Radiological dosing system and method
The method of using color-coded dosage zones for patient size and radiation location simplifies radiation and medication administration, ensuring accurate and safe doses are delivered, reducing the risk of errors and adverse effects.
Patent Information
- Application Number
- JP2025135849
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2017-05-05
- Filing Date
- 2025-08-18
- Publication Date
- 2025-10-14
AI Technical Summary
Accurate and efficient administration of radiation doses, particularly in pediatric patients, is challenging due to complex calculations and potential errors, which can lead to severe consequences such as radiation overdose, poisoning, and kidney damage, especially in emergency situations or with the use of IV contrast media and sedation.
A method involving color-coded dosage zones based on patient size and radiation location, simplifying dose determination by correlating patient characteristics with standardized radiation, contrast, and sedation amounts, using a processor to verify safe dose ranges and apply appropriate doses.
Reduces the risk of errors by standardizing radiation and medication administration, ensuring doses are within safe ranges, thereby minimizing adverse effects and improving patient safety.
Smart Images

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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to and the benefit of U.S. Provisional Patent Application No. 62 / 334,990, filed May 11, 2016, entitled "Radiological Dosing System and Method." This application also claims priority to U.S. Provisional Patent Application No. 61 / 593,674, filed February 1, 2012, entitled "System for Delivering Medication," and U.S. Provisional Patent Application No. 61 / 717,474, filed October 23, 2012, entitled "System for Delivering Medication," a continuation-in-part of U.S. Patent Application No. 14 / 392,087, filed September 2, 2015, entitled "System for Delivering Medication," which is a national stage entry of PCT Application No. PCT / US2013 / 023873, filed January 30, 2013, entitled "System for Delivering Medication," and a continuation-in-part of U.S. Provisional Patent Application No. 14 / 392,087, filed September 2, 2015 ...Apparatuses, Methods, and Systems for Delivering Measured Doses of This application is a continuation-in-part of U.S. patent application Ser. No. 15 / 282,732, filed Sep. 30, 2016, entitled "Apparatuses, Methods, and Systems for Delivering Medication Using Medication Kits," and a continuation-in-part of U.S. patent application Ser. No. 15 / 588,497, filed May 5, 2017, entitled "Apparatuses, Methods, and Systems for Delivering Medication Using Medication Kits." All above-referenced applications are expressly incorporated herein by reference.
[0002] Field of Disclosure The present disclosure relates to methods for determining and administering appropriate radiation doses. [Background technology]
[0003] Accurately and efficiently administering the proper dosage is crucial. This is essential when determining and / or delivering radiation doses to pediatric patients, as even small administration errors can have disastrous consequences. Furthermore, radiation therapy carries additional risks if an overdose is administered, including radiation overdose, radiation poisoning, and even cancer development. Some patients undergoing radiation therapy may also receive IV contrast media and / or sedation. (As referred to herein, the term "contrast media" may also refer to contrast dye or contrast agent.) This involves an additional step where errors can occur and excessive amounts of IV contrast media can lead to permanent kidney damage and / or kidney disease.
[0004] Even under the best circumstances, and despite the best efforts of medical personnel, inadvertent errors are sometimes made due to the numerous steps involved in administering radiation. More specifically, in a typical situation, the appropriate dosage must first be determined, which usually involves multi-step mathematical calculations. This is followed by multiple steps involved in the actual administration process, which may include selecting the correct dose to be administered, including the strength and duration of the dose to be applied. Additionally, numerous other calculations, such as those involving the strength of radiation and the duration for application, must be performed as part of the administration process.
[0005] Problems with dosage accuracy can be further exacerbated by emergency situations, inexperienced staff, distractions, and / or administered radiation and intravenous contrast and / or sedatives, either simultaneously or sequentially. Summary of the Invention
[0006] In one aspect, the present disclosure relates to a method for administering radiation to a patient. The method can include associating the patient with one of a plurality of coded dosage zones, where each of the plurality of coded dosage zones corresponds to one or more values of a physical characteristic. The method can further include correlating the one of the plurality of coded dosage zones with a radiation dose and administering the radiation dose to the patient. The radiation dose can be dependent on a position of the patient to which the radiation is to be administered. In some embodiments, the physical characteristic can be at least one of weight, height, and surface area.
[0007] The present disclosure also relates to a method of administering radiation to a patient, the method including accepting, in a processor associated with a radiation device, information indicating that the patient is associated with a coded region included in a plurality of coded regions, where each of the plurality of coded regions corresponds to one or more values of a physical characteristic. The method further includes accepting, in the processor, a radiation location for the patient. The processor can correlate the coded region and the radiation location with a radiation dose. The method further includes applying the radiation dose to the patient at the radiation location.
[0008] In some embodiments, the processor may determine a size of the patient. Further, a safe radiation range for the patient may be determined in the processor based on the size of the patient. Applying the radiation dose to the patient may include verifying that the radiation dose to be administered to the patient is within the safe range.
[0009] In some implementations, the size of the patient may be correlated to one of a plurality of coded regions. The coded regions may be color-coded. In some embodiments, a safe radiation range is determined based on the location of the radiation.
[0010] In other implementations, the method may further include accepting, in the processor, additional information indicating that an additional patient is associated with an additional coded region included in the plurality of coded regions. Additional radiation locations for the additional patient may also be accepted in the processor. The additional coded region and the additional radiation locations may be correlated in the processor with an additional radiation dose. A safe radiation range for the additional patient may be calculated in the processor based on the size of the patient. If it is determined that the additional radiation dose is not within the safe range, the additional radiation dose is not applied to the additional patient. In some such embodiments, when it is determined that the additional radiation dose is not within the safe range, a notice may be generated in the processor for display on a screen associated with the radiation device.
[0011] In another aspect, the present disclosure relates to a method for administering radiation to a patient, the method including accepting, with a processor associated with a radiation device, a calculated radiation dose for the patient, accepting a radiation location for the patient, and accepting at least one of a patient characteristic and a coded region corresponding to the patient characteristic. The method further includes correlating the patient characteristic and / or the coded region corresponding to the patient characteristic with a safe radiation dose range at the radiation location for the patient. The processor can compare the calculated radiation dose with the safe dose range. When the calculated radiation dose is within the safe dose range, the calculated radiation dose is applied to the patient at the radiation location. In some embodiments, if the calculated radiation dose is not within the safe dose range, a message is generated and displayed on a screen associated with the radiation device, and the calculated radiation dose is not applied to the patient at the radiation location.
[0012] In some embodiments, the safe dose range for the patient may vary depending on the radiation location.
[0013] In some implementations, the method may further include determining a second patient characteristic at the radiation location. A second coded region may be determined in the processor based on the second patient characteristic. The second coded region for the patient may be correlated in the processor with a second safe dose range of radiation at the radiation location for the patient. The processor may determine that the calculated dose is within the second safe dose range. When the calculated dose is within the safe dose range and the second safe dose range, the calculated dose may be applied. When the calculated dose is not within the safe dose range and the second safe dose range, a message may be generated for display, and the message may be displayed on a screen associated with the radiation device.
[0014] In some embodiments, the method may further include determining a second patient characteristic at the radiation location. A second coded region for the patient may be determined in the processor based on the second patient characteristic. A message to be displayed may be created when the second coded region is not the same as the coded region, and the message may be displayed on a screen associated with the radiation device.
[0015] In another aspect, the present disclosure relates to a method for administering radiation to a patient. The method includes accepting, in a processor associated with a radiation device, information identifying a color-coded region corresponding to a value of a physical characteristic of the patient, where the color-coded region is included among a plurality of color-coded regions. The method further includes accepting, in the processor, a radiation location corresponding to a location on the patient. The processor may then determine that at least one of a contrast agent and a sedative agent should be administered to the patient, and may further determine at least one of an administration amount and an administration concentration of the at least one of the contrast agent and the sedative agent based at least in part on the color-coded region. The method may further include correlating the color-coded region and the radiation location with a radiation dose, and providing the at least one of the contrast agent and the sedative agent to the patient. The radiation dose may then be applied to the radiation location. [Brief explanation of the drawings]
[0016] [Figure 1] 1 is a flow chart illustrating a method for administering a radiation dose according to one embodiment. [Figure 2A] 10 is a flow chart illustrating a method for administering a radiation dose according to another embodiment. [Figure 2B] 10 is a flow chart illustrating a method for administering a radiation dose according to another embodiment. [Figure 3] 10 is a flow chart illustrating a method for administering a radiation dose according to another embodiment. [Figure 4A] 1 illustrates a perspective view of an exemplary medication delivery device according to some embodiments. [Figure 4B] 1 illustrates a perspective view of an exemplary medication delivery device according to some embodiments. [Figure 4C] 1 illustrates a perspective view of an exemplary medication delivery device according to some embodiments. [Figure 4D] 1 illustrates a perspective view of an exemplary medication delivery device according to some embodiments. [Figure 5A] 1 shows a perspective view of an exemplary medication delivery device according to another embodiment. [Figure 5B]1 shows a perspective view of an exemplary medication delivery device according to another embodiment. [Figure 5C] 1 shows a perspective view of an exemplary medication delivery device according to another embodiment. [Figure 5D] 1 shows a perspective view of an exemplary medication delivery device according to another embodiment. [Figure 6A] 1 shows a perspective view of an exemplary medication delivery device according to another embodiment. [Figure 6B] 1 shows a perspective view of an exemplary medication delivery device according to another embodiment. [Figure 6C] 1 shows a perspective view of an exemplary medication delivery device according to another embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0017] This application describes devices, systems, and methods for administering appropriate radiation and / or drug dosages to a patient. The radiation dose can be determined by the intensity and duration that the radiation is applied to the patient. In determining the dose for a particular patient, the size of the patient, the location on the body where the radiation is applied, and the type of radiation (i.e., CT scan, X-ray, etc.) can be taken into consideration. Additionally, some types of radiation are applied in combination with IV contrast and / or sedation. The dosage of IV contrast and sedation, including whether contrast and / or sedation are required, also depend on the size of the patient, the type of radiation applied, and the location of the radiation.
[0018] Due, at least in part, to all the factors that must be considered for the administration of radiation, IV contrast, and sedation, errors can occur in determining the dose of one or all of these. These errors can have serious consequences for the patient, including radiation overdose, radiation poisoning, cancer development, kidney damage, kidney failure, etc. Therefore, simplifying and eliminating the need for complex calculations can significantly reduce the risks incurred by patients undergoing such treatment.
[0019] To accomplish this, dosages can be standardized into various zones determined based on the patient's size. The patient's size can be determined based on the patient's weight, length, surface area, and / or other factors. Once the patient's size is determined, the size can be correlated to a zone. For example, the zones can include ranges based on the patient's weight and / or the patient's height, so that when the patient is measured, the measurement can fall within one of the zones.
[0020] In one embodiment, a color-coded measuring tape can be used to determine the zone to which a patient's height correlates. For example, Broselow® Pediatric Emergency Tape is a well-known, readily available device that correlates a patient's height with medication dosage. Details of the device and its method of use are disclosed, for example, in U.S. Patent Nos. 4,716,888 and 6,132,416, which are incorporated herein by reference. Generally, the method involves measuring a patient's height, coding it into one of several color zones on the tape, and using the color-coded length to determine the medication dosage to be administered to the patient. By dividing the tape into multiple color-coded zones rather than the typically used inches or centimeters, each color zone corresponds to a given length range, and the patient's height can be easily read and reported as a certain color rather than a specific measurement in centimeters or inches. In other words, each color-coded length zone corresponds to a certain predetermined range of actual length measured in either metric or imperial units. For example, a gray color zone on the tape corresponds to a length range of 42.20 cm to 60.79 cm, and a pink color zone on the tape corresponds to a length range of 60.80 cm to 67.79 cm. Thus, patients whose height falls within a first length range would be coded as gray, and patients whose length falls within a second length range would be coded as pink. Appropriate drug dosages for the two patients would then be selected from a list of predetermined drug dosages on the tape.
[0021] In one embodiment, instead of being assigned a specific color, each patient zone may be assigned a specific symbol, number, etc. In embodiments where the zones are associated with colors, the color coding used may be the same as or correlate to the colors used in Broselow® tape. In such embodiments, a patient who measures a specific color gamut using Broselow® tape will receive the radiation dose, IV contrast, and / or sedation that correlates to that color gamut. In some embodiments, there may be nine standardized zones, each of which may be associated with one of nine colors.
[0022] Furthermore, the radiation dose to a patient depends on where on the body the radiation is being applied. For example, the intensity and / or duration of a radiation dose to the head will be different from the intensity and / or duration of a radiation dose to the abdomen, even within the same patient or patients of similar size. Thus, radiation standardization includes doses according to where the radiation is applied. Thus, for example, once a patient is assigned to the "yellow" zone, the "yellow" zone will include radiation doses for head CT, chest CT, and / or the like, since the radiation dose given will depend on the area of application. This zone may also include doses for different types and concentrations of IV contrast and sedatives.
[0023] As a result, instead of performing multiple calculations, technicians, nurses, doctors, etc. only need to know the color range that correlates to the patient's size (weight, height, etc.), which determines, at a minimum, the intensity of radiation and the time frame for applying the radiation for each body location (e.g., head, arms, legs, abdomen, chest, etc.).
[0024] To determine the dosage, a technician, nurse, and / or doctor can read a chart / table. For example, colors may be listed horizontally from the top, radiation locations may be listed horizontally, and the intensity and time frame for each color and location may be listed within each box. In other embodiments, the determination may be part of the radiation delivery device, such as an X-ray or CT machine. A technician can determine color zones based on the patient's size and input the colors into the device. The machine then performs known dosage calculations based on the patient's color zones and delivers the appropriate radiation dose to the patient for the associated color zone. In some embodiments, a technician can input the patient's size based on weight and / or height, and the machine can determine the color and / or appropriate dose and deliver that dose to the patient's color range. In yet another embodiment, a technician, nurse, doctor, etc. can perform calculations to determine the patient's dose. The determined dose can then be verified against a color range correlated to the patient's size. In this way, if there is an error in the calculation, the technician, nurse, doctor, etc. can quickly verify that the determined dose is within the color range determined for that patient. In this way, a calculation is performed and then verified to be within the appropriate region for the patient.
[0025] 1 shows an exemplary flowchart according to one embodiment. The color-coded regions may be determined based on the patient's size (step 105). As mentioned above, the patient's size may be based on the patient's weight, height, surface area, etc. The size may be within one of multiple zones, with each zone corresponding to a particular color, number, symbol, etc. For example, the color may be similar to or the same as the color of Broselow tape. Once the color-coded regions are determined, the color-coded regions may be correlated with a radiation dose (step 110), and the radiation dose may be applied (step 115).
[0026] FIG. 2 shows another exemplary flowchart according to an embodiment in which a radiation device, such as an X-ray device, a CT device, or the like, can determine a radiation dose according to the methods disclosed herein. Referring to FIG. 2A, a color-coded region corresponding to a patient can be accepted (step 205). In some embodiments, the color-coded region can be input by a technician, nurse, and / or doctor. In other embodiments, the machine can determine the patient's size using a built-in scale, for example, to determine the patient's weight, and the machine can determine the patient's size based on the color-coded region corresponding to the patient's size. A radiation location can also be accepted (step 210). Again, the radiation location can be input by a technician, nurse, and / or doctor, or the machine can determine the location. The color-coded region and radiation location can be correlated with a radiation dose (step 215). The radiation dose can include an intensity and a time frame during which the radiation intensity should be applied. The radiation dose can be applied (step 220).
[0027] In another embodiment, as shown in FIG. 2B, a technician, nurse, doctor, etc. can calculate a patient dose and input the calculated radiation dose and the area to which it can be applied (steps 225, 230). A color-coded area corresponding to the patient may be input by the technician, nurse, doctor, etc., and / or the machine may determine the patient's size as described above and correlate the patient's size with the color-coded area (step 235). The machine can correlate the color-coded area and the radiation location with a safe radiation dose and / or a range of safe radiation doses (step 240). The machine can verify that the dose input by the technician, nurse, doctor, etc. is a safe dose and / or within a safe range (step 245). If the machine determines that the dose is safe, the machine can apply the dose to the area. If the dose is unsafe, the machine may not apply the dose. The machine can also notify the technician, nurse, doctor, etc. that the dose is unsafe for the patient (step 250).
[0028] As shown in FIG. 3, in some embodiments, a color-coded region and / or radiation location corresponding to the patient can be accepted (305). As discussed with respect to FIGS. 2A and 2B, the region and / or location can be input or determined, depending on the embodiment. Based on the color-coded region and / or radiation location, a determination can be made as to whether contrast is needed (step 310). If contrast is used, the dose and / or concentration to be administered to the patient can be determined (step 315). In some embodiments, the dose and / or concentration can be displayed to a technician, nurse, and / or physician. Just as a determination can be made as to whether a sedative is needed, and the dose and / or concentration can be displayed to a technician, nurse, and / or physician, a similar determination can be made regarding sedation. The dose and / or concentration of contrast and / or sedation to be applied can depend on the size of the patient, the color-coded region, and / or the radiation location. Furthermore, the color-coded region and radiation location can also be correlated with the radiation dose to be administered to the patient (step 320), and the radiation dose is applied (step 325). The administration of the dose may be delayed to ensure that contrast and / or sedation have been given to the patient prior to the administration of the radiation.
[0029] When sedation and / or IV contrast is administered, the syringe may be marked with a predetermined color-coded volumetric dose for the type and / or concentration of contrast and / or sedation, as further described in U.S. Patent Application Nos. 15 / 588,497, 15 / 282,732, and 14 / 392,087, and PCT Application No. PCT / US2013 / 023873, all of which are expressly incorporated herein by reference in their entirety.
[0030] Attention is now directed to Figures 4 and 5, which illustrate one embodiment of a medication dispensing device 10 for delivering IV contrast and / or sedative medication. As shown, medication dispensing device 10 includes a syringe 15 including an elongated barrel 30 marked with a predetermined color-coded volumetric medication dose 100, and a plunger 50. The medication dispensing device, according to one embodiment, may further be pre-filled with a fluid 105 corresponding to the medication to be administered to a patient. As shown in Figure 4A, syringe 15 includes a proximal end 25 and a distal end 20 opposite the proximal end. Syringe 15 further includes a container, such as syringe barrel 30, for holding the medication to be dispensed therein, and plunger 50 extending proximally from an opening 36 located at the proximal end 35 (barrel) of the syringe barrel to a proximal end 55 of the plunger at proximal end 25. Both syringe barrel 30 and plunger 50 are typically manufactured from plastic, glass, or any other suitable transparent medical-grade material that is inert or does not disturb the chemical balance of the liquid therein.
[0031] As shown in FIG. 4B, syringe barrel 30 is elongated and substantially cylindrical and includes distal end 31 and proximal end 35. The syringe barrel further includes an outer circumferential surface 37 and an inner circumferential surface 38. A chamber 32 capable of receiving a plunger and fluid therein is defined by the inner circumferential surface 38 of the barrel between distal end 31 and proximal end 35. A flange 33, which may function as a finger grip to facilitate handling of the syringe, is integrally formed at the proximal end of the barrel and defines an opening 36 for receiving the plunger. Adjacent to opening 36 along the inner surface of the barrel is a ridge 34 that prevents the plunger from slipping off the barrel when the plunger is engaged with the barrel, as shown in FIG. 4C.
[0032] Opening 36 communicates with chamber 32 and with opening 39 located at distal end 20 of the syringe barrel. A tip 40 for attaching a needle, nozzle, or tube for dispensing the liquid contained within syringe barrel 30 is integrally formed with distal end 20 of the barrel and communicates with opening 39. The tip may include coaxially arranged inner and outer members 41 and 42. According to one embodiment, the tip may include a Luer taper fitting.
[0033] According to one embodiment shown in FIG. 4B, plunger 50 includes plunger rod 51 and rubber or plastic gasket or stopper 52 attached to distal end 56 of plunger rod. The gasket forms an airtight seal between the inner surface of the barrel and the plunger to prevent the syringe contents from leaking out the rear of the syringe. An annular flange 53 is integrally formed with proximal end 55 of the plunger rod. Plunger 50 has an elongated shape complementary to the shape of chamber 30 and is designed to be pressed along the chamber (inside the cylindrical barrel or tube) to allow the syringe to expel fluid through tip 40 or opening 39 at the distal end of the barrel. Alternatively, the plunger may include any other configuration capable of forcing fluid from inside chamber 30 through tip 40 or opening 39.
[0034] According to one embodiment of the present disclosure, the drug delivery device may be pre-filled with a pre-selected drug. Initially, when the drug delivery device is pre-filled and the syringe is in a pre-dose dispensing position, a substantial length of the plunger rod extends longitudinally outside the syringe barrel. In other words, as shown in FIG. 4A , prior to drug administration, only the gasket 52 and the distal end 56 of the plunger rod are initially inside the syringe barrel at the proximal end 35 of the barrel, with the remainder of the plunger length outside the barrel such that its proximal end 55 is in its most extended configuration. Alternatively, if the drug delivery device is provided as part of a kit requiring the drug provided in a contained drug container to be drawn into the drug delivery device immediately prior to the drug administration process, the plunger rod can remain inside the syringe barrel until the drug is drawn into the syringe.
[0035] According to another embodiment shown in FIG. 5A, a syringe 15 can include an elongated body 70 and a plunger 80 marked with a predetermined, color-coded volumetric dosage 100 and pre-filled with a fluid 105 corresponding to the medication to be administered to a patient. In this configuration, as shown in FIG. 5C, the syringe body includes an inner tubular body 75 generally coaxially aligned with the larger diameter of the cylindrical body. The inner tubular body has a needle 76 coaxially disposed within and longitudinally aligned with the inner tubular body. The plunger 80, shown in FIG. 5D, includes a substantially cylindrical member or vial 81 and a stopper 82. As shown in FIG. 5B, prior to administration of the medication, the syringe body and plunger are first separated so that the stopper 82 must be inserted into the proximal end 35 of the syringe barrel so that it fully engages the inner tubular body 75 and needle 76.
[0036] According to yet another embodiment of the present disclosure, the plunger and / or plunger stopper may be color-coded based on the medication contained in the barrel. Such color-coding of the plunger may further improve the efficiency with which medication is administered and may make administration less error-prone, as visual inspection of the plunger may provide quick verification of the accuracy of the medication to be administered.
[0037] Alternatively, the medication delivery device can include any container, such as a tube, vial, bag, or bottle, that can be received therein and from which a desired medication can be released. For example, the medication delivery device can be a bag containing intravenous fluids. According to this embodiment, the bag can be marked with a series of color-coded zones along with traditional volumetric markings. When used in combination with traditional volumetric markings, the color-coded zones can remind medical personnel of the correct amount of each medication that can be given to a patient based on the patient's color zone. The color-coded zones can also be used as a key to input the correct total amount to be dispensed into the IV pump for a given medication.
[0038] Markings on the surface of a medication delivery device will now be described. In the case of a syringe, the markings may be disposed along the circumferential surface of the syringe barrel or plunger. As shown in Figures 4A through 5D, the markings include a series of substantially translucent bands or zones 100 that indicate potential medication dosages to be administered to a patient. While the markings shown in the figures include a series of color-coded zones, the markings may also include zones with different patterns, textures, etc. Regardless of the type of marking used, the markings may be printed, painted, etched, or dyed directly onto the interior or exterior surface of the medication delivery device, or may form a label or sleeve that can be affixed or placed on the exterior surface of the medication delivery device. The applied markings are such that the fluid level can be easily seen through the markings once the device is filled.
[0039] A further embodiment of a medication dispensing syringe is shown in Figures 6A-6C.
[0040] Any and all references to publications or other documents, including but not limited to patents, patent applications, articles, web pages, books, etc., presented in this application are incorporated herein by reference in their entirety.
[0041] Exemplary embodiments of devices, systems, and methods are described herein. As noted elsewhere, these embodiments are provided for illustrative purposes only and are not limiting. Other embodiments are possible and are encompassed by this disclosure, and will become apparent from the teachings contained herein. Thus, the breadth and scope of the present disclosure should not be limited by any of the above-described embodiments, but should be defined only in accordance with the claims supported by this disclosure and their equivalents. Furthermore, embodiments of the present disclosure may include methods, systems, and devices that may further include any and all elements from any other disclosed methods, systems, and devices, including any and all elements corresponding to the separation, focusing / concentration of target particles. In other words, elements from one or another disclosed embodiment may be interchangeable with elements from other disclosed embodiments. Furthermore, one or more features / elements of a disclosed embodiment may be deleted and still result in patentable subject matter (and thus, more embodiments of the subject disclosure). Correspondingly, some embodiments of the present disclosure may patentably differ from one and / or another reference by specifically lacking one or more elements / features. In other words, a claim to a particular embodiment may include a negative limitation to specifically exclude one or more elements / features, resulting in an embodiment patentably distinct from prior art that includes such features / elements.
Claims
1. 1. A method for displaying radiation dose, the method comprising: associating the patient with one of a plurality of coded dosage zones, wherein each of the plurality of coded dosage zones corresponds to one or more values of the physical characteristic; correlating one of the plurality of coded dosage zones with a predetermined radiation dose; and Displaying the radiation dose on a screen associated with the radiation device. A method comprising:
2. 10. The method of claim 1, further comprising accepting values for one or more physical characteristics prior to associating the patient with one of the plurality of coded dosage zones.
3. 10. The method of claim 1, further comprising accepting a particular one of the plurality of coded dosage zones assigned to the patient prior to associating the patient with one of the plurality of coded dosage zones.
4. 10. The method of claim 1, wherein the plurality of coded dose zones are color-coded.
5. 10. The method of claim 1, wherein each of the plurality of coded dosage zones comprises a symbol or a number.
6. The method of claim 1 , wherein the radiation dose is displayed to at least one of a technician, a nurse, or a doctor.
7. 10. The method of claim 1, further comprising accepting a predetermined location of the radiation dose before correlating one of the plurality of coded dosage zones with the predetermined radiation dose.
8. 8. The method of claim 7, wherein the predetermined location is the patient's head or the patient's chest.
9. 9. The method of claim 8, wherein the predetermined radiation dose comprises a predetermined dose for head CT or a predetermined dose for chest CT, the predetermined dose corresponding to a predetermined location.
10. correlating one of the plurality of coded dosage zones with a predetermined dose of IV contrast or sedation agent; and Displaying the dose of IV contrast or sedation on the screen. The method of claim 1 further comprising:
11. 11. The method of claim 10, further comprising accepting a predetermined location for the type and amount of radiation to be applied before correlating one of the plurality of coded dosage zones with a predetermined dose of IV contrast or sedation agent.
12. A medication dispensing device comprising: a syringe including an elongated barrel, the elongated barrel being marked with color-coded zones that correlate to medication, the color-coded zones including volumetric markings.
13. 13. The medication dispensing device of claim 12, wherein the medication is an IV contrast or sedative agent, and the syringe is pre-filled with the IV contrast or sedative agent.
14. 13. The medication dispensing device of claim 12, wherein the medication is an IV contrast agent or a sedative agent, and the medication dispensing device is provided as part of a kit further comprising the IV contrast agent or sedative agent.
15. 13. The medication dispensing device of claim 12, wherein the length of each of the color-coded zones is based on a predetermined range of at least one physical characteristic.
16. a vial containing the medication; a medication dispensing device configured to receive the medication from a vial, the medication dispensing device being marked with color-coded zones correlating to predetermined doses of the medication, the color-coded zones including volumetric markings; and Device for associating a patient with one of the color-coded zones Kit including:
17. 17. The kit of claim 16, wherein the agent is an IV contrast agent or a sedative agent.