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High-quality 3D assets at affordable prices — trusted by designers, engineers, and creators worldwide. Made with care to be versatile, accessible, and ready for your pipeline.
Included File Formats
This model is provided in 14 widely supported formats, ensuring maximum compatibility:
• - FBX (.fbx) – Standard format for most 3D software and pipelines
• - OBJ + MTL (.obj, .mtl) – Wavefront format, widely used and compatible
• - STL (.stl) – Exported mesh geometry; may be suitable for 3D printing with adjustments
• - STEP (.step, .stp) – CAD format using NURBS surfaces
• - IGES (.iges, .igs) – Common format for CAD/CAM and engineering workflows (NURBS)
• - SAT (.sat) – ACIS solid model format (NURBS)
• - DAE (.dae) – Collada format for 3D applications and animations
• - glTF (.glb) – Modern, lightweight format for web, AR, and real-time engines
• - 3DS (.3ds) – Legacy format with broad software support
• - 3ds Max (.max) – Provided for 3ds Max users
• - Blender (.blend) – Provided for Blender users
• - SketchUp (.skp) – Compatible with all SketchUp versions
• - AutoCAD (.dwg) – Suitable for technical and architectural workflows
• - Rhino (.3dm) – Provided for Rhino users
Model Info
• - All files are checked and tested for integrity and correct content
• - Geometry uses real-world scale; model resolution varies depending on the product (high or low poly)
• - Scene setup and mesh structure may vary depending on model complexity
• - Rendered using Luxion KeyShot
• - Affordable price with professional detailing
Buy with confidence. Quality and compatibility guaranteed.
If you have any questions about the file formats, feel free to send us a message — we're happy to assist you!
Sincerely,
SURF3D
Trusted source for professional and affordable 3D models.
More Information About 3D Model :
The Robotic-Assisted Surgery (RAS) System represents a pinnacle of modern biomedical engineering, designed to enhance the capabilities of surgeons during complex minimally invasive procedures. This sophisticated surgical arm robot machine consists of multiple articulated limbs equipped with high-precision instruments and advanced imaging sensors. The system operates via a master-slave configuration, where a lead surgeon controls the mechanical arms from a remote console, translating hand movements into micro-movements within the patient's body with tremor filtration and high dexterity. Each robotic arm is engineered with multiple degrees of freedom, allowing for maneuvers that exceed the natural range of motion of the human wrist. This level of precision is critical for delicate tasks such as suturing, tissue dissection, and vascular anastomosis in fields like urology, gynecology, and cardiothoracic surgery. The integration of high-definition 3D visualization provides the surgical team with an immersive view of the operative field, improving depth perception and spatial awareness. By facilitating smaller incisions, the RAS system significantly reduces patient trauma, blood loss, and recovery times compared to traditional open surgery. This 3D model accurately depicts the industrial design and mechanical complexity of such systems, featuring the central cart, articulate joints, and interchangeable surgical end-effectors used in contemporary operating theaters.
KEYWORDS: Surgery, Robot, Medical, Surgical, Arm, RAS, Technology, Healthcare, Precision, Operating, Hospital, System, Laparoscopic, Digital, Clinical, Equipment, Device, Automation, Machine, Biotech