DEVELOPMENT OF X-RAY IMAGING TECHNIQUE WITH CHEMICAL PRODUCT BY USING FLUOROSCOPIC IMAGES RECORDED WITH DIGITAL CAMERA Research Article

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Panapon Savirot
Yanisa Saenjaiwut
Wanatchaphorn Phueaphae
Suprawee Phaluek

Abstract

The objectives of this research were to 1) This research aims to develop of radiographic imaging technique with chemical product by using Fluoroscopic images recorded with digital camera and 2) Analyzed radiographic imaging by Image J and 3) To record attenuation coefficient value. Materials: X-ray generator, fluorescence screen, Digital camera, Computer device and solution sample consist of BaSO4, CaCl2, CaCO3, MgCl2, MgSO4 and CaSO4.  Method: The distance from X-ray generator to fluorescence screen was set at 100 cm, varying voltage 90-130 kV, parameters of digital camera were set at F=4.0 and shutter time=2.0, 2.5, 3.2s. We placed the bottom of sample in front of fluorescence screen was recorded radiographic imaging by computer device and analyzed radiographic imaging by attenuation coefficient value. Result The radiographic images have lower level of attenuation coefficient at high voltage. The result was the more concentrated sample solution the lower level of attenuation. Conclusion: It is important to adjust quality balance between all the settings of X-ray generator and digital camera by the term of attenuation coefficient value. The radiographic imaging system proposed in this research was an important basis for a development image processing system in the future.

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How to Cite
[1]
P. Savirot, Y. . Saenjaiwut, W. . Phueaphae, and S. . Phaluek, “DEVELOPMENT OF X-RAY IMAGING TECHNIQUE WITH CHEMICAL PRODUCT BY USING FLUOROSCOPIC IMAGES RECORDED WITH DIGITAL CAMERA: Research Article”, JSCI-SBU, vol. 5, no. 1, pp. 1–10, Jun. 2025.
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Research Article

References

N. Kaewmai, “Development of x-ray imaging technique recorded by digital camera for liquid screening,” M.S. thesis, Chulalongkorn Univ., Bangkok, Thailand. (in Thai)

P. Orachorn, “Development of technique for screening liquids in unopened bottle using low energy x-ray transmission,” D.Eng. thesis, Chulalongkorn Univ., Bangkok, Thailand. (in Thai)

T. Atichatkul, “X-ray attenuation coefficient of PU/BaSO4 composite sheet,” Thai J. KMUTNB, vol.27, pp. 159–168, Apr. 2017. (in Thai)

P. Gajaseni, “Monte Carlo simulation of x-ray generation in plasma focus machine,” M.S. thesis, Chulalongkorn Univ., Bangkok, Thailand. (in Thai)

P. Savirot, “Development of X-ray computed tomography technique by using fluoroscopic images recorded with digital camera,” M.Sc. thesis, Chulalongkorn Univ., Bangkok, Thailand.

J. Jamnian, “Calculation of concrete wall thickness for industrial x-ray radiography room,” M.S. thesis, Chulalongkorn Univ., Bangkok, Thailand.

S. Tippayakaison, “Development of a high resolution scanning densitometer system for computed tomography,” M.S. thesis, Chulalongkorn Univ., Bangkok, Thailand.

C. Polee, “Comparative investigation and improvement of film radiography speed for non-destructive inspection of industrial specimens,” D.Eng. thesis, Chulalongkorn Univ., Bangkok, Thailand.

V. P. Singh, “Determination of mass attenuation coefficient for some polymers using Monte Carlo simulation,” Vacuum, vol. 119, pp. 284–288, 2015. doi: 10.1016/j.vacuum.2015.06.009

Y. Wattanasriroj, “The effect of tube voltage and current on the CT number and relative electron density in computed tomography simulator,” Thai J. Radiol. Technol., vol. 48, pp. 18–28, 2023. (in Thai)

P. Pairodsantikul, “The development of application for general radiography in skull,” Thai J. Radiol. Technol., vol. 48, pp. 60–70, 2023. (in Thai)

R. Wongsoong, “Patient radiation dose in transcatheter arterial chemoembolization for hepatocellular carcinoma using the hybrid angiography-computed tomography,” Thai J. Radiol. Technol., vol. 49, pp. 86–94, 2023. (in Thai)

T. Rosenfeld, “Medipix detectors in radiation therapy for advanced quality-assurance,” Radiat. Meas., vol. 130, pp. 1–8, 2020. doi: 10.1016/j.radmeas.2019.106228

A. Fujiwara, “Tailor-made 3D dosimeter using 3D printing technology,” Radiat. Meas., vol. 135, pp. 1–3, 2020. doi: 10.1016/j.radmeas.2020.106359

S. Medici, “Use of portable gamma spectrometers for triage monitoring following the intake of conventional and novel radionuclides,” Radiat. Meas., vol. 136, pp. 1–8, 2020. doi: 10.1016/j.radmeas.2020.106374