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Highly Quality Sla Rapid Prototype 3D Printing Service
Highly Quality Sla Rapid Prototype 3D Printing Service
Highly Quality Sla Rapid Prototype 3D Printing Service
Highly Quality Sla Rapid Prototype 3D Printing Service
Highly Quality Sla Rapid Prototype 3D Printing Service
Highly Quality Sla Rapid Prototype 3D Printing Service

Highly Quality Sla Rapid Prototype 3D Printing Service

$0.1-80 /Piece/Pieces

Min. Order:1 Piece/Pieces
Transportation:Ocean,Land,Express,Air
Port:Ningbo,Shanghai,Shenzhen
Product Attributes

Types OfRapid Prototyping

Place Of OriginChina

3D Printing ProcessSLA / SLS /FDM /SLM /DLP /MJF

Materials Available- PlasticAbs resin / Nylon /PMMA ect.....

Materials Available-MetalSUS 316L /Aluminum alloy Alsi 10Mg /Titanium alloy Ti64 /Die steel 18Ni300 ect.

Drawing FormatsDrawing Formats

MOQ1 psc

Item3D Printing-SLS

Packaging & Delivery
Selling Units : Piece/Pieces
Package Type : wooden box / carton / tray / Custom way
Product Description

The main difference between desktop and industrial 3D printers is the associated cost. The popularity of desktop 3D printers has greatly reduced the cost of owning and operating an FDM machine, as well as the cost and availability of consumables.The production capacity of industrial FDM 3D printers is usually higher than that of desktop 3D printers, which means that industrial FDM machines can fulfill large orders faster than desktop 3D printers. Industrial 3D printers also have a larger print area, which means they can produce larger parts in one print or print multiple models at the same time.highly quality Sla rapid prototype 3D Printing Service

1.Field of application
Trial production of auto parts samples
Electronics, consumer goods prototype model
Small batch manufacturing of industrial products
medical surgery model
Medical device design and development
Cultural and creative product development
architectural design model

3D Printing3D Printing3D Pirnting ABS

3D Printing metal3D Printing metal3D Printing metal

3D Printing service3D Printing service3D Printing

Metal 3D Printing - Slm / Dmls

The two technologies have many similarities: both use laser scanning and selectively fuse (or melt) metal powder particles, glue them together and build them layer by layer. Similarly, the materials used in both processes are granular metals.
The difference between SLM and DMLS is due to the basis (and patents) of the particle bonding process: SLM uses metal powder with a single melting temperature and completely melts the particles, while in DMLS, the powder is composed of materials with variable melting points at high temperatures Fusion at the molecular level.
Bering 3D provides 3D Printing services for various metal materials such as stainless steel, die steel, titanium alloy, aluminum alloy, and bronze.


Selective Laser Sintering - Sls

In the printing process of the SLS equipment, a high-power laser is used to fuse small particles of plastic powder into the required three-dimensional shape. The laser selectively fuse powder materials by scanning the three-dimensional data section on the surface of the powder bed. After scanning each section, the powder bed is reduced by a layer of thickness, a new layer of material is added to it, and the selective laser sintering process is repeated until the part is completed.
SLS 3D printing can be used not only for the prototype design of functional polymer components, but also for small production runs because it has high design freedom, high precision, and produces parts with good and consistent mechanical properties.


Stereo Light Curing Molding - Sla

It mainly uses photosensitive resin as a raw material, and utilizes the characteristic that liquid photosensitive resin will cure quickly under ultraviolet laser beam irradiation. The photosensitive resin is generally liquid, and it immediately initiates a polymerization reaction and completes curing when irradiated with a certain wavelength of ultraviolet light (250 nm to 400 nm). SLA focuses on the surface of the light-curing material by focusing ultraviolet light of a specific wavelength and intensity to solidify it sequentially from point to line and from line to surface, thereby completing the drawing of a layered cross-section.


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