Product material: PP
Core&Cavity Steel: 718
Steel hardness: HRC35-38
Mould Standard: DME
Cavity Number: 1*1
Injection System: Direct gate
Ejector System: Ejector pin
High quality
Reasonable price
Good after-sale service
On time delivery
Product Name | Customied Injection Plastic Stool Mould |
Product material | PP |
Core& Cavity Steel | 718 |
Steel hardness | HRC35-38 |
Mould Standard | DME |
Cavity Number | 1 |
Injection System | direct gate |
Ejector System | ejector pin |
Cycle Time | 35s |
Tooling lead time | 60 days |
Mould life | 500, 000 |
Quality assurance | ISO9001 |
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Our Advantage | 1. High quality |
2. Reasonable price | |
3. On time delivery | |
4. Good After-sale service | |
5. Strict quality control | |
6. All the mould are automotic. | |
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Offer you | In-time response on letters, telephone calls or fax |
In-time supply the quotation and mould designs | |
In-time communication on the technical points | |
In-time sending pictures for the mould machining progress and mould finishing schedule | |
In-time mould test and sample delivery | |
In-time mould delivery. | |
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 For more information please contact us. |
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A cyclone sepatation is a method of removing particulates from an air, gas or liquid stream, without the use of filters, through vortex separation. Totational effects and gravity are used to separate mixtures of solid and fluids. A high speed rotating air flow is established within a cylindrical or conical container called a cyclone. Air flows in a helical pattern, beginning at the top of the cyclone and ending at the bottom end before exiting the cyclone in a straight stream through the centre of the cyclone and out the top. Larger particles in the rotating stream have too much inertia to follow the tight curve of the stream, and thus strike the outside wall, then fall to the bottom of the cyclone where they can be removed. In a conical system, as the rotating flow moves towards the narrow end of the cycone, the rotation radius of the stream is reduced, thus separating smaller and smaller particles. The cyclone geometry, together with volumetric flow rate, defines the cut point of the cyclone. This is the size of particle that will be removed from the stream with a 50% efficiency. Particles larger than the cut point will be removed with a greater efficiency, and smaller particles with a lower efficiency as they separate with more difficulty or can be subject to re-entrainment when the air vortex reverses direction to move in direction of the outlet
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