China Professional High Technique CZPT Cylindrical Grinding Machine for Sale Listings with Good quality

Product Description

1. Picture

2. Parameters

Main Specification M1432BX1000
External Cylindrical Grinding Capacity (dia.*L) Ø8~Ø320mm*1000mm
Internal Cylindrical Grinding Capacity (dia.*L) Ø30~Ø100mm*125mm
Max. Workpiece Weight 150kgs
Center Height 180mm
Table Longitudinal Travel 1000mm
Table Longitudinal Feeding Speed 100~4000mm/min
Table Swivel clockwise 5/3°~anticlockwise 7°
Headstock Center Taper MT4#
Headstock Motor 0.75kW
Headstock Spindle Speed 25~380rpm (50Hz) variable
Wheelhead Spindle Motor 4kW
Wheelhead Spindle Speed 1670rpm
Wheelhead Transverse Travel 200mm
Wheelhead Transverse Feed per Handwheel Graduation 0.005mm
Wheelhead Transverse Feed per Handwheel Revolution 1mm
External Grinding Wheel Size (O.D.*thickness*I.D.) max. Ø400*50*Ø203mm
min. Ø280*50*Ø203mm
External Grinding Wheel Linear Speed max. 35000mm/s
Internal Grinding Wheel Size (O.D.*thickness*I.D.) max. Ø50*16*Ø40mm
min. Ø45*10*Ø35mm
Internal Grinding Wheel Spindle Speed 14000rpm
Tailstock Center Taper MT4#
Tailstock Quill Travel 25mm
Gross Weight ≈ 3400/3700kgs
Packaging Dimension(L*W*H) ≈ 3600*1810*1700mm

3. Standard Accessories

1 Grinding wheel 2 Wheel flange
3 Wheel balancing base 4 Wheel balancing arbor
5 Extractor 6 Diamond dresser
7 Leveling pad 8 Anchor bolt
9 Tool box with tools 10 Open type steady rest 
11 Cooling system 12 Three jaw chuck

4. Feature
   
M1432BX1000
   High Precision Semi-auto Universal Cylindrical Grinder
   Max. Grinding Diameter: Φ 320mm
   Max. Grinding Length: 1000mm

Features of Structure and Performance

  •  The hydraulic driving system adopts screw pump, so the machine can run smoothly with low noise.
  •  The wheel head uses sleeve-type hydrodynamic bearing, gaining the features of high rotation precision and rigidity.
  •  The feeding guideway uses plastic-coated  (Teflon) guideway, improving the stability and vibration resistance in low-speed running.
  •  The machine has the following features: high machining accuracy, rational overall layout, attractive appearance, centralized and visualized operating handles, and simple and safe operation.

Application of the Machine

Application .
The machine is used for the external and internal surface grinding of cylindrical and conical workpieces.

Scope of application
The machine is suitable for the high precision grinding of batched shafts and sleeves, etc. It’s widely used in the industry of automobile, engines, glibs and pumps, compressor, electron, tools, etc. machining of small-lot shafts and sleeve parts in the machining workshop, tool workshop,overhaul workshop, etc.
Ou machine is used for mirror grinding.

 Operation mode
 Manual operation: longitudinal grinding, plunge-cutting grinding.

 Fixed-distance semi-automatic grinding cycle: longitudinal & plunge-cutting grinding cycle.

 Automatic gauge controlling semi-automatic grinding cycle: longitudinal & plunge-cutting grinding cycle.

 
5. Dellivery Picture

6. About us
  1. HangZhou CD MACHINERY CO., LTD is located in the city of HangZhou, about 100 kilometers away from ZheJiang . Welcome you visit us!
Main products: Grinding Machine ,Milling Machine ,Vertical Machining Center ,Lathe Machine ,Drilling Machine, Metal cutting machine tools etc. 

2. HangZhou CD MACHINERY CO., LTD is CZPT to offer a total package of product selection, sales, process improvement, manufacturing knowledge, commissioning, training and service for the whole life of the machine.

3. HangZhou CD MACHINERY CO., LTD  accepts test machining when you required. Please feel free to try a CD brand machine.
Inform us of your required machine model, size, shape and material of workpieces to test, target accuracy, target machining rate, etc. in detail.
Testing will basically be available at free of charge .

Want to know which machine is most suitable for your needs? Have a product to manufacture but do not know which machine tools to use for it? Don’t worry. Contact us please, we will provide the solution for you!

 

Applications of Spline Couplings

A spline coupling is a highly effective means of connecting 2 or more components. These types of couplings are very efficient, as they combine linear motion with rotation, and their efficiency makes them a desirable choice in numerous applications. Read on to learn more about the main characteristics and applications of spline couplings. You will also be able to determine the predicted operation and wear. You can easily design your own couplings by following the steps outlined below.
splineshaft

Optimal design

The spline coupling plays an important role in transmitting torque. It consists of a hub and a shaft with splines that are in surface contact without relative motion. Because they are connected, their angular velocity is the same. The splines can be designed with any profile that minimizes friction. Because they are in contact with each other, the load is not evenly distributed, concentrating on a small area, which can deform the hub surface.
Optimal spline coupling design takes into account several factors, including weight, material characteristics, and performance requirements. In the aeronautics industry, weight is an important design factor. S.A.E. and ANSI tables do not account for weight when calculating the performance requirements of spline couplings. Another critical factor is space. Spline couplings may need to fit in tight spaces, or they may be subject to other configuration constraints.
Optimal design of spline couplers may be characterized by an odd number of teeth. However, this is not always the case. If the external spline’s outer diameter exceeds a certain threshold, the optimal spline coupling model may not be an optimal choice for this application. To optimize a spline coupling for a specific application, the user may need to consider the sizing method that is most appropriate for their application.
Once a design is generated, the next step is to test the resulting spline coupling. The system must check for any design constraints and validate that it can be produced using modern manufacturing techniques. The resulting spline coupling model is then exported to an optimisation tool for further analysis. The method enables a designer to easily manipulate the design of a spline coupling and reduce its weight.
The spline coupling model 20 includes the major structural features of a spline coupling. A product model software program 10 stores default values for each of the spline coupling’s specifications. The resulting spline model is then calculated in accordance with the algorithm used in the present invention. The software allows the designer to enter the spline coupling’s radii, thickness, and orientation.
splineshaft

Characteristics

An important aspect of aero-engine splines is the load distribution among the teeth. The researchers have performed experimental tests and have analyzed the effect of lubrication conditions on the coupling behavior. Then, they devised a theoretical model using a Ruiz parameter to simulate the actual working conditions of spline couplings. This model explains the wear damage caused by the spline couplings by considering the influence of friction, misalignment, and other conditions that are relevant to the splines’ performance.
In order to design a spline coupling, the user first inputs the design criteria for sizing load carrying sections, including the external spline 40 of the spline coupling model 30. Then, the user specifies torque margin performance requirement specifications, such as the yield limit, plastic buckling, and creep buckling. The software program then automatically calculates the size and configuration of the load carrying sections and the shaft. These specifications are then entered into the model software program 10 as specification values.
Various spline coupling configuration specifications are input on the GUI screen 80. The software program 10 then generates a spline coupling model by storing default values for the various specifications. The user then can manipulate the spline coupling model by modifying its various specifications. The final result will be a computer-aided design that enables designers to optimize spline couplings based on their performance and design specifications.
The spline coupling model software program continually evaluates the validity of spline coupling models for a particular application. For example, if a user enters a data value signal corresponding to a parameter signal, the software compares the value of the signal entered to the corresponding value in the knowledge base. If the values are outside the specifications, a warning message is displayed. Once this comparison is completed, the spline coupling model software program outputs a report with the results.
Various spline coupling design factors include weight, material properties, and performance requirements. Weight is 1 of the most important design factors, particularly in the aeronautics field. ANSI and S.A.E. tables do not consider these factors when calculating the load characteristics of spline couplings. Other design requirements may also restrict the configuration of a spline coupling.

Applications

Spline couplings are a type of mechanical joint that connects 2 rotating shafts. Its 2 parts engage teeth that transfer load. Although splines are commonly over-dimensioned, they are still prone to fatigue and static behavior. These properties also make them prone to wear and tear. Therefore, proper design and selection are vital to minimize wear and tear on splines. There are many applications of spline couplings.
A key design is based on the size of the shaft being joined. This allows for the proper spacing of the keys. A novel method of hobbing allows for the formation of tapered bases without interference, and the root of the keys is concentric with the axis. These features enable for high production rates. Various applications of spline couplings can be found in various industries. To learn more, read on.
FE based methodology can predict the wear rate of spline couplings by including the evolution of the coefficient of friction. This method can predict fretting wear from simple round-on-flat geometry, and has been calibrated with experimental data. The predicted wear rate is reasonable compared to the experimental data. Friction evolution in spline couplings depends on the spline geometry. It is also crucial to consider the lubrication condition of the splines.
Using a spline coupling reduces backlash and ensures proper alignment of mated components. The shaft’s splined tooth form transfers rotation from the splined shaft to the internal splined member, which may be a gear or other rotary device. A spline coupling’s root strength and torque requirements determine the type of spline coupling that should be used.
The spline root is usually flat and has a crown on 1 side. The crowned spline has a symmetrical crown at the centerline of the face-width of the spline. As the spline length decreases toward the ends, the teeth are becoming thinner. The tooth diameter is measured in pitch. This means that the male spline has a flat root and a crowned spline.
splineshaft

Predictability

Spindle couplings are used in rotating machinery to connect 2 shafts. They are composed of 2 parts with teeth that engage each other and transfer load. Spline couplings are commonly over-dimensioned and are prone to static and fatigue behavior. Wear phenomena are also a common problem with splines. To address these issues, it is essential to understand the behavior and predictability of these couplings.
Dynamic behavior of spline-rotor couplings is often unclear, particularly if the system is not integrated with the rotor. For example, when a misalignment is not present, the main response frequency is 1 X-rotating speed. As the misalignment increases, the system starts to vibrate in complex ways. Furthermore, as the shaft orbits depart from the origin, the magnitudes of all the frequencies increase. Thus, research results are useful in determining proper design and troubleshooting of rotor systems.
The model of misaligned spline couplings can be obtained by analyzing the stress-compression relationships between 2 spline pairs. The meshing force model of splines is a function of the system mass, transmitting torque, and dynamic vibration displacement. This model holds when the dynamic vibration displacement is small. Besides, the CZPT stepping integration method is stable and has high efficiency.
The slip distributions are a function of the state of lubrication, coefficient of friction, and loading cycles. The predicted wear depths are well within the range of measured values. These predictions are based on the slip distributions. The methodology predicts increased wear under lightly lubricated conditions, but not under added lubrication. The lubrication condition and coefficient of friction are the key factors determining the wear behavior of splines.

China Professional High Technique CZPT Cylindrical Grinding Machine for Sale Listings     with Good qualityChina Professional High Technique CZPT Cylindrical Grinding Machine for Sale Listings     with Good quality