The present invention relates generally to systems and methods for labeling vial systems, including systems and methods for labeling vial systems at cryogenic temperatures.
Maintaining vials at low temperatures during storage and transportation is often required to preserve and maintain the integrity of the product contained in the vials. For example, vials containing certain medical or chemical products require cryogenic storage and shipping temperatures. A cryogenic temperature range typically includes temperatures approximately between −190° C. and 0° C. Additionally, vials often require labels that satisfy labeling requirements that may be country specific. For example, if a vial contains a medical or chemical product, the vial label is required to identify the name of the product as well as the expiry date, among other requirements. Vial labels may also need to identify the name of a patient if the vials contain a medial product that is patient-specific. Also, it is often required for the label to not cover the entire surface of the vial in order to facilitate visual inspection of the contents inside the vial.
However, traditional labeling techniques often require vials to be at room temperature during the application process. This is undesirable because cryogenically stored products are temperature sensitive and should not be thawed, labeled, and refrozen. Additionally, it is not optimal to label vials at room temperature before freezing because it requires bulk labeling of vials before knowing to what markets and/or countries the vials will be shipped. Furthermore, vial labels often separate from the surface of the vials when stored at cryogenic temperatures due to a loss of adhering properties of the labels at low temperatures. Additionally, difficulties have been encountered when using traditional labeling techniques to apply labels to vials at cryogenic temperatures due to the buildup of frost on the surface of the vials in addition to the loss of adhering properties of labels at low temperatures. Consequently, there is a need for a better solution for labeling vials stored at cryogenic temperatures such that the labeling can be applied at cryogenic temperatures and the labels remain adhered throughout storage and transport.
Accordingly, an object of the invention is to provide users with a vial jacket that can receive a label and maintain the label adhered at a cryogenic temperature range. It is an object of the invention to provide users with systems and methods to permit the user to securely surround a vial with the vial jacket during storage and transportation. It is an object of the invention to provide users with systems and methods to permit the user to inspect the contents of the vial through a viewing window in the vial jacket.
In some aspects, a vial jacket configured to receive a label includes a plastic material, a hinge formed in the plastic material, a locking mechanism, and an opening formed in the plastic material. The plastic material has a cryogenic operating temperature range and is dimensioned to surround at least a portion of a vial. The hinge defines a first half shell having a first edge and a second half shell having a second edge. The locking mechanism is configured to secure the first edge of the first half shell to the second edge of the second half shell. The opening has an axial length and a transverse length.
In some embodiments, the cryogenic operating temperature range comprises a range of about −150° C. to about 0° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −190° C. to about 0° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −190° C. to about −135° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −150° C. to about −135° C. In some embodiments, the cryogenic operating temperature range comprises about one of the group consisting of −190° C., −180° C., −135° C., −80° C., and 0° C.
In some embodiments, the hinge is formed by a thinning of the plastic material. In some embodiments, the plastic material comprises at least one of HDPE, polypropylene, or other suitable plastic.
In some embodiments, the locking mechanism secures the vial jacket to the vial. In some embodiments, the locking mechanism is configured to snap fit the first edge of the first half shell to the second edge of the second half shell.
In some embodiments, the axial length of the opening is different than the transverse length of the opening. In some embodiments, the axial length of the opening is greater than the transverse length of the opening. In some embodiments, the transverse length of the opening is greater than the axial length of the opening. In some embodiments, the opening is proximate to at least one of the first edge of the first half shell or the second edge of the second half shell.
In some aspects, a vial assembly includes a vial and a vial jacket configured to receive a label. The vial jacket includes a plastic material, a hinge formed in the plastic material, a locking mechanism, and an opening formed in the plastic material. The plastic material has a cryogenic operating temperature range and is dimensioned to surround at least a portion of the vial. The hinge defines a first half shell having a first edge and a second half shell having a second edge. The locking mechanism is configured to secure the first edge of the first half shell to the second edge of the second half shell. The opening has an axial length and a transverse length.
In some embodiments, the cryogenic operating temperature range comprises a range of about −150° C. to about 0° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −190° C. to about 0° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −190° C. to about −135° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −150° C. to about −135° C. In some embodiments, the cryogenic operating temperature range comprises about one of the group consisting of −190° C., −180° C., −135° C., −80° C., and 0° C.
In some embodiments, the hinge is formed by a thinning of the plastic material. In some embodiments, the plastic material comprises at least one of HDPE, polypropylene, or other suitable plastic.
In some embodiments, the locking mechanism secures the vial jacket to the vial. In some embodiments, the locking mechanism is configured to snap fit the first edge of the first half shell to the second edge of the second half shell.
In some embodiments, the axial length of the opening is different than the transverse length of the opening. In some embodiments, the axial length of the opening is greater than the transverse length of the opening. In some embodiments, the transverse length of the opening is greater than the axial length of the opening. In some embodiments, the opening is proximate to at least one of the first edge of the first half shell or the second edge of the second half shell.
Other aspects and advantages of the invention can become apparent from the following drawings and description, all of which illustrate the principles of the invention, by way of example only.
The advantages of the invention described above, together with further advantages, may be better understood by referring to the following description taken in conjunction with the accompanying drawings. The drawings are not necessarily to scale, emphasis instead generally being placed upon illustrating the principles of the invention.
In some aspects, the systems and methods described herein can include a vial jacket that can receive a label and maintain the label adhered at a cryogenic temperature range. The systems and methods described herein can permit the user to securely surround a vial with the vial jacket during storage and transportation. The systems and methods described herein can permit the user to inspect the contents of the vial through an opening in the vial jacket.
Referring to
The surfaces of the vial jackets 104 and 204 may be suitable for receiving a label. The label may comprise information identifying a product inside of the vials 102 or 202, and any additional information related to the product. In some embodiments, the label is pressure-sensitive and adhesive. In some embodiments, the label is produced from a suitable plastic face stock and a cryo-stable adhesive attached to a release liner. In other embodiments, the label is produced from a suitable paper face stock and a cryo-stable adhesive attached to a release liner. In some embodiments, the label is a plastic label molded in place with the jacket, referred to as an in-mold label, forming a one-piece label/jacket component. The cryo-stable adhesive allows the label to adhere to the surface of the vial jackets 104 and 204 at a temperature range approximately between −190° C. and 0° C., and up to room temperature conditions. During the application process, the label is applied to the vial jacket and cured in order to secure the label onto the vial jacket in preparation for storage at frozen temperatures.
The vial jacket embodiments described herein comprise various features and mechanisms that facilitate use with vials and vial assemblies. For example, referring to
The plastic vial jacket 300 includes a clasping locking mechanism that is configured to secure a first edge of the first half shell to a second edge of the second half shell. The clasping locking mechanism includes one or more male components 306 at the first edge of the first half shell and one or more female components 308 at the second edge of the second half shell. The embodiment shown in
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In an illustrative embodiment, a vial jacket 300 configured to receive a label includes a plastic material, a hinge 302 formed in the plastic material, a locking mechanism, and an opening 304 formed in the plastic material. The plastic material has a cryogenic operating temperature range and is dimensioned to surround at least a portion of a vial 600 (or 700). The hinge 302 defines a first half shell having a first edge and a second half shell having a second edge. The locking mechanism is configured to secure the first edge of the first half shell to the second edge of the second half shell. The opening 304 has an axial length and a transverse length.
In some embodiments, the cryogenic operating temperature range comprises a range of about −150° C. to about 0° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −190° C. to about 0° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −190° C. to about −135° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −150° C. to about −135° C. In some embodiments, the cryogenic operating temperature range comprises about one of the group consisting of −190° C., −180° C., −135° C., −80° C., and 0° C. In some embodiments, the hinge 302 is formed by a thinning of the plastic material. In some embodiments, the plastic material comprises at least one of HDPE, polypropylene, or other suitable plastic.
In some embodiments, the locking mechanism secures the vial jacket 300 to the vial 600. In some embodiments, the locking mechanism is configured to snap fit the first edge of the first half shell to the second edge of the second half shell. In some embodiments, the axial length of the opening 304 is different than the transverse length of the opening 304. In some embodiments, the axial length of the opening 304 is greater than the transverse length of the opening 304. In some embodiments, the transverse length of the opening 304 is greater than the axial length of the opening 304. In some embodiments, the opening 304 is proximate to at least one of the first edge of the first half shell or the second edge of the second half shell.
In another illustrative embodiment, a vial assembly includes a vial 600 (or 700) and a vial jacket 300 configured to receive a label. The vial jacket includes a plastic material, a hinge 302 formed in the plastic material, a locking mechanism, and an opening 304 formed in the plastic material. The plastic material has a cryogenic operating temperature range and is dimensioned to surround at least a portion of the vial 600 (or 700). The hinge 302 defines a first half shell having a first edge and a second half shell having a second edge. The locking mechanism is configured to secure the first edge of the first half shell to the second edge of the second half shell. The opening 304 has an axial length and a transverse length.
In some embodiments, the cryogenic operating temperature range comprises a range of about −150° C. to about 0° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −190° C. to about 0° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −190° C. to about −135° C. In some embodiments, the cryogenic operating temperature range comprises a range of about −150° C. to about −135° C. In some embodiments, the cryogenic operating temperature range comprises about one of the group consisting of −190° C., −180° C., −135° C., −80° C., and 0° C. In some embodiments, the hinge 302 is formed by a thinning of the plastic material. In some embodiments, the plastic material comprises at least one of HDPE, polypropylene, or other suitable plastic.
In some embodiments, the locking mechanism secures the vial jacket 300 to the vial 600 (or 700). In some embodiments, the locking mechanism is configured to snap fit the first edge of the first half shell to the second edge of the second half shell. In some embodiments, the axial length of the opening 304 is different than the transverse length of the opening 304. In some embodiments, the axial length of the opening 304 is greater than the transverse length of the opening 304. In some embodiments, the transverse length of the opening 304 is greater than the axial length of the opening 304. In some embodiments, the opening 304 is proximate to at least one of the first edge of the first half shell or the second edge of the second half shell.
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As used herein, the term “approximately” or “about,” as applied to one or more values of interest, refers to a value that is similar to a stated reference value. In certain embodiments, the term “approximately” or “about” refers to a range of values that fall within 25%, 20%, 19%, 18%, 17%, 16%, 15%, 14%, 13%, 12%, 11%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, or less in either direction (greater than or less than) of the stated reference value unless otherwise stated or otherwise evident from the context (except where such number would exceed 100% of a possible value).
One skilled in the art will realize the invention can be embodied in other specific forms without departing from the spirit or essential characteristics thereof. The foregoing embodiments are therefore to be considered in all respects illustrative rather than limiting of the invention described herein. It will be appreciated that the illustrated embodiments and those otherwise discussed herein are merely examples of the invention and that other embodiments, incorporating changes thereto, including combinations of the illustrated embodiments, fall within the scope of the invention.
This application claims the benefit of priority to U.S. Provisional Patent Application No. 62/913,859, filed Oct. 11, 2019, the entire contents of which are owned by the assignee of the instant application and incorporated herein by reference in its entirety.
Number | Date | Country | |
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62913859 | Oct 2019 | US |