Amid the trend of medical endoscope diagnosis and treatment evolving toward "high precision, three-dimensionalization, and intelligence," endoscope camera modules, as the "visual core" of the equipment, their technological breakthroughs directly determine the accuracy of diagnosis and treatment as w
On April 8th, the 91st China International Medical Equipment Fair (CMEF) opened at the National Exhibition and Convention Center (Shanghai). Shenzhen SonoScape Medical made a grand appearance with a series of smart endoscope innovations, including the debut of its new-generation smart endoscope plat
Recently, the news that the Second Affiliated Hospital of University of South China completed a high-difficulty skull base minimally invasive surgery using Karl Storz’s 4K ultra-high-definition (UHD) endoscope system has once again brought high-end endoscope technology into the industry spotlight. A
Early in a routine gastrointestinal screening, a subtle mucosal lesion went unnoticed on a conventional low-resolution endoscope.
Medical imaging devices are becoming smaller, smarter, and more integrated than ever.
Across many regions of the world, especially in developing countries and isolated communities, access to advanced medical diagnostics depends on how effectively local clinics can connect with remote specialists.
Advances in medical imaging are redefining what surgeons can achieve during minimally invasive procedures.
In modern clinical practice, imaging precision defines treatment accuracy. Choosing the right Medical Endoscope determines how well surgeons and diagnosticians visualize tissue structures, identify abnormalities, and perform minimally invasive procedures safely.
photo introduction photo introduction photo introduction photo introduction photo introduction photo introduction photo introduction photo introduction photo introduction photo introduction photo introduction photo introductionphoto introduction photo introduction photo introduction photo introducti
As a core tool in modern dental diagnosis and treatment, the performance of oral endoscopes directly depends on the technical level of their core component—the camera module. The OCH2B30 camera module launched by OmniVision Group in 2024 (with ultra-small size of 2.6mm×2.6mm, 2-megapixel resolution,
As the core optical component of an endoscope camera module, the lens's protective performance directly determines imaging stability and equipment service life. In scenarios pursuing miniaturization (e.g., lenses with a diameter of 1.5mm), adding a steel shell restricts spatial adaptability. Thus, a
As a key tool in dental diagnosis and treatment, dental endoscopes need to achieve high-definition imaging in the narrow spaces of the oral cavity (such as the posterior dental region and gingival sulcus), while meeting the requirements of frequent disinfection, flexible operation, and medical compl
As a key tool in dental diagnosis and treatment, dental endoscopes need to achieve accurate detail capture (such as early dental caries and plaque detection) in the narrow, low-light oral environment, while meeting requirements for ergonomic operation, medical compliance, and adaptability to diagnos
As a professional platform focused on robotic surgery team training, the VirtaMed RoboS Simulator derives its core value from creating a highly realistic simulation environment that enables seamless transition from skill training to clinical application. The endoscope imaging system, as the core car
Separated endoscope camera modules, characterized by the independent layout of "lens - DSP board", are widely used in scenarios such as medical minimally invasive procedures and industrial narrow-space inspection. The connection method between the lens and the DSP board directly affects the module’s
In the design of separated endoscope camera modules, the connection method between the lens and the DSP board directly affects the product’s miniaturization capability, transmission stability, and scenario adaptability. Currently, the mainstream connection methods—wire bonding, MIPI/DVP interface, a
The imaging quality of endoscope camera modules heavily depends on lighting conditions. Take the split-type module equipped with the OmniVision OH01A10 sensor as an example: its F4.0 aperture and 1.116μm pixels can handle regular lighting, but whether to opt for the integrated 4 0201-type LED fill l
Endoscopic camera modules, as the "visual core" of minimally invasive medical procedures and precision industrial inspections, require their structural design to balance imaging performance, environmental adaptability, and application-specific needs. The steel shell, an optional protective component
Modern medicine has transformed the way doctors diagnose and treat conditions inside the human body. Among the most powerful diagnostic tools available today is the Endoscope Camera, a device that allows physicians to look directly into internal organs without the need for large surgical incisions. From digestive health monitoring to preventive cancer screening, the endoscope has become essential for accurate, minimally invasive diagnostics.
In the rapidly evolving field of medical endoscopy, 4K ultra-high-definition display systems have become standard for high-end equipment. However, the image quality foundation of the entire system depends not only on the main controller or monitor, but more critically on its foundational "eye" – the
| Availability: | |
|---|---|
| Quantity: | |
SF-C0310TV-D4.6
SINCEREFIRST
This ultra-compact 4.6mm VGA 720P diameter endoscope camera module with LED, integrates a high-performance VGA sensor with 720P resolution CMOS technology, delivering exceptional image clarity for critical medical examinations. The optical system features adjustable focus capability spanning 10mm to 60mm working distance, with optimized depth of field performance throughout this operational range. Four high-efficiency 0402 white LEDs provide uniform illumination up to 3000K color temperature, while the 90° wide-angle lens combined with IP67 certified waterproof construction ensures reliable performance in liquid environments. | ![]() |
Ultra-slim 4.6mm profile enables access to narrow anatomical passages.
Advanced CMOS sensor delivers 1280×720 resolution at 30fps.
Adjustable focus mechanism maintains sharp imaging from 10mm to 60mm.
Integrated LED lighting system with automatic brightness adjustment.
Corrosion-resistant stainless steel housing with medical-grade silicone seals.
1. ENT Procedures: Sinus cavity exploration, laryngeal examination, and nasal polyp detection with specialized disposable sterile sleeves.
2. Surgical Guidance: Laparoscopic cholecystectomy assistance and arthroscopic joint space visualization.
3. Veterinary Diagnostics: Equine airway endoscopy and reptile digestive tract examination.
Product Name | Medical Endoscope Camera Module |
Features | Micro Endoscope Camera Module |
Led | 0402 White Led |
Sensor | VGA |
Focusing Range | 10mm-60mm |
Waterproof | IP67 |
Focal Length | 1.08mm |
Trademark | SINCERE FIRST |
F Number | 2.8 |
Fov(D) | 90° |
FAQ
1. How to evaluate the cost performance of the module?
For comprehensive resolution, durability, and after-sales support (such as medical modules that require calibration services from manufacturers), industrial scenarios can prioritize MTBF (mean time to failure) indicators.
2. Can I buy a used medical endoscope module?
Sterilization history, sensor wear (e.g. number of hours on) must be confirmed, and must be re-certified by the original manufacturer, otherwise there is a risk of cross-infection or performance.
3. What is the difference between medical and industrial endoscope modules?
The medical module emphasizes biocompatibility, sterilization and high image quality, and needs to comply with FDA/CE certification; Industrial modules focus on durability (such as corrosion protection), wide temperature operation (-20°C to 70°C), and special light sources (such as UV).
4. Can the endoscope camera module be equipped with both LED beads and optical fiber supplementary lighting simultaneously?
The endoscope camera module can be equipped with both LED beads and optical fiber supplementary lighting systems simultaneously. LED beads are usually integrated as the basic lighting source at the front end of the module, while fiber optic supplementary lighting is connected to a high-brightness cold light source (such as xenon lamp or laser light source) through a dedicated interface. The two can achieve coordinated supplementary lighting through time-sharing multiplexing or different spectral combinations. This hybrid lighting solution is mostly adopted for industrial-grade modules, while for medical modules, attention should be paid to the biocompatibility packaging of the optical fiber interface. The specific implementation needs to consider engineering issues such as power supply management, heat dissipation design and optical path coupling. Usually, this kind of solution requires deep customization and the price will be relatively high.
This ultra-compact 4.6mm VGA 720P diameter endoscope camera module with LED, integrates a high-performance VGA sensor with 720P resolution CMOS technology, delivering exceptional image clarity for critical medical examinations. The optical system features adjustable focus capability spanning 10mm to 60mm working distance, with optimized depth of field performance throughout this operational range. Four high-efficiency 0402 white LEDs provide uniform illumination up to 3000K color temperature, while the 90° wide-angle lens combined with IP67 certified waterproof construction ensures reliable performance in liquid environments. | ![]() |
Ultra-slim 4.6mm profile enables access to narrow anatomical passages.
Advanced CMOS sensor delivers 1280×720 resolution at 30fps.
Adjustable focus mechanism maintains sharp imaging from 10mm to 60mm.
Integrated LED lighting system with automatic brightness adjustment.
Corrosion-resistant stainless steel housing with medical-grade silicone seals.
1. ENT Procedures: Sinus cavity exploration, laryngeal examination, and nasal polyp detection with specialized disposable sterile sleeves.
2. Surgical Guidance: Laparoscopic cholecystectomy assistance and arthroscopic joint space visualization.
3. Veterinary Diagnostics: Equine airway endoscopy and reptile digestive tract examination.
Product Name | Medical Endoscope Camera Module |
Features | Micro Endoscope Camera Module |
Led | 0402 White Led |
Sensor | VGA |
Focusing Range | 10mm-60mm |
Waterproof | IP67 |
Focal Length | 1.08mm |
Trademark | SINCERE FIRST |
F Number | 2.8 |
Fov(D) | 90° |
FAQ
1. How to evaluate the cost performance of the module?
For comprehensive resolution, durability, and after-sales support (such as medical modules that require calibration services from manufacturers), industrial scenarios can prioritize MTBF (mean time to failure) indicators.
2. Can I buy a used medical endoscope module?
Sterilization history, sensor wear (e.g. number of hours on) must be confirmed, and must be re-certified by the original manufacturer, otherwise there is a risk of cross-infection or performance.
3. What is the difference between medical and industrial endoscope modules?
The medical module emphasizes biocompatibility, sterilization and high image quality, and needs to comply with FDA/CE certification; Industrial modules focus on durability (such as corrosion protection), wide temperature operation (-20°C to 70°C), and special light sources (such as UV).
4. Can the endoscope camera module be equipped with both LED beads and optical fiber supplementary lighting simultaneously?
The endoscope camera module can be equipped with both LED beads and optical fiber supplementary lighting systems simultaneously. LED beads are usually integrated as the basic lighting source at the front end of the module, while fiber optic supplementary lighting is connected to a high-brightness cold light source (such as xenon lamp or laser light source) through a dedicated interface. The two can achieve coordinated supplementary lighting through time-sharing multiplexing or different spectral combinations. This hybrid lighting solution is mostly adopted for industrial-grade modules, while for medical modules, attention should be paid to the biocompatibility packaging of the optical fiber interface. The specific implementation needs to consider engineering issues such as power supply management, heat dissipation design and optical path coupling. Usually, this kind of solution requires deep customization and the price will be relatively high.
