China Conco 120 Degree ESD Gear Track Adjustment SMT Antistatic Magazine Rack steering gear rack

Solution Description

 

Item Description

Product COP-806
Item identify ESD CZPT Antistatic Journal Rack for PCB Storage
Dimensions 460*400*563mm 
Warmth-resistant 120°C 
Floor resistant 10e4~10e6Ω
Qty of PCB board 50pcs
Ideal PCB measurement 460* (50-330)mm
Aspect guid slot depth 3.5mm, width 5mm , pitch 10mm
Adjustable way Gear observe
Ref.Situation A=34mm B=34mm
Fat 7.8kg
Packing size 57*forty seven*11CM/pcs 40 pcs/120*a hundred*125CM
  Base:Steel / Side board:Plastic

Detailed Photos

SKU. Outer dimension
(mm)
Adjust way Adjustable width(mm) Weight(kg) Ref.situation Base substance Side board
material
Quantity
of PCB
Ability
Max Tolerant Temperature
(ºC)
L W H Gear observe adjustment Screw adjustment Belt
adjustment
A B
COP-801 400 320 563   50-250 6.9/6.7 34 34 Metallic Plastic 50 80/a hundred and twenty/200
COP-801L 400 320 563   50-250 8.8/8.6 33 33 Metal Aluminum fifty three hundred
COP-802 355 315 580     eighty-250 5 34 34 Plastic Plastic fifty 80
COP-803 355 320 563 fifty-250 five.7/5.5/8.two 34 34 Metal Plastic 50 80/a hundred and twenty/two hundred
COP-803L 355 320 563   fifty-250 seven.4/7.two 33 33 Metallic Aluminum 50 three hundred
COP-805 355 320 563   fifty-250 four.2/4. 34 34 Plastic Plastic 50 eighty/120
COP-806 460 400 563 fifty-330 seven.7/7.5/11.two 34 34 Metal Plastic 50 eighty/120/200
COP-806L 460 four hundred 563   50-330 nine.8/9.six 33 33 Steel Aluminum fifty three hundred
COP-807 460 400 563   fifty-330 eight.2/8. 34 34 Steel Plastic 50 80/a hundred and twenty/200
COP-807L 460 four hundred 563   fifty-330 10.4/10.2 33 33 Metallic Aluminum fifty 300
COP-808 535 460 569 50-390 10.3/9.9 34 34/40 Steel Plastic 50 eighty/120/200
COP-808L 535 460 569   fifty-390 eleven.5/11.3 33 33/38 Steel Aluminum 50 300
COP-809 535 530 569 fifty-460 twelve.3/eleven.9/thirteen.4 34 34/40 Metal Plastic 50 80/120/two hundred
COP-809L 535 530 569   50-460 thirteen.5/13.two 33 33/38 Metal Aluminum 50 300
COP-810 630 530 563 50-460 14./thirteen.six 34 34 Metallic Plastic fifty 80

Company Profile

 

Certifications

FAQ

Q: Can you do OEM and tailored design journal rack?
A: Indeed, we can.We have strong capacity to open mould and make tailored journal rack and wealthy encounter on batch creation as properly.

Q: How lengthy is your delivery time?
A: Typically it is 1-3 operate days if the merchandise are in inventory, or it is 5-7 work times if the products are not in inventory, it is according to amount.

Q: Do you offer samples ? Is it cost-free or further ?
A: Yes, we could provide the samples, samples could be cost-free or billed in accordance to different solution benefit.And all samples shipping and delivery value usually is by acquire or as agreed.

Q: What variety of Incoterm you can do?
A: We could assist to do EXW, FOB ,CIF, DDU and so forth. And other incoterm as agreed.

Q: What technique you can support ship the goods?
A: By sea, by air, or by categorical, by mail post according to consumer buy qty and volume.
 

Anti Static Substantial High quality Adjustable ESD Journal Rack for CZPT Storage Holder PCB

SMT PCB Antistatic ESD Journal Rack for Gear Adjustment PCB Storage

Ln-B803 Higher Quality CZPT Storage Holder PCB Anti Static Adjustable ESD Magazine Rack

Higher Quality Plastic ESD Antistatic Adjustable Journal Rack for PCB Holder


/ Piece
|
2 Pieces

(Min. Order)

###

Shipping Cost:

Estimated freight per unit.



To be negotiated

###

Certification: GS, CCC, RoHS, ISO, CE
Condition: New
Waterproof: Waterproof

###

Samples:
US$ 50/Piece
1 Piece(Min.Order)

|

Order Sample

###

Customization:
Available

|


###

Model COP-806
Product name ESD SMT Antistatic Magazine Rack for PCB Storage
Size 460*400*563mm 
Heat-resistant 120°C 
Surface resistant 10e4~10e6Ω
Qty of PCB board 50pcs
Suitable PCB size 460* (50-330)mm
Side guid slot depth 3.5mm, width 5mm , pitch 10mm
Adjustable way Gear track
Ref.Position A=34mm B=34mm
Weight 7.8kg
Packing size 57*47*11CM/pcs; 40 pcs/120*100*125CM
  Base:Metal / Side board:Plastic

###

SKU. Outer dimension
(mm)
Adjust way Adjustable width(mm) Weight(kg) Ref.position Base material Side board
material
Quantity
of PCB
Capacity
Max Tolerant Temperature
(ºC)
L W H Gear track adjustment Screw adjustment Belt
adjustment
A B
COP-801 400 320 563   50-250 6.9/6.7 34 34 Metal Plastic 50 80/120/200
COP-801L 400 320 563   50-250 8.8/8.6 33 33 Metal Aluminum 50 300
COP-802 355 315 580     80-250 5 34 34 Plastic Plastic 50 80
COP-803 355 320 563 50-250 5.7/5.5/8.2 34 34 Metal Plastic 50 80/120/200
COP-803L 355 320 563   50-250 7.4/7.2 33 33 Metal Aluminum 50 300
COP-805 355 320 563   50-250 4.2/4.0 34 34 Plastic Plastic 50 80/120
COP-806 460 400 563 50-330 7.7/7.5/11.2 34 34 Metal Plastic 50 80/120/200
COP-806L 460 400 563   50-330 9.8/9.6 33 33 Metal Aluminum 50 300
COP-807 460 400 563   50-330 8.2/8.0 34 34 Metal Plastic 50 80/120/200
COP-807L 460 400 563   50-330 10.4/10.2 33 33 Metal Aluminum 50 300
COP-808 535 460 569 50-390 10.3/9.9 34 34/40 Metal Plastic 50 80/120/200
COP-808L 535 460 569   50-390 11.5/11.3 33 33/38 Metal Aluminum 50 300
COP-809 535 530 569 50-460 12.3/11.9/13.4 34 34/40 Metal Plastic 50 80/120/200
COP-809L 535 530 569   50-460 13.5/13.2 33 33/38 Metal Aluminum 50 300
COP-810 630 530 563 50-460 14.0/13.6 34 34 Metal Plastic 50 80

/ Piece
|
2 Pieces

(Min. Order)

###

Shipping Cost:

Estimated freight per unit.



To be negotiated

###

Certification: GS, CCC, RoHS, ISO, CE
Condition: New
Waterproof: Waterproof

###

Samples:
US$ 50/Piece
1 Piece(Min.Order)

|

Order Sample

###

Customization:
Available

|


###

Model COP-806
Product name ESD SMT Antistatic Magazine Rack for PCB Storage
Size 460*400*563mm 
Heat-resistant 120°C 
Surface resistant 10e4~10e6Ω
Qty of PCB board 50pcs
Suitable PCB size 460* (50-330)mm
Side guid slot depth 3.5mm, width 5mm , pitch 10mm
Adjustable way Gear track
Ref.Position A=34mm B=34mm
Weight 7.8kg
Packing size 57*47*11CM/pcs; 40 pcs/120*100*125CM
  Base:Metal / Side board:Plastic

###

SKU. Outer dimension
(mm)
Adjust way Adjustable width(mm) Weight(kg) Ref.position Base material Side board
material
Quantity
of PCB
Capacity
Max Tolerant Temperature
(ºC)
L W H Gear track adjustment Screw adjustment Belt
adjustment
A B
COP-801 400 320 563   50-250 6.9/6.7 34 34 Metal Plastic 50 80/120/200
COP-801L 400 320 563   50-250 8.8/8.6 33 33 Metal Aluminum 50 300
COP-802 355 315 580     80-250 5 34 34 Plastic Plastic 50 80
COP-803 355 320 563 50-250 5.7/5.5/8.2 34 34 Metal Plastic 50 80/120/200
COP-803L 355 320 563   50-250 7.4/7.2 33 33 Metal Aluminum 50 300
COP-805 355 320 563   50-250 4.2/4.0 34 34 Plastic Plastic 50 80/120
COP-806 460 400 563 50-330 7.7/7.5/11.2 34 34 Metal Plastic 50 80/120/200
COP-806L 460 400 563   50-330 9.8/9.6 33 33 Metal Aluminum 50 300
COP-807 460 400 563   50-330 8.2/8.0 34 34 Metal Plastic 50 80/120/200
COP-807L 460 400 563   50-330 10.4/10.2 33 33 Metal Aluminum 50 300
COP-808 535 460 569 50-390 10.3/9.9 34 34/40 Metal Plastic 50 80/120/200
COP-808L 535 460 569   50-390 11.5/11.3 33 33/38 Metal Aluminum 50 300
COP-809 535 530 569 50-460 12.3/11.9/13.4 34 34/40 Metal Plastic 50 80/120/200
COP-809L 535 530 569   50-460 13.5/13.2 33 33/38 Metal Aluminum 50 300
COP-810 630 530 563 50-460 14.0/13.6 34 34 Metal Plastic 50 80

Spiral Gears for Right-Angle Right-Hand Drives

Spiral gears are used in mechanical systems to transmit torque. The bevel gear is a particular type of spiral gear. It is made up of two gears that mesh with one another. Both gears are connected by a bearing. The two gears must be in mesh alignment so that the negative thrust will push them together. If axial play occurs in the bearing, the mesh will have no backlash. Moreover, the design of the spiral gear is based on geometrical tooth forms.
Gear

Equations for spiral gear

The theory of divergence requires that the pitch cone radii of the pinion and gear be skewed in different directions. This is done by increasing the slope of the convex surface of the gear’s tooth and decreasing the slope of the concave surface of the pinion’s tooth. The pinion is a ring-shaped wheel with a central bore and a plurality of transverse axes that are offset from the axis of the spiral teeth.
Spiral bevel gears have a helical tooth flank. The spiral is consistent with the cutter curve. The spiral angle b is equal to the pitch cone’s genatrix element. The mean spiral angle bm is the angle between the genatrix element and the tooth flank. The equations in Table 2 are specific for the Spread Blade and Single Side gears from Gleason.
The tooth flank equation of a logarithmic spiral bevel gear is derived using the formation mechanism of the tooth flanks. The tangential contact force and the normal pressure angle of the logarithmic spiral bevel gear were found to be about twenty degrees and 35 degrees respectively. These two types of motion equations were used to solve the problems that arise in determining the transmission stationary. While the theory of logarithmic spiral bevel gear meshing is still in its infancy, it does provide a good starting point for understanding how it works.
This geometry has many different solutions. However, the main two are defined by the root angle of the gear and pinion and the diameter of the spiral gear. The latter is a difficult one to constrain. A 3D sketch of a bevel gear tooth is used as a reference. The radii of the tooth space profile are defined by end point constraints placed on the bottom corners of the tooth space. Then, the radii of the gear tooth are determined by the angle.
The cone distance Am of a spiral gear is also known as the tooth geometry. The cone distance should correlate with the various sections of the cutter path. The cone distance range Am must be able to correlate with the pressure angle of the flanks. The base radii of a bevel gear need not be defined, but this geometry should be considered if the bevel gear does not have a hypoid offset. When developing the tooth geometry of a spiral bevel gear, the first step is to convert the terminology to pinion instead of gear.
The normal system is more convenient for manufacturing helical gears. In addition, the helical gears must be the same helix angle. The opposite hand helical gears must mesh with each other. Likewise, the profile-shifted screw gears need more complex meshing. This gear pair can be manufactured in a similar way to a spur gear. Further, the calculations for the meshing of helical gears are presented in Table 7-1.
Gear

Design of spiral bevel gears

A proposed design of spiral bevel gears utilizes a function-to-form mapping method to determine the tooth surface geometry. This solid model is then tested with a surface deviation method to determine whether it is accurate. Compared to other right-angle gear types, spiral bevel gears are more efficient and compact. CZPT Gear Company gears comply with AGMA standards. A higher quality spiral bevel gear set achieves 99% efficiency.
A geometric meshing pair based on geometric elements is proposed and analyzed for spiral bevel gears. This approach can provide high contact strength and is insensitive to shaft angle misalignment. Geometric elements of spiral bevel gears are modeled and discussed. Contact patterns are investigated, as well as the effect of misalignment on the load capacity. In addition, a prototype of the design is fabricated and rolling tests are conducted to verify its accuracy.
The three basic elements of a spiral bevel gear are the pinion-gear pair, the input and output shafts, and the auxiliary flank. The input and output shafts are in torsion, the pinion-gear pair is in torsional rigidity, and the system elasticity is small. These factors make spiral bevel gears ideal for meshing impact. To improve meshing impact, a mathematical model is developed using the tool parameters and initial machine settings.
In recent years, several advances in manufacturing technology have been made to produce high-performance spiral bevel gears. Researchers such as Ding et al. optimized the machine settings and cutter blade profiles to eliminate tooth edge contact, and the result was an accurate and large spiral bevel gear. In fact, this process is still used today for the manufacturing of spiral bevel gears. If you are interested in this technology, you should read on!
The design of spiral bevel gears is complex and intricate, requiring the skills of expert machinists. Spiral bevel gears are the state of the art for transferring power from one system to another. Although spiral bevel gears were once difficult to manufacture, they are now common and widely used in many applications. In fact, spiral bevel gears are the gold standard for right-angle power transfer.While conventional bevel gear machinery can be used to manufacture spiral bevel gears, it is very complex to produce double bevel gears. The double spiral bevel gearset is not machinable with traditional bevel gear machinery. Consequently, novel manufacturing methods have been developed. An additive manufacturing method was used to create a prototype for a double spiral bevel gearset, and the manufacture of a multi-axis CNC machine center will follow.
Spiral bevel gears are critical components of helicopters and aerospace power plants. Their durability, endurance, and meshing performance are crucial for safety. Many researchers have turned to spiral bevel gears to address these issues. One challenge is to reduce noise, improve the transmission efficiency, and increase their endurance. For this reason, spiral bevel gears can be smaller in diameter than straight bevel gears. If you are interested in spiral bevel gears, check out this article.
Gear

Limitations to geometrically obtained tooth forms

The geometrically obtained tooth forms of a spiral gear can be calculated from a nonlinear programming problem. The tooth approach Z is the linear displacement error along the contact normal. It can be calculated using the formula given in Eq. (23) with a few additional parameters. However, the result is not accurate for small loads because the signal-to-noise ratio of the strain signal is small.
Geometrically obtained tooth forms can lead to line and point contact tooth forms. However, they have their limits when the tooth bodies invade the geometrically obtained tooth form. This is called interference of tooth profiles. While this limit can be overcome by several other methods, the geometrically obtained tooth forms are limited by the mesh and strength of the teeth. They can only be used when the meshing of the gear is adequate and the relative motion is sufficient.
During the tooth profile measurement, the relative position between the gear and the LTS will constantly change. The sensor mounting surface should be parallel to the rotational axis. The actual orientation of the sensor may differ from this ideal. This may be due to geometrical tolerances of the gear shaft support and the platform. However, this effect is minimal and is not a serious problem. So, it is possible to obtain the geometrically obtained tooth forms of spiral gear without undergoing expensive experimental procedures.
The measurement process of geometrically obtained tooth forms of a spiral gear is based on an ideal involute profile generated from the optical measurements of one end of the gear. This profile is assumed to be almost perfect based on the general orientation of the LTS and the rotation axis. There are small deviations in the pitch and yaw angles. Lower and upper bounds are determined as – 10 and -10 degrees respectively.
The tooth forms of a spiral gear are derived from replacement spur toothing. However, the tooth shape of a spiral gear is still subject to various limitations. In addition to the tooth shape, the pitch diameter also affects the angular backlash. The values of these two parameters vary for each gear in a mesh. They are related by the transmission ratio. Once this is understood, it is possible to create a gear with a corresponding tooth shape.
As the length and transverse base pitch of a spiral gear are the same, the helix angle of each profile is equal. This is crucial for engagement. An imperfect base pitch results in an uneven load sharing between the gear teeth, which leads to higher than nominal loads in some teeth. This leads to amplitude modulated vibrations and noise. In addition, the boundary point of the root fillet and involute could be reduced or eliminate contact before the tip diameter.

China Conco 120 Degree ESD Gear Track Adjustment SMT Antistatic Magazine Rack     steering gear rackChina Conco 120 Degree ESD Gear Track Adjustment SMT Antistatic Magazine Rack     steering gear rack
editor by czh 2023-04-03