The present invention relates to a machine for severing a web of material and, more particularly, to a simplified and improved machine, method, and system for severing a web of material containing a series of containers, especially inflated, gas-containing containers in the form of packaging cushions.
There often arises a need to sever a predetermined number of inflated packaging cushions from a web containing a connected string of such cushions. For example, articles to be shipped in a box are often wrapped or braced with cushioning material inside of the box in order to protect the article during shipment. Such material often is supplied in the form of a continuous web from a source such as, e.g., an apparatus that creates such material.
Typically, between each inflated container is a line of perforations that allows the packaging operator to manually tear a desired number of cushions from the web of containers. This is a tedious, repetitive action that the operator must perform all day.
Accordingly, there is a need in the art for a machine that allows a packaging operator to select a desired number of containers for severance from a web, and then severs such number of containers from the web.
That need is met by the present invention, which, in one aspect, provides a machine for severing a web comprising a series of containers, the containers being spaced apart and linked together by a series of connectors disposed between the containers, the machine comprising:
a. a rotary device comprising a plurality of spaced-apart standoff members extending radially outwards to contact the web at the connectors such that rotational movement of the rotary device causes movement of the web;
b. a severing mechanism including a movable severing device that is adapted to urge the web against one of the standoff members to thereby effect severance of the web; and
c. a control system comprising an operator interface to allow a specified number of containers to be selected for severance from the web, the control system being operative to:
Another aspect of the invention is directed towards a system for making and severing a web comprising a series of containers, comprising:
a. an apparatus for making the web, the containers being spaced apart and linked together by a series of connectors disposed between the containers; and
b. a machine for severing the web, as described above.
A further aspect of the invention is directed towards a method for severing a web comprising a series of containers, the containers being spaced apart and linked together by a series of connectors disposed between the containers, the method comprising:
a. contacting the web with a rotary device comprising a plurality of spaced-apart standoff members extending radially outwards, the standoff members contacting the web at the connectors such that rotational movement of the rotary device causes movement of the web;
b. selecting a specified number of containers for severance from the web;
c. identifying a designated connector for severance, which corresponds to the selected number of containers to be severed from the web;
d. moving the web until the designated connector is placed into a position for severance, in which the designated connector is supported by one of the standoff members and is located proximate a severing mechanism, the severing mechanism including a movable severing device; and
e. moving the severing device such that the severing device urges the designated connector against the supporting standoff member, thereby severing the web at the designated connector.
These and other aspects and features of the invention may be better understood with reference to the following description and accompanying drawings.
Machine 10 generally comprises a rotary device 18, a severing mechanism 20, and a control system 22. As shown in
Rotary device 18 includes a plurality of spaced-apart standoff members 24 extending radially outwards to contact the web 12 at the connectors 16 such that rotational movement 26 of the rotary device 18 causes movement of the web 12.
Severing mechanism 20 includes a movable severing device 28 that is adapted to urge the web 12 against one of the standoff members 24 to thereby effect severance of the web.
Control system 22 includes an operator interface 30 to allow a specified number of containers to be selected for severance from the web 12.
As illustrated, containers 14 on web 12 may comprise gas-filled packaging cushions, which have been inflated and sealed closed prior to their introduction to machine 10. Web 12 may thus comprise an inflatable cushioning web that is inflated and sealed at a different site or at the same site as machine 10.
Inflatable cushioning material of this type, as well as machines and methods for its inflation, are well-known, e.g., as disclosed in U.S. Pat. Nos. 6,598,373, 6,804,933, 7,225,599, and in U.S. Ser. No. 10/979,583 (Pub. No. 2006/0090421-A1), the entire disclosures of which are hereby incorporated herein by reference thereto. As illustrated, the web 12 may be supplied in pre-inflated form to apparatus 32 from a supply roll 34 of such material. In such pre-inflated form, the web comprises a series of un-inflated containers. The apparatus 32 then inflates and seals closed the containers in the web to produce a series of inflated containers 14 as shown.
In some embodiments the width of the standoff members 24 is selected to correspond to the distance d1 between seals 36a, b. Similarly, the spacing between the standoff members 24 may be selected to correspond to the distance d2 between the centerlines 38 of adjacent connectors 16. Distance d2 thus represents a length dimension for each container 14, which varies depending upon whether the containers are inflated or un-inflated. For example, a container 14 having a length d2 of 5 inches in an un-inflated state may have a length d2 of 4.5 inches when such container is inflated. Similarly, un-inflated container lengths 8 and 12 inches may correspond to inflated container lengths of 7.5 and 11.5 inches, respectively.
Web 12 may, in general, comprise any flexible material that can be manipulated by machine 10 as herein described, including various thermoplastic materials, e.g., polyethylene homopolymer or copolymer, polypropylene homopolymer or copolymer, etc. Non-limiting examples of suitable thermoplastic polymers include polyethylene homopolymers, such as low density polyethylene (LDPE) and high density polyethylene (HDPE), and polyethylene copolymers such as, e.g., ionomers, EVA, EMA, heterogeneous (Zeigler-Natta catalyzed) ethylene/alpha-olefin copolymers, and homogeneous (metallocene, single-cite catalyzed) ethylene/alpha-olefin copolymers. Ethylene/alpha-olefin copolymers are copolymers of ethylene with one or more comonomers selected from C3 to C20 alpha-olefins, such as 1-butene, 1-pentene, 1-hexene, 1-octene, methyl pentene and the like, in which the polymer molecules comprise long chains with relatively few side chain branches, including linear low density polyethylene (LLDPE), linear medium density polyethylene (LMDPE), very low density polyethylene (VLDPE), and ultra-low density polyethylene (ULDPE). Various other polymeric materials may also be used such as, e.g., polypropylene homopolymer or polypropylene copolymer (e.g., propylene/ethylene copolymer), polyesters, polystyrenes, polyamides, polycarbonates, etc. The web may be a monolayer or multilayer film, may contain one or more foamed layers, and may be produced by any known extrusion process, e.g., by melting the component polymer(s) and extruding, coextruding, or extrusion-coating them through one or more flat or annular dies.
With additional reference to
The rotation of rotary device 18 may be produced by any suitable drive means. For example, an internal drive mechanism may be employed within cylinder 40, which may include a drive wheel 44 and a supporting idler roller 46, both of which may be positioned within cylinder 40 as shown in
With continued reference to
Severing mechanism 20 may include an actuator 52 and a movable severing device 28 as shown. The severing device 28 may comprise any conventional device for severing a web of material, e.g., a heating element such as one or more wires, knives, bands, or other electrically-heatable material; a cutting element such as a guillotine-type knife, a rolling blade, a swinging blade, a translating blade, a serrated blade; etc. In the presently-illustrated embodiment, severing device 28 includes a heating element 54 capable of reaching a temperature sufficient to sever web 12. Such a heating element may be a resistance wire as shown, which may be positioned on the front or contact edge 56 of severing device 28, and which may comprise a nickel-chromium alloy.
The function of severing mechanism 20 is to sever web 12. This may be accomplished by causing actuator 52 to move severing device 28 in the direction of arrow 58, i.e., towards web 12. More specifically, the actuator 52 causes severing device 28 to urge web 12 against a standoff member, e.g., the standoff member identified as 24a in
Preferably, such severance of web 12 occurs at one of the connectors 16. For example, the connector identified as connector 16a in
The severing mechanism 20 may be configured as illustrated such that the severing device 28 moves in a substantially linear path of travel. In contrast to a pivotal or rotational path of travel, a substantially linear path of travel is advantageous when containers 14 are inflated, e.g., packaging cushions, because such linear movement minimizes the likelihood that the severing device 28, particularly heating element 54 thereof, will make inadvertent contact with and cause deflation of a container 14 while on its travel path towards a connector, e.g., connector 16a as shown in
In the embodiment described above, the rotary device 18 and severing mechanism 20 are powered by separate drive means, i.e., motor 48 and actuator 52, respectively. As an alternative, a single drive means may be employed to both cause the rotation of rotary device 18 and urge the movable severing device 28 against the web, as disclosed, e.g., in U.S. Ser. No. 11/234,891 (Publication No. 2007/0068353-A1), the entire disclosure of which is hereby incorporated herein by reference thereto.
In some embodiments, rotary device 18 may be particularly configured and/or selected for a particular length of cushion.
Preferably, the outer diameter d3 of rotary device 18, i.e., the outermost diameter of the device, including cylinder 40 and standoff members 24, in conjunction with the diameter d4 of the cylinder 40, is such that a gap 64 exists between the inflated container 14 and the cylinder 40. The existence of such a gap 64 provides at least some level of assurance that the web 12 is supported by standoff members 24 substantially only at connectors 16, i.e., the inflated containers 14 do not touch the surface of the cylinder 40. Any such contact between the inflated containers 14 and the cylinder 40 could alter the positioning of the connectors 16 vis-à-vis the contact surfaces 62 of the standoff members 24 which, in turn, could adversely impact the severance operation of the severing mechanism 20.
Platform 70 may further include a pair of lips 74a, b to add structural strength to the standoff member 24 and to help hold the anvil 72 in place. In the embodiment illustrated in
Both the cylinder 40 and the upright structures 66 may be formed of metal, e.g., perforated metal for weight reduction. Thus, in the construction of rotary device 18, the base 76 of the upright structures 66 may be affixed to cylinder 40, e.g., via welding. With reference back to
In some embodiments of the invention, machine 10 may include an alignment member 82 to align the severing device 28 with one of the standoff members 24 during severance of the web 12. As shown in
With additional reference to
In
If desired, guide slots 86 may be shaped such that they have a wide opening at the entrance 94, which tapers, e.g., half way down the length of the slot, such that the width at and/or near the end portion 96 of the slot is only slightly wider than the cam follower 90. Further the end portion 96 is preferably aligned with the corresponding standoff member 24. In this manner, when the rotary device 18b brings the standoff member 24a into position for severance, the accuracy of the stopping location need only be enough to place the cam follower 90 at any point above the widened entrance 94 of the guide slot 86. That is, as the severing device 28 is moved towards the standoff member 24a, if the cam follower 90 is above the tapered portion of the widened entrance 94, but not above the narrower end portion 96, contact between the cam follower 90 and the tapered portion of the guide slot 86 will move the rotary device 18 in a clockwise direction (as viewed in
Accordingly, it may appreciated that alignment member 82 advantageously guides the severing device 28 into contact with a desired one of the standoff members 24 during severance of the web 12. This facilitates the severance of the web 12 at a connector 16, which is supported by a standoff member, and helps to prevent inadvertent severance of the web within one of the containers 14. On the other hand, when the severing device 28 is in the position shown in
Referring once again to
The specified number of containers to be selected for severance from the web may be as low as one and may be as high as desired, limited only by the total number of containers within the web 12. For packaging applications, the number will typically range from one to ten, e.g., from one to five. The operator interface 30 may be any type of device that allows an operator, e.g., a packaging specialist, to command machine 10 to sever a desired number of containers 14 from web 12. This may be a one-time severance or a series of severances to produce any desired number of, e.g., packaging cushions, wherein each packaging cushion comprises the desired number of containers 14.
For example, with reference to
Suitable devices for operator interface 30 may include, e.g., a control panel, which may be wall-mounted, floor-mounted, or mounted on machine 10, e.g., on stand 11; a foot or hand switch; a hand-held or belt-mounted remote-control device; a remotely operated computer or other such device, which allows one or more machines 10 to be operated from another room, another building, another town; etc. Controller 100 may comprise a printed circuit assembly, programmable logic controller (PLC), a personal computer (PC), or other such device commonly used in machines of the type to which the present invention pertains.
Once the operator inputs the desired number of containers for severance from the web, the controller 100 must determine which of the connectors 16 must be severed so that the resultant packaging cushion(s) 104 contains the correct number of containers 14. In accordance with the present invention, therefore, control system 22 is operative to identify a designated connector for severance, which corresponds to the selected number of containers to be severed from web 12.
Using
In some embodiments, control system 22 identifies the designated connector for severance by counting the containers 14 passing by a fixed point. Once the selected number of containers have passed such point, the controller causes the severing mechanism sever the web at the designated connector. One technique for counting containers is to include sensor 102 as a counting device to count the standoff members 24 that pass the sensor as the rotary device 18 rotates. Advantageously, by counting the standoff members, even if a rotary device is changed to accommodate different container sizes (see, e.g.,
Sensor 102 may thus be positioned as shown in
Accordingly, after the severance shown in
In some embodiments, the rotary member 18 may continue to rotate for a given period of time after motor 48 stops driving the rotation of the rotary member. The amount of this inertia-driven rotation may be included in the program logic for the controller 100 so that the ‘stop’ signal is sent to motor 48 at the correct time following the input of the signal from sensor 102 of the detection of the standoff member 24 carrying the designated connector. Fine tuning can be accomplished as necessary, e.g., by mechanically adjusting the position of the sensor 102 so that enough time is available for the sensor to detect the standoff member carrying the designated connector, relay this to the controller, and then allow the controller to relay the stop signal to the motor 48.
Alternatively, an encoder may be used in association with motor 48, which supplies a predetermined number of pulses to controller 100 for each revolution of drive wheel 44. By programming in the total arcuate distance traversed by cylinder 40 for each revolution of drive wheel 44, the arcuate distance between each of the standoff members 24, and the amount of inertia-driven rotation of cylinder 40 after the motor 48 stops driving the cylinder, the controller 100 can more accurately time the transmission of the ‘stop’ signal to motor 48 following the input of the signal from sensor 102 of the detection of the standoff member 24 carrying the designated connector.
Once the designated connector has been delivered by rotary device 18 to a position for severance, control system 22 then causes severing mechanism 20 to move severing device 28 such that the severing device urges the designated connector against the supporting standoff member 24 (e.g., as shown in
If additional packaging cushions 104 are desired, e.g., as remaining in a series as specified by the operator, the controller 100 would next send a signal to motor 48, to cause the motor to turn the rotary device 18 to deliver the next designated connector, corresponding to the selected number of containers to be severed from the web, e.g., three, to the severing mechanism 20.
The aforedescribed cycle repeats until the total number of requested packaging cushions 104 have been severed from web 12.
In an alternative embodiment, severing mechanism 20 may be configured to only partially sever web 12. In this embodiment, most of the width of the web 12 is severed at a connector 16, leaving a small unsevered portion that can be easily torn by an operator when desired.
A method in accordance with the present invention thus includes the following steps:
a. contacting the web 12 with a rotary device 18 comprising a plurality of spaced-apart standoff members 24 extending radially outwards, wherein the standoff members 24 contact the web 12 at the connectors 16 such that rotational movement of the rotary device 18 causes movement of the web 12;
b. selecting a specified number of containers 14 for severance from the web 12;
c. identifying a designated connector for severance, e.g., connector 16′, which corresponds to the selected number of containers 14 to be severed from the web;
d. moving the web 12 until the designated connector 16′ is placed into a position for severance, in which such designated connector is supported by one of the standoff members, e.g., standoff member 24′, and is located proximate severing mechanism 20 with movable severing device 28; and
e. moving the severing device 28 such that the severing device urges the designated connector 16′ against the supporting standoff member 24′, thereby severing the web 12 at the designated connector 16′.
The foregoing description of preferred embodiments of the invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed, and modifications and variations are possible in light of the above teachings or may be acquired from practice of the invention.