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Gauss's Law: Cylindrical Symmetry01:20

Gauss's Law: Cylindrical Symmetry

A charge distribution has cylindrical symmetry if the charge density depends only upon the distance from the axis of the cylinder and does not vary along the axis or with the direction about the axis. In other words, if a system varies if it is rotated around the axis or shifted along the axis, it does not have cylindrical symmetry. In real systems, we do not have infinite cylinders; however, if the cylindrical object is considerably longer than the radius from it that we are interested in,...
Trigonometric Substitution01:23

Trigonometric Substitution

Trigonometric substitution is a technique used to simplify integrals that contain square root expressions involving quadratic forms. It is particularly effective when the integrand includes terms resembling those found in standard geometric equations, such as circles or ellipses.Molniya satellites follow highly elliptical orbits, repeatedly sweeping out the same regions of space as they revolve around Earth. To estimate the area enclosed by such an orbit, the path is modeled as an ellipse...
Gauss's Law: Spherical Symmetry01:26

Gauss's Law: Spherical Symmetry

A charge distribution has spherical symmetry if the density of charge depends only on the distance from a point in space and not on the direction. In other words, if the system is rotated, it doesn't look different. For instance, if a sphere of radius R is uniformly charged with charge density ρ0, then the distribution has spherical symmetry. On the other hand, if a sphere of radius R is charged so that the top half of the sphere has a uniform charge density ρ1 and the bottom half has a uniform...
Spherical and Cylindrical Capacitor01:26

Spherical and Cylindrical Capacitor

A spherical capacitor consists of two concentric conducting spherical shells of radii R1 (inner shell) and R2 (outer shell). The shells have equal and opposite charges of +Q and −Q, respectively. For an isolated conducting spherical capacitor, the radius of the outer shell can be considered to be infinite.
Conventionally, considering the symmetry, the electric field between the concentric shells of a spherical capacitor is directed radially outward. The magnitude of the field, calculated by...
Electric Field of a Non Uniformly Charged Sphere01:22

Electric Field of a Non Uniformly Charged Sphere

Gauss's law states that the electric flux through any closed surface equals the net charge enclosed within the surface. This law is beneficial for determining the expressions for the electric field for a particular charge distribution if the electric flux is known.
Consider a non-uniformly charged sphere, for which the density of charge depends only on the distance from a point in space and not on the direction. Such a sphere has a spherically symmetrical charge distribution. Here, the electric...
Spherical Coordinates01:23

Spherical Coordinates

Spherical coordinate systems are preferred over Cartesian, polar, or cylindrical coordinates for systems with spherical symmetry. For example, to describe the surface of a sphere, Cartesian coordinates require all three coordinates. On the other hand, the spherical coordinate system requires only one parameter: the sphere's radius. As a result, the complicated mathematical calculations become simple. Spherical coordinates are used in science and engineering applications like electric and...

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Related Experiment Video

Updated: May 14, 2026

Studying Soft-matter and Biological Systems over a Wide Length-scale from Nanometer and Micrometer Sizes at the Small-angle Neutron Diffractometer KWS-2
11:27

Studying Soft-matter and Biological Systems over a Wide Length-scale from Nanometer and Micrometer Sizes at the Small-angle Neutron Diffractometer KWS-2

Published on: December 8, 2016

The solid angle subtended by a well-type detector and a cylindrical source.

G Nicolaou1

  • 1Demokritus University of Thrace, School of Engineering, Department of Electrical and Computer Engineering, Laboratory of Nuclear Technology, Kimmeria Campus, Xanthi, Greece. nicolaou@ee.duth.gr

Applied Radiation and Isotopes : Including Data, Instrumentation and Methods for Use in Agriculture, Industry and Medicine
|January 29, 2013
PubMed
Summary

This study uses a Monte Carlo method to calculate the geometrical efficiency of a sodium iodide (NaI) detector. Self-absorption significantly impacts efficiency, especially below 1 MeV, crucial for accurate radioactivity quantification.

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A Basic Positron Emission Tomography System Constructed to Locate a Radioactive Source in a Bi-dimensional Space
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Related Experiment Videos

Last Updated: May 14, 2026

Studying Soft-matter and Biological Systems over a Wide Length-scale from Nanometer and Micrometer Sizes at the Small-angle Neutron Diffractometer KWS-2
11:27

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A Basic Positron Emission Tomography System Constructed to Locate a Radioactive Source in a Bi-dimensional Space
14:19

A Basic Positron Emission Tomography System Constructed to Locate a Radioactive Source in a Bi-dimensional Space

Published on: February 1, 2016

Area of Science:

  • Nuclear Physics
  • Radiation Detection and Measurement

Background:

  • Accurate determination of geometrical efficiency is crucial for radioactivity quantification.
  • Well-type detectors, like sodium iodide (NaI), are commonly used in radiation measurements.
  • Understanding self-absorption effects is vital for precise measurements, particularly with volumetric sources.

Purpose of the Study:

  • To evaluate the solid angle subtended between a well-type NaI detector and a cylindrical source using a Monte Carlo approach.
  • To investigate the impact of self-absorption on geometrical efficiency for various gamma-ray energies, source matrices, and radii.
  • To assess the necessity of considering self-absorption in the absolute quantification of volumetric radioactive sources.

Main Methods:

  • A Monte Carlo simulation technique was employed, focusing on total variance reduction.
  • The geometrical efficiency (εg) was calculated for point and volumetric cylindrical radioactive sources within a well-type NaI detector.
  • Self-absorption effects were systematically studied across different gamma-ray energies (up to 1 MeV), source matrices, and source radii.

Main Results:

  • The Monte Carlo method yielded geometrical efficiency values within 0.7% of literature data.
  • Self-absorption was found to be highly significant for gamma-ray energies below 300 keV, irrespective of source matrix and radius.
  • For larger radius volumetric sources, self-absorption remained significant even up to 1 MeV.

Conclusions:

  • The Monte Carlo approach provides accurate geometrical efficiency calculations for well-type NaI detectors.
  • Self-absorption significantly influences geometrical efficiency, particularly at lower gamma-ray energies and for larger volumetric sources.
  • Accurate absolute quantification of volumetric radioactive sources necessitates the consideration of self-absorption effects on the geometrical factor.