QHYCCD QHY461C PRO Color CMOS Camera
- 100 Megapixel Medium Format Sensor
- 44mm x 33mm Sensor Size
- Native 16-bit A/D Conversion
- Back-Side Illuminated (BSI) CMOS Architecture
- Dual 10 GigaE High-Speed Data Ports
- Hybrid Air and Liquid Cooling System
Simulez le champ de vision exact de QHYCCD QHY461C PRO Color CMOS Camera avec votre télescope.
Lancer l'assistant d'imagerieThe QHY461C PRO integrates a colossal 100-megapixel medium format sensor, covering a vast 44mm x 33mm area for professional survey and imaging applications. Its back-illuminated architecture and native 16-bit A/D converter capture enormous, high-dynamic-range fields of view, while the dual 10 GigaE interface provides the necessary throughput to handle the massive data stream from its 100 million pixels.
At the core of the QHY461C PRO is a scientific-grade 100-megapixel color CMOS sensor. With a physical size of 44mm x 33mm, this sensor is built for wide-field survey telescopes and large-format astrographs, capable of capturing entire nebula complexes or galaxy clusters in a single frame with immense resolution. The back-illuminated (BSI) design maximizes photon collection, essential for detecting faint signals in astronomical and satellite tracking applications.
A 100-megapixel sensor generates an immense amount of data with every exposure. To prevent data bottlenecks and enable high-speed applications like satellite tracking, the QHY461C PRO is equipped with two 10 Gigabit Ethernet ports. This dual-channel interface ensures the camera can read out the full sensor resolution at a rate that keeps pace with demanding scientific requirements, transferring huge files to your control system efficiently.
Maintaining a stable, low sensor temperature is critical for long-exposure imaging and repeatable scientific measurements. The QHY461C PRO features a robust cooling system that supports both high-efficiency air cooling and a liquid cooling option for maximum thermal stability. This hybrid approach ensures minimal thermal noise during data acquisition, a necessity for achieving the highest possible signal-to-noise ratio.
The QHY461C PRO is engineered for adaptability across various scientific fields. It features eight distinct readout modes, allowing you to optimize the camera's behavior for specific tasks, from high-speed space object surveys to low-noise, long-exposure deep-sky imaging. This flexibility ensures you can configure the sensor to prioritize speed, dynamic range, or the lowest possible read noise depending on your target.
The primary distinction between the QHY461C Pro and its sibling, the QHY411 Pro, lies in sensor size and resolution. Your choice depends on the specific requirements of your optical system and imaging goals.
The QHY461C PRO's massive 44mm x 33mm sensor allows it to capture extremely wide fields of view. This is critical for survey applications like searching for asteroids, tracking space debris, or mapping large areas of the Milky Way, as it reduces the number of individual frames needed to cover a target area.
A native 16-bit A/D converter provides a vast dynamic range, allowing the QHY461C PRO to capture subtle details in faint nebulosity and fine gradations in bright galactic cores within the same exposure. This is essential for creating high-fidelity images of objects with a wide range of brightness levels, like the Orion Nebula (M42).
Reading out a 100-megapixel sensor generates a huge amount of data. A single standard interface would be a significant bottleneck. The dual 10 GigaE ports work in tandem to provide the high-speed data transfer necessary to move large files quickly, enabling faster frame rates for applications like satellite tracking and preventing delays between exposures.
For tracking a fast-moving satellite, you would select one of the eight readout modes optimized for speed, accepting slightly higher read noise to achieve the necessary frame rate. For imaging the Andromeda Galaxy (M31), you would choose a mode optimized for the lowest possible read noise and highest dynamic range, allowing for long, deep exposures to capture faint outer spiral arms.
To take full advantage of the QHY461C PRO's large sensor, you need a telescope with a large, flat, and well-corrected image circle. Professional instruments like large Ritchey-Chrétien telescopes, wide-field refractors with dedicated field flatteners, or systems like a Rowe-Ackermann Schmidt Astrograph (RASA) are ideal candidates.
The hybrid system offers maximum flexibility. Air cooling is convenient for many situations, while liquid cooling provides superior thermal stability, especially in warm environments or during very long imaging sequences. This ensures sensor temperature remains constant, which is critical for accurate calibration with dark frames.
| Model | QHY461C PRO |
| Sensor Class | Class 1 |
| Resolution | 100 Megapixels |
| Sensor Size | 44mm x 33mm |
| Chroma | Color |
| Sensor Architecture | Back-Side Illuminated (BSI) CMOS |
| A/D Converter | Native 16-bit |
| Data Interface | 2 x 10 GigaE |
| Cooling System | Hybrid Air and Liquid Cooling |
| Readout Modes | 8 |
This product does not ship with any accessories by default. Please consult your telescope's requirements for appropriate adapters and power supplies.