Powder Sampling Thief
20210302281 · 2021-09-30
Inventors
Cpc classification
International classification
Abstract
A blended powder sampling thief for sampling a powder includes an elongated rod that has an upper portion and a lower portion. The lower portion defines at least one cavity. A tubular sheath is disposed about the rod and is slidable between a lower position in which the tubular sheath exposes the at least one cavity and an upper position in which the at least one cavity is exposed. When the rod is inserted into the powder and the tubular sheath is in the upper position, the powder flows into the at least one cavity. When the tubular sheath is slid into the lower position, a sample of the powder is entrapped in the at least one cavity so that when the sampling thief is removed from the powder, the sample of the powder will remain in the at least one cavity.
Claims
1. A blended powder sampling thief for sampling a powder, comprising: (a) an elongated rod having an upper portion and a lower portion, the lower portion defining at least one cavity; and (b) a tubular sheath disposed about the rod and that is slidable between a lower position in which the tubular sheath exposes the at least one cavity and an upper position in which the at least one cavity is exposed, wherein after the rod is inserted into the powder and the tubular sheath is in the upper position, the powder flows into the at least one cavity and when the tubular sheath is slid into the lower position, a sample of the powder is entrapped in the at least one cavity so that when the sampling thief is removed from the powder, the sample of the powder will remain in the at least one cavity.
2. The blended powder sampling thief of claim 1, wherein the rod has a shape that allows rotation of the rod with the tubular sheath.
3. The blended powder sampling thief of claim 1, wherein the rod has a lower end that has a lip extending therefrom, wherein the lip has a diameter that is greater than an inside diameter of the tubular sheath so that the tubular sheath is prevented from sliding beyond the lip.
4. The blended powder sampling thief of claim 1, further comprising a handle affixed to an upper end of the rod.
5. The blended powder sampling thief of claim 1, wherein the lower end of the rod defines a plurality of cavities, each of which is at a different height along the rod so as to sample the power at a corresponding plurality of different levels.
6. The blended powder sampling thief of claim 1, wherein the rid defines a vent running along the rod and in fluid communication with the cavity, wherein the vent allows air that is displaced by power flowing into the at least one cavity to escape therefrom.
7. The blended powder sampling thief of claim 6, wherein the vent comprises: (a) a groove defined by the rod on a side opposite from the at least one cavity; and (b) a hole that extends from a top area of the at least one cavity into the groove.
8. The blended powder sampling thief of claim 1, wherein the upper portion of the rod is separable from the lower portion of the rod.
9. A sampling container for use with the powder sampling thief of claim 1, comprising: (a) a jar into which the powder is placed; and (b) a sampling funnel that is affixable to the jar and that defines a passage that is complimentary in shape to the tubular sheath so that that the power sampling thief is held closely as it is being slid into the powder.
10. The sampling container of claim 9, wherein the passage is elongated so as to keep the sampling thief at a constant angle relative to the jar as it is inserted into the powder.
11. A blended powder sampling system for sampling a powder, comprising: (a) a sampling container that holds the powder therein; (b) an elongated rod having an upper portion and a lower portion, the lower portion defining at least one cavity; and (c) a tubular sheath disposed about the rod and that is slidable between a lower position in which the tubular sheath exposes the at least one cavity and an upper position in which the at least one cavity is exposed, wherein when the rod is inserted into the sampling container and the tubular sheath is in the upper position, the powder flows into the at least one cavity and when the tubular sheath is slid into the lower position, a sample of the powder is entrapped in the at least one cavity so that when the sampling thief is removed from the powder, the sample of the powder will remain in the at least one cavity.
12. The blended powder sampling system of claim 11, wherein the cavity has a volume that is a function of a density of the powder so that a sample weight in the cavity is in a range of from one to three times a weight of a desired finished dosage form, wherein the cavity has dimensions that are determined according to the following formula:
13. The blended powder sampling system of claim 11, wherein the rod has a lower end that has a lip extending therefrom, wherein the lip has a diameter that is greater than an inside diameter of the tubular sheath so that the tubular sheath is prevented from sliding beyond the lip.
14. The blended powder sampling system of claim 11, further comprising a handle affixed to an upper end of the rod.
15. The blended powder sampling system of claim 11, wherein the lower end of the rod defines a plurality of cavities, each of which is at a different height along the rod so as to sample the power at a corresponding plurality of different levels.
16. The blended powder sampling system of claim 11, wherein the rid defines a vent running along the rod and in fluid communication with the cavity, wherein the vent allows air that is displaced by power flowing into the at least one cavity to escape therefrom.
17. The blended powder sampling system of claim 16, wherein the vent comprises: (a) a groove defined by the rod on a side opposite from the at least one cavity; and (b) a hole that extends from a top area of the at least one cavity into the groove.
18. The blended powder sampling system of claim 11, wherein the upper portion of the rod is separable from the lower portion of the rod.
19. The blended powder sampling system of claim 11, wherein the sampling container comprises: (a) a jar into which the powder is placed; and (b) a sampling funnel that is affixable to the jar and that defines a passage that is complimentary in shape to the tubular sheath so that that the power sampling thief is held closely as it is being slid into the powder, wherein the passage is elongated so as to keep the sampling thief at a constant angle relative to the jar as it is inserted into the powder.
20. A blended powder sampler for sampling a powder, comprising: (a) a sampling thief that includes: (i) an elongated rod having an upper portion and a lower portion, the lower portion defining a plurality of cavities, the rod having pointed lower end; and (ii) a tubular sheath disposed about the rod and that is slidable between a lower position in which the tubular sheath exposes the plurality of cavities and an upper position in which the plurality of cavities is exposed; and (b) a sampling container, including: (i) a jar into which the powder is placed; and (ii) a sampling funnel that is affixable to the jar and that defines a passage that is complimentary in shape to the tubular sheath so that that the power sampling thief is held closely as it is being slid into the powder, wherein the passage is elongated so as to keep the sampling thief at a constant angle relative to the jar as it is inserted into the powder, wherein when the rod is inserted into the sampling container and the tubular sheath is in the upper position, the powder flows into the plurality of cavities and when the tubular sheath is slid into the lower position, samples of the powder are entrapped in the plurality of cavities so that when the sampling thief is removed from the powder, the samples of the powder will remain in the plurality of cavities.
Description
BRIEF DESCRIPTION OF THE FIGURES OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0018] A preferred embodiment of the invention is now described in detail. Referring to the drawings, like numbers indicate like parts throughout the views. Unless otherwise specifically indicated in the disclosure that follows, the drawings are not necessarily drawn to scale. The present disclosure should in no way be limited to the exemplary implementations and techniques illustrated in the drawings and described below. As used in the description herein and throughout the claims, the following terms take the meanings explicitly associated herein, unless the context clearly dictates otherwise: the meaning of “a,” “an,” and “the” includes plural reference, the meaning of “in” includes “in” and “on.”
[0019] As shown in
[0020] In use, as shown in
[0021] As shown in
[0022] As shown in
[0023] An embodiment that includes an air escape groove is shown in
[0024] Photographs of one representative embodiment of a sampling thief are shown in
[0025] The sampling thief of the president invention allows the rod to be turned 180° when the sampling thief is in the open position in the blended powder. This facilitates “grabbing” a fresh sample that does not include air released from the cavities and that is likely to be more representative for the true distribution of the active drug in the blend.
[0026] The three-cavity design requires only a one time entering of the powder blend to sample at three different levels simultaneously. This presents an advantage because this system does not disturb the powder bed, which could influence the quality of the samples.
[0027] According to many pharmaceutical protocols, the sample weight of the powder taken by the cavity is usually in a range of from one to three times a weight of a desired finished dosage form and should not exceed three times the finished dosage weight. (For example, if the tablet weight will be 250 mg, each of the blend samples should have a weight in a range between 250 mg to 750 mg.) To achieve this, the cavity should have dimensions such that the volume of the cavity divided by the density of the powder equals a sample weight within the desired range. The following formula can be used to determine the dimensions of the cavity:
where: [0028] L=length of cavity; [0029] v=volume of cavity; [0030] R=radius of rod; [0031] C=central angle between each endpoint of the remaining segment of the rod after machining of the cavity.
[0032] Although specific advantages have been enumerated above, various embodiments may include some, none, or all of the enumerated advantages. Other technical advantages may become readily apparent to one of ordinary skill in the art after review of the following figures and description. It is understood that, although exemplary embodiments are illustrated in the figures and described below, the principles of the present disclosure may be implemented using any number of techniques, whether currently known or not. Modifications, additions, or omissions may be made to the systems, apparatuses, and methods described herein without departing from the scope of the invention. The components of the systems and apparatuses may be integrated or separated. The operations of the systems and apparatuses disclosed herein may be performed by more, fewer, or other components and the methods described may include more, fewer, or other steps. Additionally, steps may be performed in any suitable order. As used in this document, “each” refers to each member of a set or each member of a subset of a set. It is intended that the claims and claim elements recited below do not invoke 35 U.S.C. § 112(f) unless the words “means for” or “step for” are explicitly used in the particular claim. The above-described embodiments, while including the preferred embodiment and the best mode of the invention known to the inventor at the time of filing, are given as illustrative examples only. It will be readily appreciated that many deviations may be made from the specific embodiments disclosed in this specification without departing from the spirit and scope of the invention. Accordingly, the scope of the invention is to be determined by the claims below rather than being limited to the specifically described embodiments above.