Hot cell


s are commonly referred to as hot cells. The word "hot" refers to radioactivity.
Hot cells are used in both the nuclear-energy and the nuclear-medicines industries.
They are required to protect individuals from radioactive isotopes by providing a safe containment box in which they can control and manipulate the equipment required.

Nuclear industry

Hot cells are used to inspect spent nuclear fuel rods and to work with other items which are high-energy gamma ray emitters. For instance, the processing of medical isotopes, having been irradiated in a nuclear reactor or particle accelerator, would be carried out in a hot cell. Hot cells are of nuclear proliferation concern, as they can be used to carry out the chemical steps used to extract plutonium from reactor fuel. The cutting of the used fuel, the dissolving of the fuel and the first extraction cycle of a nuclear reprocessing PUREX process would need to be done in a hot cell. The second cycle of the PUREX process can be done in gloveboxes.

Nuclear medicine industry

Hot cells are commonly used in the nuclear medicines industry:
The user must never be subject to shine paths that are emitted from the radioactive isotopes and therefore there generally is heavy shielding around the containment boxes, which can be made out of stainless steel 316 or other materials such as PVC or Corian. This shielding can be ensured by the use of lead or materials such as concrete or even tungsten. The amount of radioactivity present in the hot cell, the energy of the gamma photons emitted by the radioisotopes, and the number of neutrons that are formed by the material will prescribe how thick the shielding must be. For instance a source of cobalt-60 will require thicker shielding than a source of iridium-192 to give the same dose rate at the outer surface of the hot cell. Also if some actinide materials such as californium or spent nuclear fuel are used within the hot cell then a layer of water or polyethylene may be needed to lower the neutron dose rate.

Viewing windows

In order to view what is in the hot cell, cameras can be used or most commonly, lead glass is used.
There are several densities for lead glass, but the most common is 5.2 g/cm3. A rough calculation for lead equivalence would be to multiply the Pb thickness by 2.5. Older hot cells used a ZnBr2 solution in a glass tank to shield against high-energy gamma rays. This shielded the radiation without darkening the glass. This solution also "self-repairs" any damage caused by radiation interaction, but leads to optical distortion due to the difference in optical indices of the solution and glass.

Manipulators

s or tongs are used for the remote handling of equipment inside hot cells, thereby avoiding heavy finger/hand doses.

Gloves

Lead loaded gloves are often used in conjunction with tongs as they offer better dexterity and can be used in low radiation environments. Some companies have developed tungsten loaded gloves which offer greater dexterity than lead loaded gloves, with better shielding than their counterparts. Gloves must be regularly replaced as the chemicals used for the cleaning/sterilisation process of the containments cause considerable wear and tear.

Clean rooms

Hot cells are generally placed in clean rooms with an air classification ranging from D to B. It is extremely rare to find a hot cell which is placed in a class A or unclassified clean room.

Types

Research and development cells

These cells are often used to test new chemistry units or processes. They are generally fairly large as they require flexibility for the use of varying chemistry units which can greatly vary in size. Some cells require remote manipulation.

Stack mini-cells

This type of hot cell is used purely for production of radiopharmaceuticals. A chemistry unit is placed in each cell, the production process is initiated and once finished, the cells are left closed for a minimum of 6 hours allowing the radiation to decrease to a safe level. No Manipulation is necessary here.

Production and dispense cells

Cells used to dispense products. For example once FDG has been produced from F-18 mixing with glucose, a bulk vial is put into in a dispense cell and its contents carefully dispensed into a number of syringes or vials. Remote manipulation is crucial at this stage.