

All machines are offered with a 14-day refund and a full 2-year manufacturing unit warranty on all lathe parts and equipment. A key function of the CNC Lathe is the power to single level thread. This is achieved using a “Digital Index Signal Processor” which was designed by Microproto Systems. Windsor Design Professional High Speed Steel Wood Lathe Chisel Set, eight Pc. The Johnford Product line is taken into account a heavy duty CNC horizontal turning center manufacturer.

From CAD inception to the creation of a final machined half, Mastercam is designed as a comprehensive solution for manufacturing effectivity. Integrated CAD for CAM provides a robust set of instruments for creating and manipulating wireframe, surfaces, STL, and solids data including MBD info (with select translators).

Turning components similar to these provides several benefits over milling. As implied beforehand, long length to diameter ratios on pistons and shafts give mill operators an upset abdomen. Turning a set of candlestick holders for your Aunt Martha’s sixtieth birthday, however, is a piece of cake on a lathe. Amatrol has studying programs that permit faculties to excel on this demanding environment.

CNC Software does not suggest particular anti-virus products, but when you see unexpected points, it could be a conflict with anti-virus software. Try quickly disabling the anti-virus software or setting an exception for Mastercam. Get the arrogance to run the most complicated toolpaths on your machine and guarantee your elements are carried out right the primary time. Take advantage of progressive profile instruments and processes aimed toward larger efficiency and higher machining productivity. Machine any job with the mixed energy of C- and Y-axis machining.

TRAK Toolroom Lathes Make Every Turning Job Easier and More Productive. Because a CNC Turning Center is more efficient and can allow you to produce more, they are sometimes more expensive on your firm to purchase. Of course, this value difference is greater than made up for once the extra manufacturing begins to usher in further profits. I actually have been toying with the idea of constructing a three axis rotary CNC machine for awhile. I wished to make it with off the shelf OpenBuilds parts so any one can replicate it and I felt the LEAD High Z Mod can be a great start line.

Although Johnford produces a small job shop turning center with a 2” bar capability and eight” chuck, they are primarily acknowledged as a pacesetter in LARGE heavy obligation BOX WAY turning facilities. If your company wish to discuss enrolling trainees into an upcoming CNC Lathe Training, please contact Penn State DuBois Continuing and Community Education at . Class sizes are limited to allow extra interaction with the instructors and there are a limited variety of lessons every year. Utilizing a number of the area’s best engineering instructors and veteran CNC operators, students gain each the knowledge and the talents to turn into CNC Lathe operators.

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Maintaining Swiss-Type Lathe Fixtures – Locking Accuracy at the Micron Level

Daily “Clean + Lubricate” as the Baseline
After each shift, remove chips and coolant residue from the fixture surface and collet jaws with a soft cloth or air gun to prevent corrosion and re-clamping errors. Every eight hours, apply a trace of rust preventive oil to spring collets, guide bushings and other moving parts; once a week, add a thin coat of grease to ball-screw nuts and hydraulic cylinder rods to reduce wear. Before any prolonged shutdown, spray anti-rust oil on internal bores and locating faces and wrap them in wax paper or plastic film.
Precision Calibration & Data Closure
Use ring gauges or master bars every month to verify repeatability of the fixture; log results in the MES. If deviation exceeds 0.005 mm, trigger compensation or repair. For quick-change systems (HSK/Capto), check taper contact percentage every six months—target ≥ 80 %. If lower, re-grind or replace.
Spare Parts & Training
Keep minimum stock of jaws, seals and springs to enable replacement within two hours. Hold quarterly on-machine training sessions for operators on correct clamping practices and anomaly recognition to eliminate abusive clamping.
In short, embedding “clean–lubricate–inspect–calibrate” into daily SOP keeps the fixture delivering micron-level accuracy, reduces downtime, and extends overall machine life.
How To Preventing The Hidden Damage in Swiss-Type Lathes


Six preventive measures


Environment control: keep the workshop at a stable temperature and low humidity; exclude dust and corrosive gases to reduce chemical wear on guideways and screws.


Daily checks: remove chips every shift and inspect the lubrication of the spindle, bearings, ball screws and guideways; act on any abnormality immediately.


Preventive lubrication: replace lubricants on schedule and keep the lubrication system unobstructed to minimize fatigue wear.


Accuracy monitoring: use laser interferometers or ball-bar systems monthly to measure geometric errors and compensate for ball-screw backlash or guideway straightness in time.


Electrical health checks: periodically examine cables, relays and cooling fans to prevent hidden aging caused by overheating.


Data monitoring: onboard sensors record spindle current, vibration and temperature; cloud-based analytics predict early bearing or tool failures.


Why prevention matters
• Ensures machining consistency: eliminating micron-level error sources keeps batch dimensions stable and reduces scrap.
• Extends machine life: preventing micro-cracks from growing can prolong overall life by more than 20 %.
• Reduces unplanned downtime: planned maintenance replaces emergency repairs, increasing overall equipment effectiveness (OEE) by 10 % or more.
• Cuts total cost: lower spare-parts inventory, labor and lost-production costs can save tens of thousands of dollars per machine annually.
• Enhances brand reputation: consistent on-time, defect-free deliveries strengthen customer trust and secure future orders.
Cycle Time Optimization Strategies for Turn-Mill Machining





Optimizing cycle time on turn-mill machining centers is crucial for boosting productivity and reducing costs. It requires a systematic approach addressing machine tools, cutting tools, processes, programming, fixtures, and material flow.
Level Re-verification — The Gatekeeper of Swiss Lathe Accuracy



Ensure Geometric Accuracy
Swiss-type lathes process long, slender workpieces with multi-axis synchronization. A bed inclination of only 0.02 mm/m creates a “slope error” along the Z-axis, tilting the tool relative to the part centerline. This results in taper on outer diameters and asymmetric thread profiles. Periodic re-verification and re-leveling restore overall geometric accuracy to factory standards, guaranteeing consistent dimensions during extended production runs.


Extend Guideway and Ball-Screw Life
When the machine is not level, guideways carry uneven loads and lubricant films become discontinuous, accelerating localized wear and causing stick-slip or vibration. After re-leveling with shims or wedges, load distribution evens out, reducing guideway scoring and ball-screw side-loading. Service life typically improves by more than 20 %.


Suppress Thermal Growth and Vibration
A tilted bed leads to asymmetric coolant and lubricant flow, generating thermal gradients. Subsequent expansion further amplifies geometric errors. Re-verifying level, combined with thermal compensation, produces a more uniform temperature rise and reduces scrap caused by thermal drift. Additionally, a level bed raises natural frequencies, cutting chatter amplitude and improving surface finish by half to one full grade.
 From Low-Cost Alternative to Global Value Leader – China’s Swiss-Type Lathes


Chinese-built Swiss-type lathes have moved beyond the “low-cost substitute” label to become the “value leader” for overseas users. On the cost side, machines of comparable specification are priced well below those of traditional leading brands, and ongoing maintenance costs amount to only a fraction, dramatically lowering the entry barrier for small-to-medium job shops in Europe and North America. Lead time is equally compelling: major domestic OEMs can ship standard models within weeks, and special configurations follow shortly thereafter. When urgent orders arise from the electric-vehicle or medical-device sectors, Chinese production lines consistently deliver rapid responses.

Intelligence is on par with top-tier global standards. Machines routinely feature thermal compensation, AI-based tool-life prediction, and cloud-enabled remote diagnostics. Mean time between failures is long, and fully open data interfaces simplify secondary development for end users. Complementing this is a worldwide service network: Chinese manufacturers maintain parts depots and resident field engineers across the Americas, Europe, and Southeast Asia, enabling on-site support often within a single day, whereas legacy brands usually require factory returns measured in weeks.
Solutions for Bar Feed Jamming in Swiss-Type Lathes



1. Quick Troubleshooting Steps


Check the clamping pressure: Ensure the pressure plate or collet applies even force; too much or too little pressure will jam the bar. Adjust the pneumatic or hydraulic release mechanism accordingly.


Align the material path: Verify that the bar feeder, guide bushing, and spindle centers are collinear; any offset will cause the bar to twist or wedge.


Inspect belts and rollers: Belts must be tensioned correctly—loose belts slip, over-tight belts bind. Replace worn rollers immediately.


Lubricate moving parts: Clean and grease the eccentric shaft, release cam, and pusher fingers; lack of lubrication is a common cause of seizure.
Installation and Maintenance Guide for Swiss-Type Lathe Bed



I. Installation Guidelines for Swiss-Type Lathe Bed
1. Foundation Preparation


Floor Requirements: The Swiss lathe bed must be installed on a solid, level concrete foundation to prevent machining inaccuracies caused by ground settlement or vibration.



Load Capacity: The foundation must support the machine’s weight and dynamic cutting forces to avoid deformation affecting spindle and guide bushing alignment.



Vibration Isolation: If the workshop has vibration sources (e.g., punch presses, forging machines), anti-vibration pads or isolation trenches are recommended to enhance CNC machine stability.
Key Functions of Ball Screws in Swiss-Type Lathes




Summary
Ball screws are the physical enablers of Swiss-type lathes across five critical dimensions:



Micron-level positioning for complex micro-structures;



High-speed rigidity supporting synchronized multi-axis cutting;



Active thermal control ensuring batch consistency;



Ultra-wear-resistant design enabling maintenance-free operation for 10+ years.
Their performance defines the precision ceiling of Swiss-type machining – truly "invisible champions" in precision transmission.
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