X-RAY IRRADIATION REAL TIME DOSE MEASUREMENT/MONITORING
20230211027 · 2023-07-06
Inventors
Cpc classification
A61L2202/14
HUMAN NECESSITIES
A61L2/24
HUMAN NECESSITIES
International classification
Abstract
A product sterilization system includes a vault, a source of X-rays in the vault producing a field of X-rays in a treatment zone, a conveyance delivering products to the treatment zone for irradiation by the field of X-rays, a first X-ray detection subsystem in the treatment zone between the products and the source of X-rays, a second X-ray detection subsystem in the treatment zone behind the products, and a controller subsystem responsive to the first X-ray detection subsystem and the second X-ray detection subsystem and configured to determine an X-ray dose absorbed by the products.
Claims
1. A product sterilization system comprising: a vault; a source of X-rays in the vault producing a field of X-rays in a treatment zone; a conveyance delivering products to the treatment zone for irradiation by the field of X-rays; a first X-ray detection subsystem in the treatment zone between the products and the source of X-rays; a second X-ray detection subsystem in the treatment zone behind the products; and a controller subsystem responsive to the first X-ray detection subsystem and the second X-ray detection subsystem and configured to determine an X-ray dose absorbed by the products.
2. The system of claim 1 in which the source of X-rays includes an electron accelerator and a target producing X-rays in response to electrons emitted by the electron accelerator.
3. The system of claim 1 in which the conveyance includes a vault entrance conveyor, a vault exit conveyor, and a return conveyor between the entrance conveyor and the exit conveyor configured to return products to the treatment zone.
4. The system of claim 1 in which the controller subsystem is further configured to direct the products from the exit conveyor to the return conveyor when the dose absorbed by the products is below a specified dose.
5. The system of claim 1 in which the first X-ray detection subsystem includes one or more low attenuation detectors between the product and the source of X-rays.
6. The system of claim 5 in which said detectors are ion chamber detectors.
7. The system of claim 1 in which the products are palletized.
8. A product sterilization method comprising: conveying products to a treatment zone irradiated by a field of X-rays; measuring the intensity of the X-rays in the treatment zone before the X-rays irradiate the products; measuring the intensity of the X-rays in the treatment zone behind the products after the X-rays pass through the products; and automatically determining an X-ray dose absorbed by the products based on the measured intensity of the X-rays in the treatment zone before the X-rays irradiate the product and the measured intensity of the X-rays in the treatment zone behind the products after the X-rays pass through the products.
9. The method of claim 8 further including, automatically calculating when the dose absorbed by the products is below a specified dose and if so automatically returning the products via a conveyance to the treatment zone.
10. A product sterilization method comprising: conveying products to a treatment zone irradiated by a field of X-rays; where the X-ray flux before and after traversing through the products is mapped, calibrated and stored in a database; and with such information either directly or scaled applied to the same process in a different facility with an X-ray source of either the same or different power.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0021] Other objects, features and advantages will occur to those skilled in the art from the following description of a preferred embodiment and the accompanying drawings, in which:
[0022]
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[0029]
DETAILED DESCRIPTION OF THE INVENTION
[0030] Aside from the preferred embodiment or embodiments disclosed below, this invention is capable of other embodiments and of being practiced or being carried out in various ways. Thus, it is to be understood that the invention is not limited in its application to the details of construction and the arrangements of components set forth in the following description or illustrated in the drawings. If only one embodiment is described herein, the claims hereof are not to be limited to that embodiment. Moreover, the claims hereof are not to be read restrictively unless there is clear and convincing evidence manifesting a certain exclusion, restriction, or disclaimer.
[0031]
[0032] As shown in
[0033] A first X-ray detector subsystem in the treatment zone is typically fixed in place between pallet 18 and the source of X-rays. In one example, the first X-ray detection subsystem includes one or more low attenuation detectors such as an ion chamber detector array 22a. Scintillation type detectors may also be used. A second X-ray detector detection subsystem 22b is typically fixed in place behind pallet 18 in zone 40. Again, one or more low attenuation detectors such as an ion chamber detection array and/or scintillation type detectors may be used.
[0034] Controller subsystem 30,
[0035] In one example, the controller subsystem 30 is also configured to control the conveyance subsystem, for example conveyors 14 and 32 and return conveyor 33 which directs pallets from exit conveyor 32 back to entrance conveyor 14 and then to the treatment zone conveyor 24 to irradiate the pallet with an additional dose of X-rays in situations where the first measured dose was insufficient. As such, controller subsystem 30 may control pusher bars, gates, and the like used in conveyance systems. In one example, a typical pallet spends 15 to 30 seconds in the treatment zone and may return to the treatment zone 10 to 80 times for a sufficient dose. A proper sterilization may require 15 to 30 minutes in the treatment zone. Even so, the new process can provide for complete sterilization much faster than gamma radiation process. Accordingly, the controller subsystem may calculate the absorbed dose each time the pallet enters the treatment zone and return the pallets to the treatment zone until a specified dose (e.g., predetermined) is received.
[0036] The controller subsystem may also control the conveyor speed and/or the X-ray source (for example to increase or decrease the strength of the X-rays at the treatment zone). By controlling the conveyor speed, the controller subsystem can increase or decrease the dwell time that the products remain in the X-ray treatment zone. An approved dose for the medical devices being treated may be based on product specification stored in database 31,
[0037] Other conveyance configurations are possible such as conveyances which rotate the pallet and/or hang the pallet from overhead rails, for example. And, the configuration shown in the figures are single level, but double level or alternative configurations can be used. Pallets of product are preferably loaded onto the entrance conveyor 14. The product enters the X-ray beam. An input detector 22a which may include one or more sensors/detectors measures the dose at the front of the product. The product absorbs and attenuates the X-rays flux. Detection subsystem 22b which could also include one or more sensors/detectors, measures the dose after it is transmitted through the product. The process control subsystem reads the measured dose and commands the X-ray source, the detectors (e.g., to measure baseline noise and for calibration), and the conveyor with an algorithm that evaluates when the product is properly sterilized. In the example described above, the control subsystem determines if the product needs to return to the treatment zone to receive more X-ray doses or instead leaves on the exit conveyor 32. The control subsystem preferably interacts with product specification database 31 which describes the products and which includes features such as quantity, density, minimum dose, maximum dose, and the like. The control subsystem preferably monitors and controls the X-ray source and the conveyor. The control subsystem reads out the output and reads out the signals from the detection subsystems and evaluates the data/information from these sources to decide when the product should be released.
[0038] In order to validate the sterilization process for the product, the prior art method required placing dosimeters by hand on the product. Once the product completed the sterilization process, the dosimeters had to be removed by hand and then measured to determine if the product could be released. This new system and method provides for real time measurement of the dose and the sterilization level for each product which can eliminate the need for dosimeters to be placed by hand and read out manually.
[0039] In one example, the products enter the sterilization vault, step 60,
[0040] One advantage of measuring the dose in real time is that if the X-ray source parameters, for example intensity, become out of compliance, the process can be stopped until the X-ray machine is brought back into compliance. This prevents product from completing the sterilization process and subsequently determining that the dose was not within the required specifications.
[0041] The inline dosimetry provides parametric release data that the sterilization process was controlled and that the process meets sterility requirements. Thus, the subject system and method can be used to comply with 21 CFR 211.165(a), and 211.167(a).5. Meeting the requirements of the parametric release process can provide greater assurance that a batch meets the sterility requirement that can be achieved without a sterility test of finished units drawn from the batch. As part of the parametric release program, the operational parameters that govern the delivery of the dosage would include the stacking configuration within the irradiation carrier or product, the bulk density of the product, the speed of the conveyor or carrier system, the distance to the radiation source and the duration of the product exposure. Demonstration of consistency in the absorbed radiation dosage at areas of minimum and maximum zones of radiation absorption within the fully loaded carriers on a batch to batch basis can provide for dosimetric release of radiation-sterilized medical and pharmaceutical products.
[0042] As an example of the algorithm/system operation for a pallet of low-density homogenous products, consider a pallet filled with boxes of nasal swabs with an overall density of 0.02.sub.g/cc. As the product passes in front of the X-ray beam, attenuation of the X-ray beam occurs as it passes through the material via the equation:
I.sub.f=I.sub.oe.sup.−μρl (1)
[0043] Where μ is the attenuation coefficient, ρ is the material density, l is the path length, I.sub.o is the measured X-ray flux entering the products and I.sub.f is measured X-ray flux exiting the product. The X-ray field is preferably very high energy (e.g., 7,000,000 electron volts) and thus the average attenuation coefficient is very similar for most materials. Thus, the density of the products can be calculated by processor 30,
[0044] In another example, consider product with a density of 0.5 g/cc. For this product the total dose is shown in
[0045] For several medical products, for example orthotic implants (e.g., hip, knee), the implant is made of metal and therefore has a localized, high-density volume. For a pallet of these products in certain scenarios there may be cases where one or more multiple implants shield another. In this scenario, the dose of the product will be a mix between the previous two examples. The system can measure and detect the doses, and may take into account the type, geometry, and density of the medical devices in order to assure the appropriate dose of radiation is absorbed by all the medical devices. For some situations, the real time dose measurements coupled with the map of the product can be used to ensure dose compliance. The system can adjust the dose on-the-fly for specific regions within the product to maintain dose compliance.
[0046] One or more detectors 22 can be used along with processor 39 to provide 2-D images of the products or even 3-D images of the products if computed tomography techniques are employed. In this way, along with knowing the density of the products, various actions can be taken by controller 30,
[0047] For example, if density profile of the palletized products stored in database 31 does not match the calculated density, that could be an indication, for example, that one or more boxes were not packed the same as the other boxes. And, X-ray image information, for example, could be used to detect the overall configuration of the packaged products to ascertain, perhaps along with density information, if some high-density products are shielding less dense products. In response, the operator can be alerted that one or more boxes do not meet the stored (expected) product information.
[0048] Or, the X-ray dose can be automatically increased or decreased when density and/or image information reveals the products undergoing sterilization do not match (within some level of tolerance) the stored product/packing data. In but one example, if the stored product information indicates the products are low density products, but the calculated density indicates the products are high density products and result in high X-ray attenuation, then controller 30,
[0049] Most products have a dose minimum and maximum limit and the inline dose monitoring disclosed herein allows for a determination of whether or not the product meets these required doses. Incremental control is possible to achieve minimum and maximum dose requirements. See
[0050] Although specific features of the invention are shown in some drawings and not in others, this is for convenience only as each feature may be combined with any or all of the other features in accordance with the invention. The words “including”, “comprising”, “having”, and “with” as used herein are to be interpreted broadly and comprehensively and are not limited to any physical interconnection. Moreover, any embodiments disclosed in the subject application are not to be taken as the only possible embodiments. Other embodiments will occur to those skilled in the art and are within the following claims.
[0051] In addition, any amendment presented during the prosecution of the patent application for this patent is not a disclaimer of any claim element presented in the application as filed: those skilled in the art cannot reasonably be expected to draft a claim that would literally encompass all possible equivalents, many equivalents will be unforeseeable at the time of the amendment and are beyond a fair interpretation of what is to be surrendered (if anything), the rationale underlying the amendment may bear no more than a tangential relation to many equivalents, and/or there are many other reasons the applicant cannot be expected to describe certain insubstantial substitutes for any claim element amended.