SWIR051AU SWIR Camera Imaging of Liquid Position in Opaque Plastic Tube

Author:Attostek    ·    Release Date :06/21/2026    ·    Category :Industrial Inspection

Project Name: Liquid Position Imaging in Opaque Container Using SWIR051AU Camera
Test Date: May 2026

I. Test Objective

To verify the capability of the Attostek SWIR051AU SWIR camera to perform non-contact imaging detection of internal liquid level height through the wall of an opaque plastic tube, and to compare the results with visible-light camera imaging, while evaluating the effectiveness of supplementary light sources and optical filters in improving imaging contrast.

II. Application Background and Principle

2.1 Application Background

In the production processes of chemical, pharmaceutical, food and beverage, and daily chemical industries, liquid level detection is a critical step in quality control. However, many industrial pipelines and containers are made of opaque plastic materials to protect the contents from light exposure or to meet structural strength requirements. Conventional visible-light cameras cannot penetrate such opaque tube walls, and the human eye cannot directly observe the internal liquid level.

2.2 Detection Principle

Most plastics that are opaque in visible light have good transmittance in the short-wave infrared band. Water accounts for the majority of the liquid inside industrial pipelines. In this experiment, water was selected as the internal liquid. Water can absorb infrared light at wavelengths around 1450 nm. When captured by a SWIR camera, water molecules strongly absorb light in this band, resulting in weak reflected signals and appearing as dark areas in the image. In areas without liquid, SWIR light passes through the plastic tube wall and appears as bright areas. The liquid level height can be clearly determined by the boundary between bright and dark regions, enabling non-contact, non-destructive real-time detection. In addition, infrared light sources or infrared filters can be used to enhance the reflection intensity difference between different regions.

2.3 Camera Performance Requirements

  • High signal-to-noise ratio (SNR)
  • High quantum efficiency (QE), especially near 1450 nm

Specifications of the SWIR051AU camera used in this report:

  • Maximum SNR: 52.6 dB
  • Quantum efficiency at 1450 nm: approximately 72%

III. Test Equipment and Parameters

Equipment/ComponentModel/Specification
SWIR CameraAttostek SWIR051AU
Visible-Light CameraAttostek VIS028CU3.2-NC
Light Source1300 nm infrared light source
Optical Filter1300 nm infrared filter
Test SampleOpaque plastic tube containing water
Environmental ConditionsIndoor environment, no special light source except experimental fill light, temperature 25°C

IV. Test Procedure

  • Fix the SWIR051AU camera and adjust the position of the plastic tube so that it is centered in the lens field of view.
  • Manually adjust the camera focus and aperture to obtain a clear image.
  • Select an appropriate exposure time (manual or automatic mode).
  • Capture images with the SWIR051AU camera under the following conditions: no filter and no fill light, with 1300 nm fill light, with 1300 nm filter, and with both 1300 nm filter and fill light.
  • Capture a reference image using a visible-light camera (VIS028CU3.2-NC) from the same position.

V. Test Results

5.1 Image Observation Results

  • Visible-light camera capture: The plastic tube is completely opaque; the internal liquid cannot be seen, and the image shows only the tube surface.
  • SWIR051AU direct capture: The liquid area inside the plastic tube is clearly visible as a dark region, while the area without liquid (the top of the tube) appears as a bright region. The liquid level boundary is clearly distinguishable. In addition, residual liquid above the tube can also be observed with equal clarity.
  • With 1300 nm fill light: Overall image brightness is improved, and the contrast between bright and dark areas is enhanced.
  • With 1300 nm filter: Light outside the 1300 nm wavelength is filtered out, enhancing the contrast between bright and dark areas.
  • With filter + fill light: The best imaging quality is achieved, with a clean background and the most distinct liquid level boundary.

5.2 Quantitative Contrast Analysis

To quantitatively evaluate the discriminative capability of liquid level imaging, contrast was calculated using the following formula:

Contrast = (I_max − I_min) / Gray Scale Range

where I_max and I_min are the average gray values of the liquid-free area and the liquid area, respectively, and the gray scale range is 255 for 8-bit images.

Capture ConditionAverage Gray Value (Liquid Area)Average Gray Value (Plastic Tube)Calculated Contrast
SWIR051AU direct capture103.1157.90.21
With 1300 nm fill light77.8138.50.24
With 1300 nm filter58.1103.20.18
With 1300 nm filter and fill light49.9123.70.29

VI. Result Analysis

  • Function verification: The SWIR051AU camera can effectively penetrate the opaque plastic tube, clearly image the liquid inside, and accurately display the liquid level height and liquid residue. The liquid-filled portion appears as a dark area, while the rest appears bright, with a clearly distinguishable liquid level boundary.
  • Performance: The camera has high signal-to-noise ratio, a clean image background, and stable bright-dark boundaries at the liquid level, meeting industrial quality inspection requirements.
  • Optimization recommendation: In practical applications, it is recommended to use both the 1300 nm filter and a fill light of the same band simultaneously to achieve the highest contrast, thereby improving detection stability.

VII. Conclusion

The Attostek SWIR051AU SWIR camera can effectively penetrate opaque plastic tube walls and achieve non-contact imaging detection of liquid level height inside pipelines. Through imaging experiments under different conditions, it was found that the best liquid level image contrast is achieved with the combination of 1300 nm fill light and 1300 nm filter.

The SWIR051AU SWIR camera, with its high signal-to-noise ratio and quantum efficiency, can well meet the application requirements for liquid level detection and liquid residue inspection inside opaque plastic tubes in industrial settings.

Quick Consultation
Do you need more information about this solution?
Contact US
Share To:

latest articles

Five Cooling Temperature Grades for SWIR Cameras

Ⅰ、The Importance of Cooling for SWIR Cameras Signal-to-Noise Ratio (SNR) is a critical parameter that characterizes the imaging performance of SWIR cameras. SWIR cameras use InGaAs as the sensor material, with a typical dark current of 18.75 ke⁻/pixel/s. In comparison, silicon-based detectors at room temperature exhibit a dark current of only about 40 e⁻/pixel/s. Therefore, the SNR of SWIR cameras…
查看详情
As Uvisi064bu10g Camera 1

Single-Photon Imaging Camera Selection Guide: Comparison of Five Solutions — SNSPD / ICCD / EMCCD / sCMOS / APD

Single-photon cameras are imaging devices capable of capturing extremely weak signals at the single-photon level, playing a vital role in fields such as cold atom experiments and single-molecule fluorescence microscopy. After years of technological development, multiple technical approaches have been established, multiple technical approaches have been established, Below is a comprehensive comparison of the five single-photon imaging technologies: Technology TypeWorking…
查看详情
As Uvisi064bu10g Camera 1

Product Recommendation | Newly Upgraded High-Sensitivity sCMOS Camera UVISI064BU10G

I. Product Introduction The AttosTek UVISI064BU10G is a scientific-grade cooled camera equipped with the GSENSE6504BSI image sensor, featuring 4.2 MP resolution and 6.5 μm pixel size. The camera utilizes USB3.2 + 10Gige interfaces and incorporates a built-in cooling system with a temperature differential of approximately 45°C (below ambient temperature), effectively reducing dark current. With its outstanding scientific imaging performance, stable…
查看详情