VIBRATION-ABSORBING AIR SHEATH HAVING IMPROVED END-CLOSING STRUCTURE
A vibration-absorbing air sheath having improved end-closing structure includes a first and a second buffering walls, at least one first and at least one second nodes, a third buffering wall and an accommodating space. The buffering walls are constructed by air columns. The first and second buffering walls are atop heat-sealed together at each of two ends of the air sheath so as to form a binding portion and a lower flat-bottomed opening. After inflation of the air columns, the air columns of the first and second buffering walls outside the binding portion and the air columns of the third buffering wall form a triangular end buffering portion. The air columns in the end buffering portion have slanted creases for their easy upward-bending so as to make the air columns in the end buffering portion spread and provide a maximized buffering area at the end of the air sheath's ends.
1. Technical Field
The present invention relates to packing materials, and more particularly, to a vibration-absorbing air sheath that has air columns processed by heat sealing so that the air columns are shaped through interaction therebetween caused by air pressure and thereby has improved end-closing structure.
2. Description of Related Art
There has been a vacuum-based, hammock-type vibration-absorbing sheath mainly comprises: a first buffering wall, composed of a plurality of air columns that are formed by a plurality of heat-seal edges, and having one side formed with an extended edge; a second buffering wall, composed of a plurality of air columns that are formed by a plurality of heat-seal edges; a third buffering wall, composed of a plurality of air columns that are formed by a plurality of heat-seal edges, and having one side formed with an extended edge; an accommodating space, defined by the first, second and third buffering walls; an internal membrane, having a bag-like structure made of flexible PE film, PE composite film or plastic sheet, and being connected to the extended edges of the first and third buffering walls through an opening edge, so that the internal membrane is suspended in the accommodating space. In use of the prior-art device, the object to be packed is first placed into the internal membrane, and an external apparatus is used to suck out air in the internal membrane, so as to make the interior of the internal membrane a vacuum environment and make the internal membrane completely wrap the object. At last, the extended edges of the first and third buffering walls and the open edge of the internal membrane are heat-sealed together with the interior of the internal membrane remaining vacuum. Thereby, the object during transport is wrapped by the internal membrane and embraced by the first, second and third buffering walls, and obtains effective buffering protection.
The aforementioned structure mainly features attaching an open edge of the internal membrane to the extended edges of the first buffering wall and the third buffering wall, so that the internal membrane is positioned in the accommodating space formed by the first, second and third buffering walls. After an object to be packaged is placed into the internal membrane, an external apparatus is made to suck air from the internal membrane until the interior of the internal membrane becomes a vacuum while the internal membrane completely wraps the object to be packaged. With the buffering protection provided by the first, second and third buffering walls, the objective is well protected. Despite the foregoing features, the prior art is defective as the joints between the buffering walls tend to be formed as irregular, towering corners, which when receiving squeezes or impacts are likely to have their air columns bursting, and in turn make the entire buffering structure lose the vibration-absorbing function.
SUMMARY OF THE INVENTIONThe present invention provides a vibration-absorbing air sheath having improved end-closing structure. The vibration-absorbing air sheath is for wrapping an object and providing buffering protection to the object, and primarily comprises a first buffering wall, a second buffering wall, at least one first node, at least one second node, a third buffering wall and an accommodating space. Therein, the first buffering wall includes at least one first heat-seal edge and a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the first heat-seal edge. The second buffering wall includes at least one second heat-seal edge that is heat-sealed to the first heat-seal edge, and includes a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the second heat-seal edge. The first node located on the first buffering wall so that the first buffering wall is allowed to be bent against the first node. The second node located on the second buffering wall so that the second buffering wall is allowed to be bent against the second node. The third buffering wall is formed by bending the first buffering wall and the second buffering wall so as to be defined and connected between the first buffering wall and the second buffering wall. The accommodating space is formed by bending the first buffering wall and the second buffering wall so as to be defined between the first buffering wall and the second buffering wall. The vibration-absorbing air sheath is characterized in that at each of two opposite ends of the vibration-absorbing air sheath, the first buffering wall and the second buffering wall have said air column lines thereof that come to contact with each other after the bending bound through heat sealing, such that at each said end of the vibration-absorbing air sheath, an opening is formed between lower parts of the first and second buffering walls while a binding portion is formed between upper parts of the first and second buffering walls, in which the opening has a flat bottom, whereby after inflation of the air columns, the air columns of the first and second buffering walls outside the binding portion and the air columns of the third buffering wall jointly form a triangular end buffering portion of the vibration-absorbing sheath.
A secondary objective of the present invention is that by providing at least one of the air columns of the first and second buffering walls in the end buffering portion in the lower part thereof with at least one slanted crease, the air column is allowed to have a part below the crease bent upward against the crease, thereby closing the end of the vibration-absorbing air sheath and making the air columns in the end buffering portion with parts thereof above the crease spread out and form a flat plane, so as to provide a maximized buffering area for the end buffering portion.
Another objective of the present invention is that by making the air columns of each of the first and second buffering walls inside the binding portion include one first air column and one second air column that are adjacent to each other and have different diameters, a width of the accommodating space corresponding to the binding portion is maximized as the first air column and the second air column jostle with each other.
Still another objective of the present invention is that, that by making each of the air column lines between the air columns inside the binding portion have an inclined upper end, an edge of an opening of the accommodating space open corresponding to the binding portion is prevented from becoming wavy.
For achieving the foregoing objectives and features, one preferred embodiment is herein described with reference the accompanying drawings for people having ordinary skill in the art to better implement the present invention.
Referring to
Basing on the configuration stated above, in the air columns 11 and 21 of the first buffering wall 1 and the second buffering wall 2, at their sides opposite to the first heat-seal edge 10 and the second heat-seal edge 20, first nodes 3 and second nodes 4 are provided, respectively. The nodes 3, 4 are such formed that they do not break the communication between the corresponding air columns 11 and 21 and allow the first buffering wall 1 and the second buffering wall 2 to be bent against the first node 3 and the second node 4, respectively. Thus, by bending the first buffering wall 1 and the second buffering wall 2, the third buffering wall 5 is defined and connected between the first buffering wall 1 and the second buffering wall 2. Then the connection among the first buffering wall 1, the second buffering wall 2 and the third buffering wall 5 further defines the accommodating space 6. In addition, the third buffering wall 5 is structurally similar to the second buffering wall 2 and the first buffering wall 1. It also has a plurality of air columns 51 perpendicular to the first heat-seal edge 10 and the second heat-seal edge 20 and separated by air column lines 510 made through heat sealing. The air column 51 of the third buffering wall 5 may correspond to the air columns 11, 12 of the first buffering wall 1 and the second buffering wall 2 in a one-to-one or one-to-many manner. The corresponding air columns 11, 12, 51 have at least one mutual communication.
As shown in
As shown in
However, as shown in
Please refer to
Please refer to
Please refer to
Claims
1. A vibration-absorbing air sheath having improved end-closing structure, for wrapping an object and providing buffering protection to the object, the vibration-absorbing air sheath comprising:
- a first buffering wall, having at least one first heat-seal edge, and including a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the first heat-seal edge;
- a second buffering wall, having at least one second heat-seal edge, being connected to the first heat-seal edge through heat sealing, and including a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the second heat-seal edge;
- at least one first node, located on the first buffering wall so that the first buffering wall is allowed to be bent against the first node;
- at least one second node, located on the second buffering wall so that the second buffering wall is allowed to be bent against the second node;
- a third buffering wall, formed by bending the first buffering wall and the second buffering wall so as to be defined and connected between the first buffering wall and the second buffering wall, and including a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the first heat-seal edge and the second heat-seal edge; and
- an accommodating space, formed by bending the first buffering wall and the second buffering wall so as to be defined between the first buffering wall and the second buffering wall;
- the vibration-absorbing air sheath being characterized in that at each of two opposite ends of the vibration-absorbing air sheath, the first buffering wall and the second buffering wall have said air column lines thereof that come to contact with each other after the bending bound through heat sealing, such that at each said end of the vibration-absorbing air sheath, an opening is formed between lower parts of the first and second buffering walls while a binding portion is formed between upper parts of the first and second buffering walls, in which the opening has a flat bottom, whereby after inflation of the air columns, the air columns of the first and second buffering walls outside the binding portion and the air columns of the third buffering wall jointly form an end buffering portion of the vibration-absorbing sheath; and in that at least one of the air columns of the first and second buffering walls in the end buffering portion is provided in the lower part thereof with at least one slanted crease, so as to allow the air column to have a part below the crease bent upward against the crease, thereby closing the end of the vibration-absorbing air sheath and making the air columns in the end buffering portion with parts thereof above the crease spread out and form a flat plane, so as to provide a maximized buffering area for the end buffering portion.
2. The vibration-absorbing air sheath of claim 1, wherein the opening has a height that is greater than, equal to or small than a length of the binding portion.
3. The vibration-absorbing air sheath of claim 1, wherein a number of the air column line of each of the first and second buffering walls forming the binding portion is one or more than one.
4. The vibration-absorbing air sheath of claim 1, wherein a number of the air column of each of the first and second buffering walls in the end buffering portion is one or more than one.
5. A vibration-absorbing air sheath having improved end-closing structure, for wrapping an object and providing buffering protection to the object, the vibration-absorbing air sheath comprising:
- a first buffering wall, having at least one first heat-seal edge, and including a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the first heat-seal edge;
- a second buffering wall, having at least one second heat-seal edge, being connected to the first heat-seal edge through heat sealing, and including a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the second heat-seal edge;
- at least one first node, located on the first buffering wall so that the first buffering wall is allowed to be bent against the first node;
- at least one second node, located on the second buffering wall so that the second buffering wall is allowed to be bent against the second node;
- a third buffering wall, formed by bending the first buffering wall and the second buffering wall so as to be defined and connected between the first buffering wall and the second buffering wall, and including a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the first heat-seal edge and the second heat-seal edge; and
- an accommodating space, formed by bending the first buffering wall and the second buffering wall so as to be defined between the first buffering wall and the second buffering wall;
- the vibration-absorbing air sheath being characterized in that at each of two opposite ends of the vibration-absorbing air sheath, the first buffering wall and the second buffering wall have said air column lines thereof that come to contact with each other after the bending bound through heat sealing, such that at each said end of the vibration-absorbing air sheath, an opening is formed between lower parts of the first and second buffering walls while a binding portion is formed between upper parts of the first and second buffering walls, in which the air columns of each of the first and second buffering walls inside the binding portion include at least one first air column and at least one second air column that are adjacent to each other and have different diameters, so that a width of the accommodating space corresponding to the binding portion is maximized as the first air column and the second air column jostle with each other.
6. The vibration-absorbing air sheath of claim 5, wherein an air column line between the first air column and the second air column has a lower part thereof inclined, so that a diameter of an upper part of the first air column is smaller than a diameter of an upper part of the second air column and a diameter of a lower part of the first air column is greater than a diameter of a lower part of the second air column.
7. The vibration-absorbing air sheath of claim 5, wherein the air column line between the first air column and the second air column has an upper part with a heat-sealed area greater than the heat-sealed area of the lower part thereof, so that the diameter of the upper part of the first air column is smaller than the diameter of the upper part of the second air column, and the diameter of the lower part of the first air column is greater than the diameter of the lower part of the second air column.
8. The vibration-absorbing air sheath of claim 5, wherein the first air column has a diameter smaller than a diameter of the second air column.
9. A vibration-absorbing air sheath having improved end-closing structure, for wrapping an object and providing buffering protection to the object, the vibration-absorbing air sheath comprising:
- a first buffering wall, having at least one first heat-seal edge, and including a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the first heat-seal edge;
- a second buffering wall, having at least one second heat-seal edge, being connected to the first heat-seal edge through heat sealing, and including a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the second heat-seal edge;
- at least one first node, located on the first buffering wall so that the first buffering wall is allowed to be bent against the first node;
- at least one second node, located on the second buffering wall so that the second buffering wall is allowed to be bent against the second node;
- a third buffering wall, formed by bending the first buffering wall and the second buffering wall so as to be defined and connected between the first buffering wall and the second buffering wall, and including a plurality of air columns separated therebetween by air column lines that are made through heat sealing and are perpendicular to the first heat-seal edge and the second heat-seal edge; and
- an accommodating space, formed by bending the first buffering wall and the second buffering wall so as to be defined between the first buffering wall and the second buffering wall;
- the vibration-absorbing air sheath being characterized in that at each of two opposite ends of the vibration-absorbing air sheath, the first buffering wall and the second buffering wall have said air column lines thereof that come to contact with each other after the bending bound through heat sealing, such that at each said end of the vibration-absorbing air sheath, an opening is formed between lower parts of the first and second buffering walls while a binding portion is formed between upper parts of the first and second buffering walls, and in that each of the air column lines between the air columns inside the binding portion has an inclined upper end, for preventing an edge of an opening of the accommodating space open corresponding to the binding portion from becoming wavy.
10. The vibration-absorbing air sheath of claim 9, wherein all of the air column lines between the air columns inside the binding portion have the upper ends thereof inclined toward either said end of the vibration-absorbing air sheath, or a half of the air column lines between the air columns inside the binding portion have the upper ends thereof inclined toward one said end of the vibration-absorbing air sheath and the other half of the air column lines between the air columns inside the binding portion have the upper ends thereof inclined toward the other said end of the vibration-absorbing air sheath.
11. The vibration-absorbing air sheath of claim 9, wherein the air columns of the first buffering wall and the air columns of the second buffering wall inside the binding portion have the upper ends thereof inclined in an identical direction or inclined in opposite directions, respectively.
12. The vibration-absorbing air sheath of claim 1, wherein the air columns of the third buffering wall corresponds to the air columns of the first buffering wall and to the air columns of the second buffering wall in a one-to-one or a one-to-many manner, in which the mutually corresponding air columns have at least one mutual communication; and the vibration-absorbing air sheath further comprises a buffering piece, which has one side attached to the first heat-seal edge of the first buffering wall through heat sealing, and has an opposite side attached to the second heat-seal edge of the second buffering wall through heat sealing, in which the bilaterally fixed buffering piece is bilaterally, partially heat-sealed to the air column lines of the first buffering wall and the second buffering wall, so that the buffering piece is suspended in the accommodating space, for wrapping the object and preventing the object from swaying.
13. The vibration-absorbing air sheath of claim 5, wherein the air columns of the third buffering wall corresponds to the air columns of the first buffering wall and to the air columns of the second buffering wall in a one-to-one or a one-to-many manner, in which the mutually corresponding air columns have at least one mutual communication; and the vibration-absorbing air sheath further comprises a buffering piece, which has one side attached to the first heat-seal edge of the first buffering wall through heat sealing, and has an opposite side attached to the second heat-seal edge of the second buffering wall through heat sealing, in which the bilaterally fixed buffering piece is bilaterally, partially heat-sealed to the air column lines of the first buffering wall and the second buffering wall, so that the buffering piece is suspended in the accommodating space, for wrapping the object and preventing the object from swaying.
14. The vibration-absorbing air sheath of claim 9, wherein the air columns of the third buffering wall corresponds to the air columns of the first buffering wall and to the air columns of the second buffering wall in a one-to-one or a one-to-many manner, in which the mutually corresponding air columns have at least one mutual communication; and the vibration-absorbing air sheath further comprises a buffering piece, which has one side attached to the first heat-seal edge of the first buffering wall through heat sealing, and has an opposite side attached to the second heat-seal edge of the second buffering wall through heat sealing, in which the bilaterally fixed buffering piece is bilaterally, partially heat-sealed to the air column lines of the first buffering wall and the second buffering wall, so that the buffering piece is suspended in the accommodating space, for wrapping the object and preventing the object from swaying.
15. The vibration-absorbing air sheath of claim 12, wherein the buffering piece is heat-sealed to each of the air column lines from a top to a point right above a middle part of the air column line so that the buffering piece has a central part thereof suspended.
16. The vibration-absorbing air sheath of claim 13, wherein the buffering piece is heat-sealed to each of the air column lines from a top to a point right above a middle part of the air column line so that the buffering piece has a central part thereof suspended.
17. The vibration-absorbing air sheath of claim 14, wherein the buffering piece is heat-sealed to each of the air column lines from a top to a point right above a middle part of the air column line so that the buffering piece has a central part thereof suspended.
Type: Application
Filed: Mar 17, 2014
Publication Date: Sep 17, 2015
Inventor: Yaw-Shin LIAO (Taipei City)
Application Number: 14/215,080