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Guangdong JSWAY CNC Machine Tool Co., Ltd. since 2004.

Numerical control lathe oscillation to attack the effects of the parts

in the numerical control lathe, there are many significant abnormal phenomenon, but in some economic nc system, but there was no alarm, even sometimes appear alarm, alarm information that is not what you see is not normal phenomenon of the police. Machine tool prostrate and oscillation is a remarkable example. Numerical control lathe, with a low speed machine working table is crawling forward movement; Machine tools with high speed, it presents oscillation. Oscillation are common, numerical control lathe operations attack machine tool vibration not only how much shape and measure of distortion of the workpiece, but also will leave marks on finished appearance, accuracy and surface finish, adding to the metal surface layer outside the cold hard situation, oscillation, tool durability will also fell sharply, and even lead to the blade collapse, the problem about the nature of the brittle carbide cutting tools and ceramic cutting tools are particularly serious. Machine tool oscillation after onset, cutting dosage, forcing operators often dropped and constraints of the yield rate. In addition, in the active line, need to have a machine tool oscillation and forced to suspend operation, rhythm, would undermine the produce cause chaos in the produce process. Machine tool oscillation is necessary to cause attention to an important question. With the rapid development of science and technology, for the production of machine parts precision and appearance quality put forward higher requirements, and then make oscillation of machine tool research departments and so on research and development, production and use of machine tool is necessary to face the serious topic, research the intent of the machine tool vibration is to explore the cause of the machine tool oscillation, to prevent and eliminate machine tool oscillation, better to develop resistance to vibration of machine tools.

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How to Mitigate Deformation in the Machining System of Swiss-Type Lathes Forces Causing Deformation in the Machining System


Methods to Reduce the Impact of Force-Induced Deformation
To minimize the impact of force-induced deformation on the stability of Swiss-type lathes and enhance machining accuracy and stability, the following measures can be taken:
JSWAY Company Shines at the Jakarta International Industrial Week

JSWAY Company’s Professional Team Performance
As one of the exhibitors, JSWAY Company showcased the excellence of its professional team at this Jakarta Industrial Week. The team members of JSWAY Company, with their enthusiasm and professional knowledge, actively engaged in exchanges with customers from all over the world, providing them with detailed product introductions and technical support. They not only demonstrated JSWAY Company's advanced technology and high-quality products in the fields of CNC machines, milling and turning centers, and Swiss-type lathes, but also left a deep impression on customers with their enthusiastic service.
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Manual Milling Machines vs. CNC Machines: Which is Better?

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How to Improve Precision of  Swiss-Type Lathes through Fixture Adjustment

Improving Precision and Service Life through Fixture Adjustment and Maintenance


Fixture Adjustment Methods:


Fixture Maintenance Methods:


By properly adjusting and regularly maintaining fixtures, the machining accuracy and service life of Swiss-type lathes can be effectively improved, ensuring efficient and stable production processes.
How Does CNC Machine Tool Bed Stress Affect Machining Quality?

The stress in a machine tool bed can influence machining quality in several ways:

Machining Accuracy


Deformation and Displacement: Stress in the bed can cause structural deformation, which in turn affects the positional accuracy of various machine components. For example, insufficient rigidity at the tailstock support of the bed may lead to positional deviations of the tailstock center, with maximum displacement deformation reaching up to 0.13465 mm. Such deformation directly impacts the relative positioning between the tool and the workpiece, resulting in machining errors.
How the Multi-Process Integration of Swiss-Type Lathes is Achieved and its Effects
In summary, the multi-process integration of Swiss-type lathes, achieved through advanced CNC systems, multi-axis linkage, power tools, and automation features, offers significant benefits in terms of precision, efficiency, and versatility. This integrated approach not only enhances production efficiency but also reduces costs, making Swiss-type lathes an ideal choice for modern manufacturing needs.
Features of Differences Swiss-Type Lathe Power Heads and Their Impact on Machining

Differences in Machining Effects with Different Power Head Configurations


Single Spindle vs. Dual Spindle: Single-spindle Swiss-type lathes usually come with one side power head and are suitable for machining relatively simple parts. In contrast, dual-spindle lathes can be equipped with more power heads and can even perform simultaneous machining on the main and secondary spindles, significantly improving machining efficiency and complexity.


Side Tool Post vs. Horizontal Tool Post: Power heads with a side tool post structure perform better when machining difficult-to-chip materials, while those with a horizontal tool post structure are more efficient for machining easy-to-cut materials.


In summary, the power heads of Swiss-type lathes offer significant advantages in machining accuracy, efficiency, complexity, and adaptability. Different power head configurations can be selected based on specific machining requirements to achieve the best machining results.
Application Cases of Pitch Compensation for  Swiss CNC lathe
Pitch compensation is an important means of precision improvement in CNC machines. By compensating for the pitch errors of the lead screw, it can significantly enhance the positioning accuracy and machining accuracy of the machine tool. The following is a detailed description of the methods, steps, and application cases of pitch compensation:
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