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February 16, 2026Indian journal of radiology and imaging - new series/Indian journal of radiology and imaging/Indian Journal of Radiology & Imaging0 citationsOpen Access

Measurement of Scattered Radiation Using Ionization Chamber-Based Survey Meter with Variable Phantom Thickness and Kilovoltage in a Digital Radiographic Room

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SYSantosh YadavRSRohit SharmaAMAtul Mishra

Key Points

  • This research aims to quantify scattered radiation exposure during X-ray procedures in a digital radiographic room.
  • Measured scatter radiation using an ionization chamber survey meter.
  • Evaluated different kilovoltage settings (50–125 kVp) and phantom thicknesses (5–25 cm) using various phantoms.
  • Maintained constant mAs and source-to-image distances during measurements.
  • Higher kilovoltage and increased phantom thickness resulted in greater scatter radiation.
  • In a 25-cm water phantom, scatter increased from 0.38 mR at 50 kVp to 2.05 mR at 125 kVp.
  • Similar trends observed in the radiographic phantom with varying thicknesses.

Abstract

Abstract Scattered radiation in diagnostic radiology is a source of radiation exposure to medical staff. It mostly originates from patient interaction during X-ray exposure. Its intensity is determined by technical conditions, including kilovoltage (kVp), phantom thickness, and field size. This research endeavors to quantify scatter radiation with an ionization chamber-based survey meter for different conditions of kVp and phantom thickness to assess its effect in a digital radiographic room. A GE Definium XR-8000 digital X-ray machine served as the source of radiation. Scattered radiation at a standard distance and angle was measured with the help of the Fluke 451P ionization chamber-based survey meter. Both a basic water phantom and a general radiographic polymethyl methacrylate phantom were employed with varying thicknesses (5–25 cm and 10–40 mm, respectively). Scattered radiation was measured across different tube voltages (50–125 kVp), while mAs and source-to-image distance were kept constant. Scattered radiation was proportional to both tube voltage and phantom thickness. In 25-cm water phantom thickness, scatter went from 0.38 mR at 50 kVp to 2.05 mR at 125 kVp. A rise in water phantom thickness from 5 to 25 cm at 80 kVp revealed a rise in scatter from 1.67 to 1.9 mR. The radiographic phantom exhibited a similar trend. Present values were higher as compared with values in literature, because the mAs setting was higher for this investigation. This study shows increased scatter with higher kVp and phantom thickness, emphasizing optimized parameters and ALARA (As Low As Reasonably Achievable) for radiation safety.

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Cite This Study

Yadav et al. (2026) studied this question.

synapsesocial.com/papers/69926503eb1f82dc367a0cf1https://doi.org/10.1055/s-0046-1815933
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