Solution Description

Manufacturing descrption:
Sequence Slim-Light Variety Slewing Bearing—-Exterior Equipment

Series Thin-Light Kind Slewing Bearing—-External Equipment

Characteristic of composition, efficiency and software

The Thin Section Slewing Bearing has the exact same structure with the common slewing bearing,but the fat is light-weight,and rotate flexibly,which commonly employed in the foodstuff machinaery,cHangZhou machinery and environmental equipment and so on.

Modèle
DL
Poids
kg
Dimensions Mounting dimension Structural dimension Gear Info Gear circumferential pressure Clearance
D
[mm]
de
[mm]
H
[mm]
D1
[mm]
D2
[mm]
n Φ
[mm]
M
[mm]
t D3
[mm]
d1
[mm]
H1
[mm]
H2
[mm]
Hu
[mm]
Ho
[mm]
d
[mm]
m
[mm]
z
[mm]
k.m
[mm]
b
[mm]
Authorized
[KN]
Max
[KN]
Axial Radial
TY-061.20.571 31 504 342 fifty six 455 368 twenty/24 thirteen.five 12 20 412.5 415.five forty five.five 45.5 10.5 ten.five 495 five ninety nine -.five forty five.five 11.75 23.five ≤0.28 ≤0.24
TY-061.twenty.0544 forty three 640.eight 472 fifty six 585 498 28/32 13.5 12 20 542.5 545.five forty five.5 45.5 ten.five ten.5 630 six 105 -.6 forty five.5 fourteen.2 28.4 ≤0.30 ≤0.26
TY-061.20.0644 fifty two 742.eight 572 fifty six 685 598 32/36 13.5 12 twenty 642.5 645.5 forty five.5 forty five.five 10.5 10.5 732 6 122 -.6 forty five.five fourteen.two 28.4 ≤0.30 ≤0.26
TY-061.twenty. 0571 59 838.eight 672 fifty six 785 698 36/40 13.5 twelve twenty 742.5 745.five 45.five 45.five 10.5 10.5 828 6 138 -.6 forty five.five fourteen.2 28.four ≤0.thirty ≤0.26
TY-061.twenty.0844 seventy one 950.four 772 fifty six 885 798 36/40 thirteen.5 twelve twenty 842.5 845.5 forty five.5 forty five.five 10.5 ten.five 936 8 117 -.eight forty five.5 18.93 37.86 ≤0.thirty ≤0.26
TY-061.twenty.0944 seventy seven 1046.four 872 fifty six 985 898 forty/44 thirteen.five twelve twenty 942.five 945.5 45.five 45.five 10.five ten.five 1032 8 129 -.8 forty five.5 eighteen.93 37.86 ≤0.30 ≤0.26
TY-061.20.1094 ninety one 1198.4 1571 fifty six 1135 1048 44/forty eight 13.5 12 20 1092.5 1095.one 45.5 forty five.5 ten.five ten.5 1184 8 148 -.8 forty five.five 18.ninety three 37.86 ≤0.30 ≤0.26

Note:

1. n1 is the number of lubricating holes. Oil cup M8×1JB/T7940.1~JB/T7940.2.The Oil nipple’s spot can be altered in accordance to the user’s application.

two. “Km” is addendum reduction.


FAQ
1. What is the generation approach?
A: Manufacturing process such as raw material reducing, tough turning, machining processing(format for drilling, tooth processing), finish turning, grinding, equipment cleansing, assembling, stoving, oil coating, tests, package deal.

two. How to management the high quality of the items?
A: High precision products, advanced in-home engineer crew, strictly inspection as nicely as TPI like SGS, DNV, BV, Ab muscles, and so on.

three: How prolonged is your supply time?
A: Typically speaking, it is 3-5 days if the merchandise are in stock. fifteen-twenty five days if the goods are not in inventory.

four: Do you offer samples ? is it totally free or not?
A: Sure, we could provide a sample free of charge but we need to have a basement price.

five: What are your terms of payment?
A: thirty% pay as you go and balance just before shipment.
For big purchase, we take L/C at sight.

6. What is your MOQ?
A: For standard sort and OEM, MOQ is 1 computer.

seven. What is the transportation?
A: DHL, UPS, TNT, FedEx. by sea or by air

8. Can you layout specific packaging?
A: Sure. Besides for typical packing, we can make specific packing and label for the buyer.

nine. What’s your payment strategy.
A: We can acknowledge PayPal/ West Union/ Financial institution transfer Etc.

ten. Can you supply an OEM support?
A: Yes, we offer OEM support, packing and other needs

 

US $100
/ Set
|
1 Set

(Min. Order)

###

Standard or Nonstandard: Standard
Feature: Heat-Resistant
Sealing Gland: Sealed On Both Sides
Rolling-Element Number: Single and Double Row
Roller Type: Four Point Contract
Material: 42CrMo/50mn/ S48c, Bearing Steel

###

Exemples :
US$ 50/Set
1 Set(Min.Order)

|
Demande d'échantillon

###

Personnalisation :

###

Modèle
DL
Poids
kg
Dimensions Mounting dimension Structural dimension Gear Data Gear circumferential force Clearance
D
[mm]
de
[mm]
H
[mm]
D1
[mm]
D2
[mm]
n Φ
[mm]
M
[mm]
t D3
[mm]
d1
[mm]
H1
[mm]
H2
[mm]
Hu
[mm]
Ho
[mm]
d
[mm]
m
[mm]
z
[mm]
k.m
[mm]
b
[mm]
Allowed
[KN]
Max
[KN]
Axial Radial
TY-061.20.0414 31 504 342 56 455 368 20/24 13.5 12 20 412.5 415.5 45.5 45.5 10.5 10.5 495 5 99 -0.5 45.5 11.75 23.5 ≤0.28 ≤0.24
TY-061.20.0544 43 640.8 472 56 585 498 28/32 13.5 12 20 542.5 545.5 45.5 45.5 10.5 10.5 630 6 105 -0.6 45.5 14.2 28.4 ≤0.30 ≤0.26
TY-061.20.0644 52 742.8 572 56 685 598 32/36 13.5 12 20 642.5 645.5 45.5 45.5 10.5 10.5 732 6 122 -0.6 45.5 14.2 28.4 ≤0.30 ≤0.26
TY-061.20.0744 59 838.8 672 56 785 698 36/40 13.5 12 20 742.5 745.5 45.5 45.5 10.5 10.5 828 6 138 -0.6 45.5 14.2 28.4 ≤0.30 ≤0.26
TY-061.20.0844 71 950.4 772 56 885 798 36/40 13.5 12 20 842.5 845.5 45.5 45.5 10.5 10.5 936 8 117 -0.8 45.5 18.93 37.86 ≤0.30 ≤0.26
TY-061.20.0944 77 1046.4 872 56 985 898 40/44 13.5 12 20 942.5 945.5 45.5 45.5 10.5 10.5 1032 8 129 -0.8 45.5 18.93 37.86 ≤0.30 ≤0.26
TY-061.20.1094 91 1198.4 1022 56 1135 1048 44/48 13.5 12 20 1092.5 1095.1 45.5 45.5 10.5 10.5 1184 8 148 -0.8 45.5 18.93 37.86 ≤0.30 ≤0.26
US $100
/ Set
|
1 Set

(Min. Order)

###

Standard or Nonstandard: Standard
Feature: Heat-Resistant
Sealing Gland: Sealed On Both Sides
Rolling-Element Number: Single and Double Row
Roller Type: Four Point Contract
Material: 42CrMo/50mn/ S48c, Bearing Steel

###

Exemples :
US$ 50/Set
1 Set(Min.Order)

|
Demande d'échantillon

###

Personnalisation :

###

Modèle
DL
Poids
kg
Dimensions Mounting dimension Structural dimension Gear Data Gear circumferential force Clearance
D
[mm]
de
[mm]
H
[mm]
D1
[mm]
D2
[mm]
n Φ
[mm]
M
[mm]
t D3
[mm]
d1
[mm]
H1
[mm]
H2
[mm]
Hu
[mm]
Ho
[mm]
d
[mm]
m
[mm]
z
[mm]
k.m
[mm]
b
[mm]
Allowed
[KN]
Max
[KN]
Axial Radial
TY-061.20.0414 31 504 342 56 455 368 20/24 13.5 12 20 412.5 415.5 45.5 45.5 10.5 10.5 495 5 99 -0.5 45.5 11.75 23.5 ≤0.28 ≤0.24
TY-061.20.0544 43 640.8 472 56 585 498 28/32 13.5 12 20 542.5 545.5 45.5 45.5 10.5 10.5 630 6 105 -0.6 45.5 14.2 28.4 ≤0.30 ≤0.26
TY-061.20.0644 52 742.8 572 56 685 598 32/36 13.5 12 20 642.5 645.5 45.5 45.5 10.5 10.5 732 6 122 -0.6 45.5 14.2 28.4 ≤0.30 ≤0.26
TY-061.20.0744 59 838.8 672 56 785 698 36/40 13.5 12 20 742.5 745.5 45.5 45.5 10.5 10.5 828 6 138 -0.6 45.5 14.2 28.4 ≤0.30 ≤0.26
TY-061.20.0844 71 950.4 772 56 885 798 36/40 13.5 12 20 842.5 845.5 45.5 45.5 10.5 10.5 936 8 117 -0.8 45.5 18.93 37.86 ≤0.30 ≤0.26
TY-061.20.0944 77 1046.4 872 56 985 898 40/44 13.5 12 20 942.5 945.5 45.5 45.5 10.5 10.5 1032 8 129 -0.8 45.5 18.93 37.86 ≤0.30 ≤0.26
TY-061.20.1094 91 1198.4 1022 56 1135 1048 44/48 13.5 12 20 1092.5 1095.1 45.5 45.5 10.5 10.5 1184 8 148 -0.8 45.5 18.93 37.86 ≤0.30 ≤0.26

How to Design a Forging Spur Gear

Before you start designing your own spur gear, you need to understand its main components. Among them are Forging, Keyway, Spline, Set screw and other types. Understanding the differences between these types of spur gears is essential for making an informed decision. To learn more, keep reading. Also, don’t hesitate to contact me for assistance! Listed below are some helpful tips and tricks to design a spur gear. Hopefully, they will help you design the spur gear of your dreams.
Gear

Forging spur gears

Forging spur gears is one of the most important processes of automotive transmission components. The manufacturing process is complex and involves several steps, such as blank spheroidizing, hot forging, annealing, phosphating, and saponification. The material used for spur gears is typically 20CrMnTi. The process is completed by applying a continuous through extrusion forming method with dies designed for the sizing band length L and Splitting angle thickness T.
The process of forging spur gears can also use polyacetal (POM), a strong plastic commonly used for the manufacture of gears. This material is easy to mold and shape, and after hardening, it is extremely stiff and abrasion resistant. A number of metals and alloys are used for spur gears, including forged steel, stainless steel, and aluminum. Listed below are the different types of materials used in gear manufacturing and their advantages and disadvantages.
A spur gear’s tooth size is measured in modules, or m. Each number represents the number of teeth in the gear. As the number of teeth increases, so does its size. In general, the higher the number of teeth, the larger the module is. A high module gear has a large pressure angle. It’s also important to remember that spur gears must have the same module as the gears they are used to drive.

Set screw spur gears

A modern industry cannot function without set screw spur gears. These gears are highly efficient and are widely used in a variety of applications. Their design involves the calculation of speed and torque, which are both critical factors. The MEP model, for instance, considers the changing rigidity of a tooth pair along its path. The results are used to determine the type of spur gear required. Listed below are some tips for choosing a spur gear:
Type A. This type of gear does not have a hub. The gear itself is flat with a small hole in the middle. Set screw gears are most commonly used for lightweight applications without loads. The metal thickness can range from 0.25 mm to 3 mm. Set screw gears are also used for large machines that need to be strong and durable. This article provides an introduction to the different types of spur gears and how they differ from one another.
Pin Hub. Pin hub spur gears use a set screw to secure the pin. These gears are often connected to a shaft by dowel, spring, or roll pins. The pin is drilled to the precise diameter to fit inside the gear, so that it does not come loose. Pin hub spur gears have high tolerances, as the hole is not large enough to completely grip the shaft. This type of gear is generally the most expensive of the three.
Gear

Keyway spur gears

In today’s modern industry, spur gear transmissions are widely used to transfer power. These types of transmissions provide excellent efficiency but can be susceptible to power losses. These losses must be estimated during the design process. A key component of this analysis is the calculation of the contact area (2b) of the gear pair. However, this value is not necessarily applicable to every spur gear. Here are some examples of how to calculate this area. (See Figure 2)
Spur gears are characterized by having teeth parallel to the shafts and axis, and a pitch line velocity of up to 25 m/s is considered high. In addition, they are more efficient than helical gears of the same size. Unlike helical gears, spur gears are generally considered positive gears. They are often used for applications in which noise control is not an issue. The symmetry of the spur gear makes them especially suitable for applications where a constant speed is required.
Besides using a helical spur gear for the transmission, the gear can also have a standard tooth shape. Unlike helical gears, spur gears with an involute tooth form have thick roots, which prevents wear from the teeth. These gears are easily made with conventional production tools. The involute shape is an ideal choice for small-scale production and is one of the most popular types of spur gears.

Spline spur gears

When considering the types of spur gears that are used, it’s important to note the differences between the two. A spur gear, also called an involute gear, generates torque and regulates speed. It’s most common in car engines, but is also used in everyday appliances. However, one of the most significant drawbacks of spur gears is their noise. Because spur gears mesh only one tooth at a time, they create a high amount of stress and noise, making them unsuitable for everyday use.
The contact stress distribution chart represents the flank area of each gear tooth and the distance in both the axial and profile direction. A high contact area is located toward the center of the gear, which is caused by the micro-geometry of the gear. A positive l value indicates that there is no misalignment of the spline teeth on the interface with the helix hand. The opposite is true for negative l values.
Using an upper bound technique, Abdul and Dean studied the forging of spur gear forms. They assumed that the tooth profile would be a straight line. They also examined the non-dimensional forging pressure of a spline. Spline spur gears are commonly used in motors, gearboxes, and drills. The strength of spur gears and splines is primarily dependent on their radii and tooth diameter.
SUS303 and SUS304 stainless steel spur gears

Stainless steel spur gears are manufactured using different techniques, which depend on the material and the application. The most common process used in manufacturing them is cutting. Other processes involve rolling, casting, and forging. In addition, plastic spur gears are produced by injection molding, depending on the quantity of production required. SUS303 and SUS304 stainless steel spur gears can be made using a variety of materials, including structural carbon steel S45C, gray cast iron FC200, nonferrous metal C3604, engineering plastic MC901, and stainless steel.
The differences between 304 and 303 stainless steel spur gears lie in their composition. The two types of stainless steel share a common design, but have varying chemical compositions. China and Japan use the letters SUS304 and SUS303, which refer to their varying degrees of composition. As with most types of stainless steel, the two different grades are made to be used in industrial applications, such as planetary gears and spur gears.
Gear

Stainless steel spur gears

There are several things to look for in a stainless steel spur gear, including the diametral pitch, the number of teeth per unit diameter, and the angular velocity of the teeth. All of these aspects are critical to the performance of a spur gear, and the proper dimensional measurements are essential to the design and functionality of a spur gear. Those in the industry should be familiar with the terms used to describe spur gear parts, both to ensure clarity in production and in purchase orders.
A spur gear is a type of precision cylindrical gear with parallel teeth arranged in a rim. It is used in various applications, such as outboard motors, winches, construction equipment, lawn and garden equipment, turbine drives, pumps, centrifuges, and a variety of other machines. A spur gear is typically made from stainless steel and has a high level of durability. It is the most commonly used type of gear.
Stainless steel spur gears can come in many different shapes and sizes. Stainless steel spur gears are generally made of SUS304 or SUS303 stainless steel, which are used for their higher machinability. These gears are then heat-treated with nitriding or tooth surface induction. Unlike conventional gears, which need tooth grinding after heat-treating, stainless steel spur gears have a low wear rate and high machinability.

China Series Thin-Light Type Slewing Bearing----External Gear     bevel gear setChina Series Thin-Light Type Slewing Bearing----External Gear     bevel gear set
editor by czh 2023-01-30