The present invention generally relates to packaging systems and methods for cold chain shipments. More particularly, the present invention relates to packaging systems and methods for cold chain shipments that use cellulose-based insulating materials.
The section headings used herein are for organizational purposes only and are not to be construed as limiting the subject matter described in any way.
To facilitate and extend the shelf life of products, such as, for example, bio-agents (including, for example, perishable reagents, cell cultures, and the like), chemicals, foods and pharmaceutical drugs, from manufacture through distribution, a temperature-controlled supply chain (sometimes referred to as a cold chain) is generally required. An unbroken cold chain, for example, generally includes an uninterrupted series of storage and distribution activities, which consistently maintain a product's environment within a desired, relatively low, temperature range. Consequently, packaging used in cold chain shipments must often maintain a product's environment within the desired, relatively low temperature range for an extended period of time, thereby ensuring that the product's temperature stays within the proper temperature range for the entire duration of the cold chain, from manufacture to end use.
Products requiring cold chain shipment are typically cooled prior to shipment, then placed within a thermal insulating material, and shipped with only a modicum of ice or refrigerant to absorb the heat that flows from the environment external to the packaging through the insulation. For many years, molded expanded polystyrene (“EPS”) containers have been used as a thermal insulating material for cold chain shipments. Perishable goods, for example, are generally placed within EPS containers (i.e., coolers), which are then in turn placed within cardboard or corrugated shipping boxes.
While providing satisfactory insulating qualities, as well as being generally light weight, EPS containers also pose issues. EPS, for example, is an “expanded,” non-compressible material that consists of numerous small air bubbles formed in a polystyrene matrix. Accordingly, EPS's poor volume efficiency may increase shipment costs when transporting empty containers to a location for use, cause increased warehousing costs when storing containers prior to use, as well as increase product shipment costs by providing a container that is often larger than may be needed to contain the product, thereby, costing more to ship and necessitating more coolant.
Growing concerns for the environment, including for example concerns about global warming and excessive packaging waste, have also driven various environmental concerns regarding EPS containers. EPS's poor volume efficiency, for example, results in a greater amount of container waste material that needs to be recycled and/or disposed of. Furthermore, EPS is not currently widely recyclable at all recycling facilities.
Consequently, various “green,” or environmentally friendly, packaging insulators, which use inflated air, foamed corn starch, or recycled EPS foam, have been developed for cold chain shipment applications. Such “green” options, however, still generally lack satisfactory volume efficiency (i.e., size of product to size of packaging) and viable (i.e., simple) recycling options. To replace conventional EPS and other insulating packaging materials, it may therefore be desirable to provide insulating packaging material that is not only made of a renewable resource, but also provides satisfactory insulating qualities and volume efficiency. It also may be desirable to provide insulating packaging material that offers a relatively simple recycling option using existing recycling infrastructure.
Embodiments of the present invention may solve one or more of the above-mentioned problems and/or may demonstrate one or more of the above-mentioned desirable features. Other features and/or advantages may become apparent from the description that follows.
In accordance with various exemplary embodiments of the present invention, a packaging system for cold chain shipment may include a container having interior surface portions, a plurality of cellulose sheets disposed along the interior surface portions and defining a space configured to receive an item for cold chain shipment, and a cold source disposed within the space and configured to cool the container for cold chain shipment. The packaging system may further include a plurality of cellulose sheets, wherein adjacent sheets of the plurality of cellulose sheets define a plurality of pockets configured to trap air, and wherein the plurality of cellulose sheets are configured to insulate the space.
In accordance with various additional exemplary embodiments, a method for packaging an item for cold chain shipment may include disposing a plurality of cellulose sheets along interior surface portions of a container, disposing a cold source within the container, and disposing an item for cold chain shipment within the container. The method for packaging an item for cold chain shipment may further include substantially surrounding the item with a substantially uniform thickness of the plurality of cellulose sheets wherein adjacent sheets of the plurality of cellulose sheets define small pockets configured to trap air, and wherein the plurality of cellulose sheets insulate the item during cold chain shipment.
In accordance with various further exemplary embodiments, a method for preparing packaging for shipment of an item may include draping a plurality of cellulose sheets over a mandrel and inserting the mandrel and the plurality of cellulose sheets into a space defined by interior surface portions of a container. The method for preparing packaging for shipment may further include removing the mandrel from the space without removing the plurality of cellulose sheets, wherein the plurality of cellulose sheets define a substantially uniformly thick liner around interior surface portions of the container.
Additional objects and advantages will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the present invention. The objects and advantages may be realized and attained by means of the elements and combinations particularly pointed out in the appended claims and their equivalents.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the claims.
Embodiments of the present invention may be understood from the following detailed description either alone or together with the accompanying drawings. The drawings are included to provide a further understanding, and are incorporated in and constitute a part of this specification. The drawings illustrate one or more exemplary embodiments of the present invention and together with the description serve to explain various principles and operation.
Conventional cold chain shipping materials are often bulky and difficult to recycle. Such materials, for example, may cost more to ship and require the use of relatively large amounts of coolant, while also generating excessive amounts of often unrecyclable packaging waste. To increase shipping efficiency and the recyclability of packaging waste, various exemplary embodiments of the present invention provide packaging systems and methods for cold chain shipment that use cellulose-based insulating materials that may be conformable to a product's size so as to reduce the overall amount and size of the packaging. Such cellulose-based insulating materials may be made from a renewable resource, for example, originating from managed forests versus mined natural resources such as petroleum. Furthermore, such cellulose-based insulating materials may be recycled with other paper products utilizing conventional paper recycling infrastructure, thereby facilitating the end receiver's (e.g., customer's) collection (e.g., large volumes of paper can be compacted in standard compactors) and recycling of the packaging (e.g., paper can be recycled at almost all recycling facilities). In various exemplary embodiments, packaging systems and methods for cold chain shipment use a plurality of cellulose sheets disposed along interior surface portions of a container, such as a cardboard box, wherein the plurality of cellulose sheets are configured to insulate an item for cold chain shipment.
The container 102 may comprise any carton, box and/or other structure suitable for containing an item and insulating material (i.e., the plurality of cellulose sheets) for cold chain shipment. For environmental purposes (e.g., including ease of recycling), for example, in various exemplary embodiments, the container 102 may be a standard cardboard box, for example, made from recycled materials. Those ordinarily skilled in the art will understand, however, that container 102 may be formed from various materials, including, for example, new or recycled paper, plastic and/or a wood material. Those ordinarily skilled in the art would further understand that the size of container 102 can be chosen based on the item being shipped, cost to make and/or ship, efficiency, and other such factors.
In certain embodiments, a plurality of cellulose sheets 104 may line, or be disposed along, the interior surface portions 101 and define a space 112 within the container 102, the space 112 being configured to receive an item 105 for cold chain shipment. With reference to
The number and configuration of the pockets 106 and the consequent trapping of air provide a thermal insulating barrier suitable for cold chain shipment. In various exemplary embodiments, adjacent cellulose elements may define, for example, from 10 to 50 pockets per square inch, for example, about 30 pockets per square inch. By way of further example, one layer of the plurality of cellulose sheets 104 (see
The plurality of cellulose sheets 104 are configured to insulate the space 112, ensuring that the temperature of an item 105, such as, for example, a bio-agent, stays within a desired temperature range for the entire duration of the cold chain shipment. In various exemplary embodiments, for example, the plurality of cellulose sheets 104 are configured to maintain the space 112 at a temperature sufficient for cold chain shipment for a time period of at least 20 hours, 24 hours, or at least about 30 hours. In various additional exemplary embodiments, the plurality of cellulose sheets 104 are configured to maintain the space 112 at a temperature of less than or equal to 8° C., less than or equal to 2° C., or less than or equal to −10° C., for a period of time sufficient for cold chain shipment.
Those ordinarily skilled in the art will understand that the plurality of cellulose sheets 104 may have any number of configurations suitable for providing insulating space 112 without departing from the scope of the present invention. In various exemplary embodiments, one or more of the cellulose sheets 104 may comprise a cellulose wadding 104, for example, as shown schematically in
In certain embodiments, one or more cellulose wads 104 comprise two continuous outer sheets joined together to define a volume containing cellulose sheets, strips, or elements 109. The two continuous outer sheets of the cellulose wads 104 may themselves be made of a cellulose material. Alternatively, at least one of the outer sheets is made, in whole or in part, of a non-cellulose material, for example, a plastic or metallic sheet or membrane. One or both outer sheets may, for example, comprise a waterproof or water-resistant material, a material having additional insulating properties above the insulating properties of the sheets, strips, or elements 109 disposed between the outer sheets.
In various additional exemplary embodiments, the plurality of cellulose sheets 104 may define a substantially uniformly thick lining 114 along the interior surface portions 101 of the container 102, wherein a thickness t of the lining 114 is, for example, greater than or equal to about 1.5 inches. Those ordinarily skilled in the art will also understand, however, that the plurality of cellulose sheets 104 may have any number of configurations based upon the specific factors of a shipping application, including, for example, the payload size (i.e., the size of the item 105 being shipped), the type of cold source 103, the average ambient temperature, and the shipment time. Various exemplary embodiments of the present invention consider, for example, a substantially linear relationship between the thickness t of the lining 114 and the lining's insulating properties (e.g., doubling the thickness t doubles the insulating effects). Accordingly, various embodiments of the present invention contemplate adjusting the thickness t of the lining 114 based upon shipment application.
Those ordinarily skilled in the art will further understand that the plurality of cellulose sheets 104 may comprise any type of cellulose wadding, dunnage, stuffing, padding and/or packing material configured and arranged so as to form a plurality of air pockets, as described with reference to
In various embodiments, the plurality of cellulose sheets 104 may have an R-Value (i.e., thermal performance rating) of greater than or equal to about 2. In various additional embodiments, the plurality of cellulose sheets 104 may comprise a hydroscopic cellulose material that wicks moisture produced by the cold source 103 away from the space 112. Although not wishing to be bound by any particular theory, it is believed that providing such a wicking effect may subject the plurality of cellulose sheets 104 to a freeze/thaw cycle that may for an initial time period, or for approximately half the duration of shipment, decrease the temperature of space 112 to lower than the cold source temperature (i.e., causing evaporative cooling).
In various additional exemplary embodiments, the plurality of cellulose sheets 104 may substantially conform to the item 105 for cold chain shipment, thereby also providing exceptional volume efficiency (i.e., size of the item 105 to size of the container 102). Consequently, when appropriate, smaller containers may be utilized to reduce the amount of required coolant and reduce shipping costs. Those of ordinary skill in the art would further understand that the plurality of cellulose sheets 104 may be generally substantially compressible/packable, which may also reduce shipment costs when transporting packaging to a location for use and reduce warehousing costs when storing packaging prior to use.
As shown in
In various exemplary embodiments, the cold source 103 may comprise dry ice, whereas in various additional exemplary embodiments, the cold source 103 may comprise at least one frozen gel pack. In various further exemplary embodiments, the cold source 103 may also comprise the item 105 itself if the item 105 is cooled to a temperature suitable for cold chain shipment prior to being packaged in the system 100. The type and/or amount of cold source 103 can therefore be chosen based on application, cost, temperature, efficiency, and other such factors. In various exemplary embodiments, for example, the cold source 103 may comprise from about 1.5 to about 5 lbs of dry ice, for example, about 3.5 lbs of dry ice loaded on top of item 105.
In accordance with various exemplary embodiments of the present invention, an exemplary method for packaging an item 105 in a container 102 for cold chain shipping, as illustrated in
The item 105 and a cold source 103 may then be placed within the space 112 defined by the plurality of cellulose sheets 104. Various exemplary embodiments contemplate, for example, placing the cold source 103, which may be, for example, dry ice or a frozen gel pack, on top of the item 105, as shown in
To insulate the item 105 during cold chain shipment, the plurality of cellulose sheets 104 may be positioned and arranged to substantially surround the item 105 with a substantially uniform thickness t of the plurality of cellulose sheets 104. In various exemplary embodiments, to substantially surround the item 105, the size of the plurality of cellulose sheets 104 is configured such that edge portions 115 extend beyond the item 105 and any cold source 103 to an extent sufficient to fold the edge portions 115 over the upper surface portion 116 defined by the structures placed in the space 112. For example, in the exemplary embodiment of
As shown in
In accordance with various exemplary embodiments, an exemplary method for preparing packaging for shipment of an item will now be described with reference to
As illustrated in
As illustrated in
Once the plurality of cellulose sheets 104 are placed in the container 102, as depicted in
Referring to
With further reference to
In the illustrated embodiment, walled element 144 is made of cardboard and comprises four side walls. Additionally or alternatively, walled element 144 may include other material such as, for example, aluminum or other metal foil, a polymer material, vapor barrier, moisture barrier, or the like. Additionally or alternatively, walled element 144 may comprise a top cover and/or floor made of one or more of at least some of the same materials as the side walls of walled element 144.
Referring to
Elements 310 and 320 of method 300 may alternatively comprise forming cellulose unit 140 inside container 102 by first placing cellulose sheet 104a along some of interior surface portions 101 of container 102 and subsequently placing cellulose sheet 104b along other interior surface portions 101. Elements 310 and 320 may further comprise forming cellulose unit 140 with additional cellulose sheets, either before and/or after cellulose sheets are placed within container 102.
In certain embodiment, method 300 additionally comprises placing, and optionally attaching, walled element 144 within space 112 defined by cellulose unit 140. Walled element 144 may have a height that is less than the height of container 102, for example, a height that is selected to allow container 102 to be closed while accommodating portions of cellulose unit above and/or below walled element 144. In some embodiments, the method 300 further comprises forming cellulose unit 140 by draping cellulose sheets 104a, 104b over a fixture, for example, over spindle 202 shown in
To verify the thermal insulating efficiency of the systems and methods in accordance with exemplary embodiments of the present invention, several experiments were conducted with the results being illustrated in
In
Two separate samples of cellulose wadding (sample A and sample B) were tested. Sample A comprised three layers of standard Custom Wrap™ wadding (ULine® model number S610), each layer being 18 ply with a thickness of 0.5 inches, for a total thickness of 1.5 inches. Sample B comprised three layers of standard Versa-Pak™ wadding (ULine® model number S3577), each layer with a thickness of 0.5 inches, for a total thickness of 1.5 inches. As shown in
In
The cellulose wadding system comprised three layers of standard Custom Wrap™ wadding (ULine® model number S610), 18 ply with a thickness of 0.5 inches, for a total thickness of 1.5 inches. As shown in
Accordingly,
For the purposes of this specification and appended claims, unless otherwise indicated, all numbers expressing quantities, percentages or proportions, and other numerical values used in the specification and claims, are to be understood as being modified in all instances by the term “about” if they are not already. Accordingly, unless indicated to the contrary, the numerical parameters set forth in the specification and attached claims are approximations that may vary depending upon the desired properties sought to be obtained for embodiments of the present invention. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques.
Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the various embodiments the present invention are approximations, the numerical values set forth in the specific examples are reported as precisely as reasonably possible. Any numerical value, however, inherently contains certain errors necessarily resulting from the standard deviation found in their respective testing measurements. Moreover, all ranges disclosed herein are to be understood to encompass any and all sub-ranges subsumed therein.
It is noted that, as used in this specification and the appended claims, the singular forms “a,” “an,” and “the,” and any singular use of any word, include plural referents unless expressly and unequivocally limited to one referent. As used herein, the term “include” and its grammatical variants are intended to be non-limiting, such that recitation of items in a list is not to the exclusion of other like items that can be substituted or added to the listed items.
It should be understood that while the present invention has been described in detail with respect to various exemplary embodiments thereof, it should not be considered limited to such, as numerous modifications are possible without departing from the broad scope of the appended claims.
This application is a continuation-in-part application of, and claims prior to, U.S. patent application Ser. No. 12/568,636, filed Sep. 28, 2010, the entire contents of which is hereby incorporated by reference in its entirety for all purposes as if fully set forth herein.
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Number | Date | Country | |
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Parent | 12568636 | Sep 2009 | US |
Child | 12892863 | US |