SLM Metal 3D Printing Equipment

SLM Metal 3D Printing Equipment

Products Description The HGETCH LSP is an industrial-grade metal additive manufacturing system leveraging Selective Laser Melting (SLM) technology, engineered for aerospace, automotive, medical device sectors, and advanced maker communities. Featuring a dual-fiber laser configuration, the system...
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Product Introduction

Products Description

 

The HGETCH LSP is an industrial-grade metal additive manufacturing system leveraging Selective Laser Melting (SLM) technology, engineered for aerospace, automotive, medical device sectors, and advanced maker communities. Featuring a dual-fiber laser configuration, the system offers a build envelope of 280×280×350mm and processes a comprehensive range of high-performance alloys including titanium (Ti6Al4V), stainless steel (316L/17-4 PH), aluminum (AlSi10Mg), nickel-based superalloys (Inconel 718), cobalt-chromium, and precious metals for bespoke jewelry applications.

 

The LSP Metal 3D Printing Equipment delivers exceptional dimensional accuracy of ±0.05mm and achieves part densities exceeding 99.9%, producing components with mechanical properties equivalent to wrought materials. Its integrated closed-loop atmospheric control system maintains oxygen levels at ≤100ppm, ensuring process stability and compliance with ISO 9001 quality management standards.

 

3d printing machine

 

Laser System Dual fiber lasers, 500W per beam, wavelength 1070nm
Layer Thickness Range 20-100 μm (adjustable)
Spot Diameter 70 μm
Scanning Speed Up to 7 m/s
Positioning Accuracy ±0.05 mm
Repeat Positioning Accuracy ±0.02 mm
Minimum Feature Size 0.3 mm
Surface Roughness Ra 6-10 μm (as-printed)
Part Density ≥99.9%
Oxygen Content Control ≤100 ppm
Inert Gas Argon or Nitrogen (purity ≥99.999%)
Powder Particle Size 15-45 μm (spherical)
Powder Recovery Rate ≥95%

 

Advantages:

1. Ultra-High Precision & Material Density

±0.05mm Dimensional Accuracy: Configurable layer thickness (20-50μm) with minimum feature resolution of 30μm

≥99.9% Part Density: Mechanical properties equivalent to wrought materials; tensile strength ≥950MPa for Ti6Al4V

Tight Tolerance Control: ±0.1% dimensional tolerance meets stringent aerospace assembly specifications

2. Comprehensive Multi-Material Capability

Titanium Alloy Optimization: Dedicated process parameters for Ti6Al4V eliminate hydrogen embrittlement and cracking risks

Accelerated Stainless Steel Processing: 40% faster build rates for 17-4 PH and 316L alloys without compromising integrity

Lightweight Aluminum Solutions: AlSi10Mg processing enables 30% weight reduction for automotive and aerospace structural applications

High-Temperature Superalloy Support: Inconel 718 rated for continuous operation up to 1000°C, ideal for turbine blade manufacturing

3. High-Efficiency Production Performance

Dual-Laser Synchronization: Two independently controlled 500W fiber lasers deliver 2× build speed acceleration

Intelligent Stitching Technology: Seamless integration of multi-laser zones ensures uniform surface quality for large parts

Automated Powder Recycling: ≥95% powder recovery rate reduces material consumption costs by 30%

4. Industrial-Grade Safety Architecture

Inert Atmosphere Control: Closed-loop argon/nitrogen circulation maintains oxygen concentration at ≤100ppm throughout the build cycle

Pressure Stabilization: Chamber pressure variance maintained within <±50Pa to prevent oxidation and mitigate explosion hazards

Multi-Layer Safety Interlocks: Triple-redundant protection via laser safety enclosure, thermal monitoring sensors, and gas leak detection systems

5. Intelligent Operational Interface

One-Touch Automated Workflow: End-to-end automation from CAD import to build completion eliminates manual intervention

Remote Monitoring Interface: Web-based dashboard provides live visibility into build progress, atmospheric conditions, laser power metrics, and critical process parameters

AI-Powered Predictive Maintenance: Machine learning algorithms detect anomaly patterns and issue preemptive maintenance alerts

Maker-Optimized User Experience: Intuitive interface with pre-configured templates for common maker projects, guided workflows for novice operators, and granular parameter control for advanced users.

 

Products Application

 

application

applications

Aerospace & Defense

Turbine Blade Manufacturing: Inconel 718 superalloy processing with 1000°C thermal resistance and 25% mass reduction

Engine Mount Structures: Topology-optimized Ti6Al4V components achieving 30% weight savings while maintaining structural integrity

Satellite Components: Monolithic lattice structures eliminating multi-part assembly requirements

Automotive Engineering

Lightweight Structural Components: AlSi10Mg aluminum brackets delivering 40% per-part mass reduction for enhanced fuel efficiency

Custom Interior Systems: Rapid iteration of low-volume personalized components with 60% accelerated development cycles

Powertrain Prototyping: Stainless steel exhaust manifolds for functional validation of computational fluid dynamics designs

Medical & Healthcare

Orthopedic Implant Solutions: Porous titanium hip prostheses facilitating osseointegration with superior biocompatibility profiles

Patient-Specific Surgical Guides: CT-derived preoperative planning instruments with 0.1mm positional accuracy

Chairside Dental Restoration: Cobalt-chromium crowns and bridges enabling same-day design, fabrication, and delivery

Energy & Power Generation

Gas Turbine Components: Nickel-based superalloy blades extending operational service life by 3× under extreme thermal conditions

Advanced Heat Exchangers: Monolithic internal flow channel architectures improving thermal transfer efficiency by 50%

Nuclear Power Valves: Corrosion-resistant stainless steel assemblies meeting stringent nuclear safety certification standards

Tooling & Mold Manufacturing

Conformal Cooling Systems: Integrated spiral cooling channels within injection molds reducing cycle times by 40%

Rapid Tooling Validation: Direct steel insert fabrication compressing new product development timelines from 3 months to 2 weeks

Maker Community & Advanced DIY

Bespoke Functional Components: Custom mechanical assemblies, specialized tooling, and replacement parts for personal engineering projects

Artistic Metal Fabrication: Complex geometric sculptures and decorative elements unachievable through conventional manufacturing methods

Rapid Prototype Iteration: Accelerated concept-to-functional-metal-prototype workflows enabling personal invention development within days

Academic & Educational Programs: University laboratories and makerspaces leveraging HG-M280 for advanced additive manufacturing curriculum and hands-on training

Premium Jewelry Production: High-end personalized jewelry, timepieces, and fashion accessories utilizing precious metal-compatible alloy systems.

 

Products FAQ

 

Q1: What is the maximum build envelope for the HGTECH Metal 3D Printing Equipment ?

A: The system accommodates components up to 280×280×350mm (X/Y/Z). For larger-scale applications, consider our HG-M450 platform with a 450×450×500mm build volume. Oversized parts can also be segmented and assembled post-fabrication.

 

Q2: What are typical build cycle times?

A: Build duration depends on part geometry, layer resolution, and infill density. Representative benchmarks:

Dental crown (5cm³): ~2 hours

Automotive bracket (200cm³): 8-10 hours

Aerospace structural component (1000cm³): 24-36 hours

Dual-laser synchronization accelerates throughput by approximately 1.8× compared to single-laser configurations.

 

Q3: Is powder reclamation viable for production runs?

A: Yes. The automated sieving system achieves ≥95% recovery efficiency. We recommend blending reclaimed material with virgin powder at a 30%-50% ratio to maintain mechanical consistency. Exclusive use of recycled powder may elevate oxygen content and compromise tensile properties.

 

Q4: How do SLM-fabricated components compare to conventionally machined parts?

A: SLM processing achieves ≥99.9% density with tensile/yield strengths approaching wrought material specifications. Key advantages include:

Geometric Freedom: Internal channels, lattice structures, and topology-optimized forms unachievable via subtractive methods

Material Efficiency: Near-net-shape fabrication reduces raw material waste by >70%

Rapid Iteration: Concept-to-component timelines compressed to 1-3 days without tooling investment

Mass Optimization: Topology-driven designs achieve 20%-40% weight reduction

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