1. Field of the Invention
The present invention relates to a thermally insulating member and, more particularly, to a structure of a thermally insulating member providing an excellent thermally insulating effect such that a container with high temperature is able to be held via the thermally insulating member.
2. Description of the Related Art
With reference to
In use of the conventional thermally insulating member 9, it is wrapped around an outer periphery of a container C. The thermally insulating layer 91 abuts against the outer periphery of the container C, and the surface layer 92 allows a user to hold the thermally insulating member 9. Since the thermally insulating layer 91 is wavy, the thermally insulating layer 91 is in discontinuous contact with the outer periphery of the container C to reduce direct transmission of the high temperature from the contents in the container C to the thermally insulating member 9. Thus, if the temperature of the contents inside the container C is high or the container C is heated by a heating device such as a microwave, the user can directly hold the thermally insulating member 9 to avoid scalding by the high temperature of contents in the container C, providing the user with convenience while holding the container C.
Although the conventional thermally insulating member 9 can insulate the high temperature of contents in the container C, the thermally insulating effect of the thermally insulating member 9 is mainly provided by reducing the contact area between the thermally insulating layer 91 and the container C by discontinuous contact. However, the thermally insulating layer 91 of the thermally insulating member 9 is wavy and, thus, contacts with the container C by a strip-shaped area, which is still relatively large. Besides, the insulating layer 91 is in adhesion the surface layer 92 and, thus, provides a limited thermally insulating effect. Once the contact time between the insulating member 9 and the container C is too long, the high temperature of the contents in the container C will be transmitted to the surface layer 92 via the insulating layer 91, eventually. Namely, the thermally insulating effect of the conventional thermally insulating member 9 should be improved.
Furthermore, with reference to
Thus, how to provide a thermally insulating member that is low cost in use while providing an excellent thermally insulating effect is a problem to be solved by the manufacturers of the thermally insulating members.
What is needed is a thermally insulating member able to provide a plane sheet before use for reducing the volume of a plurality of thermally insulating members.
Another need is a thermally insulating member including a sheet with a plurality of broken lines for improving the thermally insulating effect of the thermally insulating member
A further another need is a thermally insulating member with the sheet stretched outward by a outer surface of the container when the sheet is mounted around the container to provide a plurality of heat dissipating holes, further improving the thermally insulating effect of the thermally insulating member.
The present disclosure fulfills the above objective by providing:
A thermally insulating member comprises a sheet. The sheet includes a first direction and a second direction perpendicular to each other. The sheet is able to form a cyclic structure encircling the second direction. The sheet includes a plurality of broken lines extending along the second direction, and two adjacent broken lines are spaced from each other in the first direction. Each broken line includes a plurality of slits, and two adjacent slits are spaced from each other in the second direction.
In an embodiment of the thermally insulating member according to the present disclosure, two ends of each slit of the broken lines respectively connect a pre-fold line, and the pre-fold line extends towards two sides of the sheet in the first direction.
For the above mentioned thermally insulating member, the sheet means for being mounted around a container, and the cyclic structure has a first state and a second state. The cyclic structure has a first circumference in the first state, and the first circumference is smaller than a circumference of the outer surface of the container. The cyclic structure has a second circumference in the second state, and the second circumference is equal to the circumference of the outer surface of the container. The sheet is stretched outward by the container to transform the cyclic structure from the first state into the second state. The pre-fold lines connected to the two ends of each slit are bended to form fold lines, and the fold lines also extends towards the two sides of the sheet 1 in the first direction.
For the above mentioned thermally insulating member, each broken line is parallel to the second direction.
In another embodiment of the thermally insulating member according to the present disclosure, each slit has a first section aligned with the second direction, and two ends of the first section respectively connects a second section. The two second sections extend towards a side of the sheet in the first direction.
For the above mentioned thermally insulating member, the sheet means for being mounted around a container. The cyclic structure has a first state and a second state. The cyclic structure has a first circumference in the first state, and the first circumference is smaller than a circumference of the outer surface of the container. The cyclic structure has a second circumference in the second state, and the second circumference is equal to the circumference of the outer surface of the container. The sheet is stretched outward by the container to transform the cyclic structure from the first state into the second state. A thermally insulating strip is defined between two adjacent broken lines. Each of the second sections provides a guiding force to bend the adjacent thermally insulating strip and form a fold line on the sheet.
The plurality of slits of two adjacent broken lines is arranged in a staggered manner in the first direction.
The plurality of slits of two adjacent broken lines is arranged in an overlapping staggered manner in the first direction. A slit of one of the broken lines overlaps with another slit of the other broken line in the first direction, and the two slits are located in different positions in the second direction.
A thermally insulating strip is defined between two adjacent broken lines, and each thermally insulating strip has two ends spaced from each other in the second direction. Each end of the thermally insulating strip has at least one rounded corner.
The sheet has two peripheries spaced from each other in the second direction. The slits communicating with one of the peripheries have a first length, and the slits communicating with the other periphery have a second length. The first length is longer than the second length.
The sheet has two sides spaced from each other in the first direction. Each side of the sheet has a coupling portion. The plurality of broken lines is arranged between the two coupling portions, and the two coupling portions are able to couple with each other.
The sheet has a separation portion located between the two coupling portions, and the plurality of broken lines is arranged between the separation portion and each of the coupling portions.
Two adjacent broken lines are spaced from each other in the first direction by a spacing, and the spacings of every two adjacent broken lines are even.
Two adjacent broken lines are spaced from each other in the first direction by a spacing. The sheet has an axis parallel to the second direction, and the spacings of every two adjacent broken lines decrease or increase from the axis towards the two coupling portions
One of the coupling portions is applied with an adhesive, and the other coupling portion is bonded to the coupling portion with the adhesive to form the sheet in the cyclic structure.
A coupling mechanism is formed on the two coupling portions. The coupling mechanism includes a coupling member in one of the coupling portions and a coupling hole on the other coupling portion.
The sheet means for being mounted around a container. The cyclic structure has a first state and a second state. The cyclic structure has a first circumference in the first state, and the first circumference is smaller than a circumference of the outer surface of the container. The cyclic structure has a second circumference in the second state, and the second circumference is equal to the circumference of the outer surface of the container. The sheet is stretched outward by the container to transform the cyclic structure from the first state into the second state.
A thermally insulating strip is defined between two adjacent broken lines. Each of the junctions between the thermally insulating strips and the plurality of slits of the broken lines forms a rib, and a distance is formed between each rib and the outer surface of the container. Each of the portions of the insulating strips connected to the spacing portions between the plurality of slits forms a stretchable rib.
For two thermally insulating strips adjacent to each other, a rib of one of the thermally insulating strips is align with a stretchable rib of the other thermally insulating strip in the first direction A heat dissipating hole is defined between rib and the stretchable rib, and the heat dissipating hole penetrates through the sheet and communicates with the outer surface of the container.
The effect achieved by the above technical solution is that the thermally insulating member includes a sheet, with the sheet includes a plurality of flat thermally insulating strips before use, effectively reducing the volume of a plurality of thermally insulating members. On the other hand, the sheet includes a plurality of broken lines, and each broken line includes a plurality of slits. A thermally insulating strip can be defined between two adjacent broken lines, such that the sheet is stretched outward by a outer surface of the container when the sheet is mounted around the container to force the cyclic structure formed by the sheet to transform from a first state into a second state, and ribs and stretchable ribs are formed on each thermally insulating strip. A heat dissipating hole is defined between the rib of one of the thermally insulating strips and the stretchable rib of another adjacent thermally insulating strip, effectively improving the thermally insulating effect of the thermally insulating member.
The illustrative embodiments may best be described by reference to the accompanying drawings where:
a is a perspective view of a thermally insulating member of a first embodiment according to the present disclosure.
b is a perspective view of another example of the thermally insulating member of the first embodiment according to the present disclosure.
a is a perspective view illustrating the thermally insulating member of the first embodiment according to the present disclosure formed in a tubular shape.
b is a perspective view illustrating use of the thermally insulating member of the first embodiment according to the present disclosure on a container.
The present disclosure will become clearer in light of the following detailed description of illustrative embodiments of this disclosure described in connection with the drawings.
With reference to
Since two adjacent broken lines 12 are spaced from each other in the first direction X, a flat thermally insulating strip 13 is defined between two adjacent broken lines 12. Each thermally insulating strip 13 has two ends spaced from each other in the second direction Y. Each end of the thermally insulating strip 13 has at least one rounded corner 131. Specifically, a thermally insulating strip 13 separates two adjacent broken lines 12 from each other. Since two adjacent slits 121 of a broken line 12 are spaced from each other in the second direction Y, a spacing portion is formed between two adjacent slits 121. Two adjacent thermally insulating strips 13 can connect each other via the spacing portions between the plurality of slits 121, and thus the two adjacent thermally insulating strips 13 will not detach from each other.
In this embodiment, each broken line 12 is parallel to the second direction Y. Namely, the plurality of slits 121 of each broken line 12 is parallel to the second direction Y. However, with reference to
With reference to
Specifically, the sheet 1 forms the cyclic structure encircling the second direction Y, and the cyclic structure has a first state and a second state. With reference to
Meanwhile, when the cyclic structure transforms into the second state, since the sheet 1 has a plurality of broken lines 12, each of the junctions between the thermally insulating strips 13 and the plurality of slits 121 of the broken lines 12 will deflect away from the container C1 to form a rib 13a. Relatively, each of the portions of the insulating strips 13 that is not connected to the plurality of slits 121, namely, each of the portions of the insulating strips 13 connected to the spacing portions between the plurality of slits 121, will form a stretchable rib 13b. The stretchable ribs 13b abut against the outer surface of the container C1. Since two adjacent slits 121 are spaced from each other in the second direction Y, the ribs 13a and the stretchable ribs 13b are formed on each thermally insulating strip 13 in a staggered manner, such that the thermally insulating strips 13 become slanted, protrusive, and wavy.
More specifically, with reference to
Due to Newton's third law, the sheet 1 is stretched outward by the container C1 with the stretchable ribs 13b of the thermally insulating strips 13 abutting against the outer surface of the container C1 and, thus, provides a wrapping and tightening effect by the physical properties such as a reaction force of the sheet 1. Thus, the sheet 1 can tightly abut around the container C1 without the risk of disengagement. An end of each rib 13 of the thermally insulating strips 13 away from the container C1 allows a user to hold. Since the sheet 1 includes a plurality of thermally insulating strips 13, and each thermally insulating strip 13 can form a plurality of ribs 13, the ribs 13 can share the pressure came from a hand of the user in order to prevent the thermally insulating strips 13 from excessive deformation. Therefore, the sheet 1 is ensured to contact the container C1 only through the stretchable ribs 13b. On the other hand, each end of the thermally insulating strip 13 has at least one rounded corner 131. The rounded corner 131 can prevent the user from getting cut by the peripheries of the sheet 1, especially while the user grabs the sheet 1 in quick motion.
In accordance with the above structure,
Besides, a thermally insulating strip 13 is defined between two adjacent broken lines 12 because of the two adjacent broken lines 12 are spaced from each other in the first direction X. Each broken line 12 includes a plurality of slits 121, with two adjacent slits 121 spaced from each other in the second direction Y. When the sheet 1 is positioned around the container C1 in the predetermined location, the outer surface of the container C1 at the predetermined location has the surface circumference larger than the circumference of the cyclic structure formed by the sheet 1 since the diameter of the container C1 at the predetermined is larger than the inner diameter of the cyclic structure. Thus, the sheet 1 will be stretched outward by the container C1 and the cyclic structure thereof transform from the first state into the second state. The ribs 13a and the stretchable ribs 13b are formed on each thermally insulating strip 13 in a staggered manner, with a distance D formed between each rib 13a and the outer surface of the container C1, and with the stretchable ribs 13b abutting against the outer surface of the container C1. In this case, the sheet 1 is in point contact with the container C1. In comparison with the conventional thermally insulating member 9 which contacts with the container C by a strip-shaped area, which is still relatively large, the sheet 1 of the thermally insulating member of the first embodiment is in point contact with the container C1 and, thus, has a limited contact area, effectively reducing the rate of the temperature transmission between the container C1 and the sheet 1. As a result, the thermally insulating effect of the thermally insulating member of the first embodiment is improved.
In addition, in this embodiment, the sheet 1 can be made of paper or plastic material. When the cyclic structure formed by the sheet 1 is in the second state, for two thermally insulating strips 13 adjacent to each other, a heat dissipating hole 2 is defined between the rib 13a of one of the thermally insulating strips 13 and the stretchable rib 13b of the other thermally insulating strip 13. In other words, the sheet 1 includes a plurality of heat dissipating holes 2 distributed on it. The heat dissipating holes 2 penetrate through the sheet 1 and communicate with the outer surface of the container C1 and, thus, the heat dissipating holes 2 are fulfilled with air. The thermal conductivity of air is about 0.024 W/mK, which is lower than the thermal conductivity of paper or plastic material (about 0.05 W/mK). Therefore, in comparison with the conventional thermally insulating member 9 that the high temperature of the contents in the container C will be transmitted to the surface layer 92 via the insulating layer 91, the sheet 1 of the thermally insulating member of the first embodiment includes a plurality of heat dissipating holes 2 penetrating through it, and, thus, the air in the heat dissipating holes 2 can reduced the rate of the temperature transmission on the sheet 1, further improving the thermally insulating effect of the thermally insulating member of the first embodiment.
Noted that in this embodiment, the plurality of slits 121 of two adjacent broken lines 12 can be arranged in a staggered manner in the first direction X, so that for two thermally insulating strips 13 adjacent to each other, a rib 13a of one of the thermally insulating strips 13 is align with a stretchable rib 13b of the other thermally insulating strip 13, and a heat dissipating hole 2 is defined between the two adjacent thermally insulating strips 13. The plurality of slits 121 of two adjacent broken lines 12 can be arranged in an overlapping staggered manner in the first direction X. That is, a slit 121 of one of the broken lines 12 overlaps with another slit 121 of the other broken line 12 in the first direction X, and the two slits 121 are located in different positions in the second direction Y. However, the plurality of slits 121 of two adjacent broken lines 12 can be arranged in a non-overlapping staggered manner in the first direction X. That is, a slit 121 of one of the broken lines 12 does not overlap with any other slit 121 of the other broken line 12 in the first direction X. The present disclosure does not limit the plurality of slits 121 of two adjacent broken lines 12 to be arranged in the overlapping or non-overlapping staggered manner. Yet the plurality of slits 121 of two adjacent broken lines 12 can be arranged in an alignment manner in the first direction X as long as the slits 121 of the two adjacent broken lines 12 have different lengths or shapes. Namely, a heat dissipating hole 2 can still be defined between the two adjacent thermally insulating strips 13 by the slits 121 with different lengths or shapes. The present disclosure does not limit the plurality of slits 121 of two adjacent broken lines 12 to be arranged in the staggered manner or alignment manner in the first direction X.
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In accordance with the above structure, for the thermally insulating members of the second and third embodiments of this disclosure, fold line 14′ are formed on the sheet 1 when the cyclic structure formed by the sheet 1 transforms from the first state into the second state. The fold lines 14′ extends towards the two sides of the sheet 1 in the first direction X, and two ends of each slit 121 of the broken lines 12 respectively connect a fold line 14′. The fold lines 14′ can let the cyclic structure transform from the first state into the second state smoothly, and help the thermally insulating strips 13 to form the ribs 13a and stretchable ribs 13b. Thus, the thermally insulating strips 13 are rapidly formed into a predetermined shape, effectively enhancing structural strength of the sheet 1 and improving the convenience to use the thermally insulating members of the second and third embodiments of this disclosure.
In addition, for the thermally insulating member of the third embodiment disclosed above, each slit 121 with the first section 121a and the two second sections 121b is in the squama shape. When the cyclic structure transforms into the second state, each of the second sections 121b can provide a guiding force to bend the adjacent thermally insulating strip 13 and, thus, a fold line 14′ can be formed on the sheet 1. However, each slit 121 can be in a curved shape or a polygonal shape to obtain similar features of the slit 121 in the squama shape. Therefore, the slit 121 can be a straight line or in several types of nonlinear shape as required, which is not limited to the squama shape disclosed in the third embodiment.
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With the previously disclosed structural features, the main characters of the first, second, third, and forth embodiments of thermally insulating member of the present disclosure lie in that:
By providing a thermally insulating member including a sheet, with the sheet 1 including a first direction X and a second direction Y perpendicular to each other, with the sheet 1 having two sides spaced from each other in the first direction X, with the sheet 1 including a plurality of broken lines 12 extending along the second direction Y, with two adjacent broken lines 12 are spaced from each other in the first direction X, with each broken line 12 including a plurality of slits 121, and with two adjacent slits 121 spaced from each other in the second direction Y, a thermally insulating strip 13 can be defined between two adjacent broken lines 1. By such arrangement, the two sides of the sheet 1 are able to couple with each other so that the sheet 1 can form a cyclic structure. When the sheet 1 is mounted around a container, the sheet 1 is stretched outward by a outer surface of the container if the circumference of the cyclic structure is smaller than a circumference of the outer surface of the container, and ribs 13a and stretchable ribs 13b are formed on each thermally insulating strip 13. Therefore, a distance D is formed between each rib 13a and the outer surface of the container, the stretchable ribs 13b abut against the outer surface of the container, and each thermally insulating strip 13 is in point contact with the outer surface of the container.
In accordance with the above structure, the thermally insulating member of this disclosure is in a spread out state before use. The thermally insulating strips 13 are flat, such that the thermally insulating member is mainly formed by the plane sheet 1. In other words, the sheet 1 of the thermally insulating member of this disclosure is plane with smaller thickness, effectively reducing the volume of a plurality of thermally insulating members.
Besides, the sheet 1 of the thermally insulating member of this disclosure can be in point contact with the outer surface of the container via the ribs 13a and the stretchable ribs 13b of each thermally insulating strip 13. Thus, the sheet 1 has a limited contact area with the container, effectively reducing the rate of the temperature transmission between the container and the sheet 1. As a result, the thermally insulating effect of the thermally insulating member of this disclosure is improved.
Furthermore, a heat dissipating hole 2 is defined between the rib 13a of one of the thermally insulating strips 13 and the stretchable rib 13b of another adjacent thermally insulating strip 13. The sheet 1 of the thermally insulating member of this disclosure includes a plurality of heat dissipating holes 2 distributed on it. The heat dissipating holes 2 penetrate through the sheet 1 and communicate with the outer surface of the container C1 and, thus, the heat dissipating holes 2 are fulfilled with air. Therefore, the air in the heat dissipating holes 2 can reduced the rate of the temperature transmission on the sheet 1, further improving the thermally insulating effect of the thermally insulating member of this disclosure.
In sum, the thermally insulating member of the present disclosure can improve the thermally insulating effect and reduce the volume thereof. Thus, a customer can directly hold the thermally insulating member to avoid scalding by high temperature of the hot food in a container, and the volume and costs of a plurality of thermally insulating members in storage or during transportation are reduced.
Thus since the invention disclosed herein may be embodied in other specific forms without departing from the spirit or general characteristics thereof, some of which forms have been indicated, the embodiments described herein are to be considered in all respects illustrative and not restrictive. The scope of the invention is to be indicated by the appended claims, rather than by the foregoing description, and all changes which come within the meaning and range of equivalency of the claims are intended to be embraced therein.
Number | Date | Country | Kind |
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102115888 | May 2013 | TW | national |
This is a continuation-in-part application of U.S. patent application Ser. No. 14/264,282 filed on Apr. 29, 2014.
Number | Date | Country | |
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Parent | 14264282 | Apr 2014 | US |
Child | 14616804 | US |