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About radiation

Nuclear Free World Foundation > About radiation

Radiation is a phenomenon in which energy is transferred through space through electromagnetic waves or charged particles. This energy may be various sources: from radioactive substances to cosmic rays. Process radiation is associated with the movement of charged particles such as electrons or nuclear particles.

Types of radiation

1. Alpha Radiation: Alpha particles are made up of two protons and two neutrons. Due to their mass and charge, they have low penetrating power and can be stopped by a sheet of paper or even leather.

2. Beta radiation: Beta particles are electrons or positrons ejected from radioactive nuclei. They have more energy and penetrate further, but they can be stopped by medium density materials.

3. Gamma Radiation: Gamma photons are high energy electromagnetic waves. They are highly penetrating and can only be stopped by dense materials such as lead or concrete.

Radiation research

Radiation studies allow us to better understand its properties, effects and ways of protection. Radiation finds application in different areas:

1. Medicine: X-rays are used to diagnose diseases and radiotherapy is used to treat cancer. Medical technology allows precise control of the dose of radiation to minimize risks.

2. Energy: Nuclear reactions are used in nuclear power plants to produce energy. Security and control are key aspects in this area.

3. Scientific research: Radiation is used in astronomy to study space objects and in physics to study the properties of matter at the micro level

Exposure to radiation

Radiation can have both positive and negative effects on the environment and health.

1. Benefits: In medicine, radiation helps diagnose and treat diseases. It is also used for space exploration and basic science.

2. Negative effects: High doses of radiation can damage DNA and cause mutations, which can lead to the development of cancer. Hence the importance of strict dose control and radiation protection.

Radiation protection

Radiation protection plays an important role in reducing health and environmental risks. Effective protection methods include the use of protective shields, radiation dose control, and training of workers handling radioactive materials.

Conclusion

Radiation is a complex and interesting phenomenon that plays an important role in our lives. Understanding the basics of radiation, its types, effects and methods of protection allows us to use this phenomenon in scientific, medical and technological fields without negative consequences. It is important to continue research to better understand radiation and use it to our advantage.

What is Radiation?

Radiation is energy that moves from one place to another in a form that can be described as waves or particles. We are exposed to radiation in our everyday life. Some of the most familiar sources of radiation include the sun, microwave ovens in our kitchens and the radios we listen to in our cars. Most of this radiation carries no risk to our health. But some does. In general, radiation has lower risk at lower doses but can be associated with higher risks at higher doses. Depending on the type of radiation, different measures must be taken to protect our bodies and the environment from its effects, while allowing us to benefit from its many applications.

What is radiation good for? – Some examples

  • Health: thanks to radiation, we can benefit from medical procedures, such as many cancer treatments, and diagnostic imaging methods.
  • Energy: radiation allows us to produce electricity via, for example, solar energy and nuclear energy.
  • Environment and climate change: radiation can be used to treat wastewater or to create new plant varieties that are resistant to climate change.
  • Industry and science: with nuclear techniques based on radiation, scientists can examine objects from the past or produce materials with superior characteristics in, for instance, the car industry. 

If radiation is beneficial, why should we protect ourselves from it?

Radiation has many beneficial applications but, as in every activity, when there are risks associated with its use specific actions need to be put in place to protect the people and the environment. Different types of radiation require different protective measures: a low energy form, called “non-ionizing radiation”, may require fewer protective measures than the higher energy “ionizing radiation”. The IAEA establishes standards for protection of the people and the environment in relation to the peaceful use of ionizing radiation – in line with its mandate.

Types of radiation

Non-ionizing radiation

Non-ionizing radiation is lower energy radiation that is not energetic enough to detach electrons from atoms or molecules, whether in matter or living organisms. However, its energy can make those molecules vibrate and so produce heat. This is, for instance, how microwave ovens work.

For most people, non-ionizing radiation does not pose a risk to their health. However, workers that are in regular contact with some sources of non-ionizing radiation may need special measures to protect themselves from, for example, the heat produced.

Some other examples of non-ionizing radiation include the radio waves and visible light. The visible light is a type of non-ionizing radiation that the human eye can perceive. And the radio waves are a type of non-ionizing radiation that is invisible to our eyes and other senses, but that can be decoded by traditional radios.

Ionizing radiation

Ionizing radiation is a type of radiation of such energy that it can detach electrons from atoms or molecules, which causes changes at the atomic level when interacting with matter including living organisms. Such changes usually involve the production of ions (electrically charged atoms or molecules) – hence the term “ionizing” radiation.

In high doses, ionizing radiation can damage cells or organs in our bodies or even cause death. In the correct uses and doses and with the necessary protective measures, this kind of radiation has many beneficial uses, such as in energy production, in industry, in research and in medical diagnostics and treatment of various diseases, such as cancer. While regulation of use of sources of radiation and radiation protection are national responsibility, the IAEA provides support to lawmakers and regulators through a comprehensive system of international safety standards aiming to protect workers and patients as well as members of the publicand the environment from the potential harmful effects of ionizing radiation.

The science behind radioactive decay and the resulting radiation

 

Ionizing radiation can originate from, for example, unstable (radioactive) atoms as they are transitioning into a more stable state while releasing energy.

Most atoms on Earth are stable, mainly thanks to an equilibrated and stable composition of particles (neutrons and protons) in their centre (or nucleus). However, in some types of unstable atoms, the composition of the number of protons and neutrons in their nucleus does not allow them to hold those particles together. Such unstable atoms are called “radioactive atoms”. When radioactive atoms decay, they release energy in the form of ionizing radiation (for example alpha particles, beta particles, gamma rays or neutrons), which, when safely harnessed and used, can produce various benefits.

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