Seal line penetration depth control for rotating ultrasonic horn / anvil welding without mechanical stops

JP2024529676A5Pending Publication Date: 2025-07-16DUKANE IAS LLC
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
JP2024508400
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-08-11
Filing Date
2022-08-08
Publication Date
2025-07-16

AI Technical Summary

Technical Problem

Conventional rotary ultrasonic welding systems face challenges in achieving consistent seal line penetration depth control, particularly with thin films, due to the reliance on mechanical stops that require precise alignment, are prone to wear, and are sensitive to thermal expansion, leading to inconsistent bonds and weakened seals.

Method used

The system employs a rotating horn and anvil with extremely low-profile, continuous circumferential raised features that dynamically control seal depth without mechanical stops, ensuring consistent pressure and penetration by matching the profile height to the film thickness, allowing for films ranging from 10 μm to 150 μm.

Benefits of technology

This approach results in stronger, hermetic seals with consistent thickness and eliminates the need for external mechanical stops, accommodating varying film thicknesses and improving seal quality and durability.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

An apparatus 200 for joining a first film portion and a second film portion together along a seal line. The apparatus includes a horn 208 and an anvil 220. The anvil 220 is disposed proximate to the horn 208. The horn 208 or anvil 220 has a surface 216, 226 rotatable about an axis of rotation. The surface 216, 226 has a raised profile, the height of the raised profile relative to the surface 216, 226 having a dimension corresponding to 50% to 150% of the thickness of the first film portion or the second film portion. Another option is that the raised profile has tapered sides, the tapered sides having a radius of 0.5 degrees to 5 degrees relative to a top surface of the raised profile. The faces 216, 226 are arranged with a raised profile extending along the periphery such that when rotated about the axis of rotation, continuous running contact is provided between the raised profile and the other of the horn 208 or anvil 220 to form a seal line without any external structure to control the distance between the horn 208 / anvil 220. Tapered adhesive profiles, traction patterns, and cut and seal features are also disclosed.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present disclosure relates generally to ultrasonic welding systems and, more particularly, to seal line penetration depth control for rotary ultrasonic horn or anvil welding without a mechanical stop. [Background technology]

[0002] This application claims priority to U.S. patent application Ser. No. 17 / 399,429, entitled “Depth Control of Seal Line Penetration For Rotary Ultrasonic Horn / Anvil Welding Without Mechanical Stop,” filed Aug. 11, 2021, the entire contents of which are incorporated herein by reference.

[0003] When bonding thin (<150 μm thick) films, consistent penetration can be difficult to achieve with air-filled systems. This is especially true for monolayer and monomaterial films. In some ultrasonic welding applications, it is advantageous to use a disk-shaped horn and anvil, called a rotating horn or rotating anvil. When the application requires the formation of a seal or joint between two substrates or layers to be joined in the final product (e.g., pouch or container), some conventional rotary ultrasonic techniques use a mechanical stopper to control the depth of the joint or seal by stopping the advancement of the ultrasonic horn, but mechanical stops have very severe limitations for processing thin films. Mechanical stops, especially for thin film applications with thicknesses as low as 0.002 inches (50 μm), require near perfect total concentricity of the rotating elements (rotating horn and rotating anvil) and are subject to mechanical wear and damage over time, which negatively impacts consistent depth control of the joint or seal. Mechanical stops also require the designer to eliminate the effects of thermal expansion and contraction, and operators must be highly skilled to be able to make minor adjustments to such mechanical stops to accommodate different film thicknesses. Mechanical stops are made up of multiple components such as bearings, shafts, and other components whose manufacturing tolerances can result in small but significant elements of rotational runout. When such runout occurs, and due to the very small gap dimensions required between rotating elements, the adhesive will not be consistent between the final products.

[0004] Other conventional rotary applications using ultrasonic energy, such as those disclosed in U.S. Patent No. 10,889,066, owned by the same assignee as the present disclosure, have ridge patterns formed on the surface of the rotary horn and / or rotary anvil, which are particularly suitable for welding nonwoven fabrics by capturing elastic strands under constant tension. They are not particularly suitable for melting plastic to create a hermetic or airtight seal between two plastic parts. Furthermore, the ridge patterns tend to be much thicker than the thickness of the fabrics that are to be welded together by the ultrasonic energy. The patterned profiles also do not create hermetic seals that are required in some applications, such as pouches or containers filled with liquid.

[0005] Further conventional rotary ultrasonic welding applications incorporate raised profiles on the horn or anvil, but like patterned profiles, the overall height of these raised profiles is higher (typically several orders of magnitude higher) than the thickness of the parts being joined together and therefore cannot serve to control the depth of the seal line and are not well suited for sealing thin films together. High raised profiles such as these are undesirable for use in sealing (plastic) films as they exert high forces / pressures that weaken the weld or seal.

[0006] 1A is a cross-section of a cut portion of a prior art anvil 100 having a raised patterned profile 102. The height H1 of the patterned profile 102 is several orders of magnitude higher than the thickness of the layer of the part sandwiched between the anvil 100 and a conventional horn receiving ultrasonic energy. This magnitude of height H1 causes a large force or pressure to be applied to the layer sandwiched between the horn and the anvil 100, which can result in an undesirably weak (e.g., excessively thin) seal line or weld formed at the interface between the patterned profile 102 and the horn, especially if the layer is a film, such as a plastic film, if mechanical stops do not adequately limit the weld force and distance due to lack of concentricity, thermal expansion, or improper operator adjustments.

[0007] FIG. 1B is a cross-sectional view of a cut portion of another prior art anvil 110, also having a raised profile 112, but with a smooth surface as opposed to the patterned surface shown in FIG. 1A. Similar to the anvil 100, the height H2 of the raised profile 112 of the anvil 110 shown in FIG. 1B is 0.063 inches (1.6 mm), much higher (typically more than twice the thickness of the layers of the parts sandwiched between the anvil 110 and a conventional horn). Like the conventional profile shown in FIG. 1A, the conventional profile of FIG. 1B acts to weaken the weld or seal formed between the film layers. Although the raised profile 112 shown in FIG. 1B forms a continuous seal, when mechanical stops do not adequately limit the weld force and distance due to lack of concentricity, thermal expansion, or improper operator adjustments, the welded material may unintentionally become too thin, thus weakening the welded material and the sealed package. Summary of the Invention [Problem to be solved by the invention]

[0008] Thus, a need exists for a rotary ultrasonic welding technique that can accurately and repeatedly join two thin parts (e.g., sections of film) together without the use of mechanical stops, and that can accommodate parts of varying thickness. Aspects of the present disclosure are directed to meeting this and other needs. [Means for solving the problem]

[0009] The main feature of the present invention is the absence of a mechanical stop device to control the profile height and the depth of the seal using ultrasonic energy applied by the rotating horn and rotating anvil. The profile height is extremely low, such as 50% to 150% or 100% of the thickness of the film or parts being joined. The extremely low height of the horn or anvil profile (which may be present on either or both) provides a "dynamic mechanical stop" effect without any external actual mechanical stop by squeezing the two layers of film with enough force or pressure to achieve mechanical support, but not so hard that it melts the plastic of the film layers. The profile height combined with the absence of a mechanical stop structure to control the depth of seal penetration is the main difference from the prior art.

[0010] The profile may extend continuously and encompass the entire circumferential surface of the rotating horn or anvil. The continuous circumferential profile maintains a constant, continuous force / pressure on the film during sealing, as long as the height of the profile is no greater than the thickness of the film.

[0011] The profile height depends on the thickness of the film being sealed, but in some embodiments the profile height can start as low as 0.002'' (inch) (50 μm) and then increase very gradually in 0.0005'' (13 μm) increments. This illustrates the high precision required by alternative designs employing traditional mechanical stops, as opposed to the depth-control anvil design of the present disclosure.

[0012] According to an aspect of the disclosure, an apparatus is disclosed for bonding a first film portion and a second film portion together along a seal line using ultrasonic energy. The apparatus includes a horn configured to receive ultrasonic energy and an anvil positionable proximate to the horn, the horn advancing toward the anvil, and at least one of the horn or the anvil having a surface with a width dimension and a periphery and rotatable about an axis of rotation. The surface has a raised profile, the height of the raised profile having a dimension corresponding to 50% to 150% of the thickness of the first film portion or the second film portion. The surface is positioned such that the raised profile extends along the periphery. When rotated about the axis of rotation, continuous running contact is provided between the raised profile and the other of the horn or the anvil to form a seal line without any external structure to control the distance between the horn and the anvil. The thickness of the first film portion and the second film portion can be between 10 μm and 150 μm.

[0013] The height dimension of the raised profile can correspond to 100% of the thickness of the first film portion or the second film portion. The height dimension of the raised profile can correspond to 50% to 125% of the thickness of the first film portion or the second film portion. The first film portion and / or the second film portion can be made of plastic. The first film portion or the second film portion can be a multi-layer film, a recyclable film, a biodegradable film, a compostable film, a monolayer film, a paper-based film, or a mono-material film.

[0014] The raised profile can further include a scoring element configured to score or cut along the seal line when the anvil is rotated about the axis of rotation. The face can have a second raised profile having a height corresponding to 50% to 150% of a thickness of the first film portion or the second film portion. The second raised profile can extend along the periphery and can provide continuous running contact between the second raised profile and the other of the horn or the anvil when rotated about the axis of rotation.

[0015] The height dimension of the second raised profile can correspond to 100% of the thickness of the first film portion or the second film portion. The raised profile can be part of an anvil and can be further combined with a second anvil that can have a second raised profile with a height dimension that is 0.0005 inches (13 μm) greater than the height dimension of the raised profile.

[0016] Disclosed is an article of manufacture that includes a first film portion, a second film portion, and a seal line formed by any of the devices disclosed herein. [Brief description of the drawings]

[0017] [Figure 1A] 1 is a cross-section of a cut portion of a prior art anvil having a raised, patterned profile. [Figure 1B] 1 is a cross-sectional view of a cut portion of another prior art anvil 110 having a smooth raised profile 112. FIG. [Diagram 2] FIG. 1 is a perspective view of a rotary ultrasonic bonding apparatus suitable for use with a raised profile on either the anvil or horn to create a dynamic stop effect. [Diagram 3]FIG. 1 is an enlarged cross-sectional view of a portion of a horn or anvil having a raised profile according to an aspect of the present disclosure. [Figure 4] FIG. 13 is an isometric cutaway view of a horn or anvil according to another embodiment of the present disclosure having two raised profiles, thereby creating a dynamic stop effect. [Diagram 5] FIG. 5 is an isometric cutaway view of a horn or anvil having two raised profiles as shown in FIG. [Figure 6] FIG. 6 is a cross-sectional view of a portion of the horn or anvil shown in FIG. 5. [Figure 7] FIG. 2 is a cross-sectional view of a portion of a horn and anvil having a raised profile with two layers of film passing between the horn and anvil during application of ultrasonic energy. [Figure 8] FIG. 13 is a functional diagram of a depth control configuration in which the horn and anvil each have a raised profile to achieve equal or intentionally non-uniform penetration from both sides of the film being deposited. [Figure 9A] FIG. 13 is a functional diagram of a sealing and scoring configuration in which a raised profile includes a scoring element for scoring the sealing layer after it is welded. [Figure 9B] FIG. 13 is a functional diagram of an angled seal profile configuration in which the raised profile is angled to facilitate sealing of the layers being welded. [Figure 10A] FIG. 10B is a cross-sectional view taken along line 10B-10B of a portion of a horn or anvil having a tapered weld profile and an exemplary traction pattern. [Figure 10B] FIG. 10B is a top cutaway view of a portion of the exemplary traction pattern shown in FIG. [Figure 10C] FIG. 10C is a cross-sectional view of a portion of the traction pattern taken along line 10C-10C. [Figure 11A] FIG. 1 is a side view of a horn or anvil having a cutting and sealing feature. [Figure 11B]FIG. 11B is an enlarged view of the cutting and sealing feature shown in FIG. 11A, with the enlarged view of the cutting feature pulled out. [Figure 12] FIG. 13 is a diagram of a tapered bond profile for the horn or anvil, which can have different profiles on either side of the horn or anvil. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0018] 2 is an overall view of a rotary ultrasonic bonding apparatus 200, the general operation and components of which will be very familiar to those skilled in the art of ultrasonic welding, and rotary ultrasonic welding techniques in particular. The apparatus 200 has an anvil module 202 and a horn module 204 which cooperate to perform a welding or sealing operation of multiple parts, e.g., two or more layers of film, as described in more detail below.

[0019] Horn module 204 includes a frame 206 on which is mounted a disk-shaped rotating horn 208, a motor 210 for driving the rotation of horn 208 via a suitable drive train 212, and a housing 214 containing at least a portion of a vibration control unit (not shown) for vibrating horn 208. Horn 208 has an exposed outer surface 216 having a substantially continuous contour (i.e., horn face 216 has a substantially smooth (or uninterrupted) contour across its entire surface area). In other embodiments, horn face 216 may have any suitable contour that readily enables horn 208 to function as described herein.

[0020] In some embodiments, the vibration control unit (not shown) includes a conventional booster (e.g., a drive booster and an integral booster) mechanically connected to a converter that is electrically connectable to a generator. The converter can convert high frequency electrical energy provided by the generator into mechanical energy (or vibrations) that are selectively transmitted to the horn 208 via the booster. The booster can vary (i.e., increase or decrease) the vibration transmitted from the converter to the horn 208 such that the horn 208 (particularly the face 216 of the horn 208) vibrates as it rotates during a welding operation, as described in more detail below. It is contemplated that the horn module 204 can have any suitable operating components arranged in any suitable manner that readily enables the horn 208 to function as described herein. Details not shown will be readily apparent to those skilled in the art familiar with rotary ultrasonic bonding systems.

[0021] In the illustrated embodiment, the anvil module 202 includes a frame 218 to which is mounted a disk-shaped rotating anvil 220 and a motor 222 for driving the rotation of the anvil 220 via a suitable drive train. The anvil 220 has an exposed outer surface 226 having a substantially continuous contour (i.e., the anvil face 226 has a substantially smooth or uninterrupted contour over its entire surface area). The anvil module 202 is positioned relative to the horn module 204 such that the anvil face 226 is rotatable about a rotation axis R (shown in FIG. 4 ) in close proximity to the horn face 216, and vice versa, the horn module 204 is similarly positioned relative to the anvil module 202 to facilitate ultrasonic bonding of parts when the parts are held across the apparatus 200 under tension, as described in more detail below. As used herein, the term "close proximity" refers to the state in which the anvil face 226 is in contact with or minimally spaced from the horn face 216 when the horn 208 is not ultrasonically vibrating.

[0022] In some embodiments, the apparatus 200 can be configured such that at least one of the anvil module 202 and the horn module 204 is displaceable relative to the other via a suitable displacement mechanism operable either (A) when the system 100 is not in operation and the horn 208 is stationary (i.e., when the horn 208 is not rotating or vibrating), or (B) when the system 100 is in operation and the horn 208 is actuated (i.e., when the horn 208 is rotating and vibrating).

[0023] With particular reference to the embodiment shown in Figure 2, the apparatus 200 can be configured as a continuous nip apparatus in which the horn module 204 is (A) fixed in position relative to the anvil module 202 when the system 100 is operational and the horn 208 is actuated, and (B) displaceable relative to the anvil module 202 when the system 100 is not operational and the horn 208 is stationary. Such displacement is facilitated by a selectively actuable pneumatic cylinder 228 (or other suitable linear actuator) connecting the frames 206, 218 to one another. In this manner, the spacing between the horn face 216 and the anvil face 226 is adjustable, primarily for servicing the apparatus 200, when the system 100 is not operational.

[0024] FIG. 3 illustrates a cross-section of a portion of a horn 208 or anvil 220 having an outer surface 302 with a substantially continuous contour (i.e., the outer surface 302 has a substantially smooth or uninterrupted contour over its entire surface area) and a raised profile 312 having a height H3 that is 50%-150% (e.g., 100%) of the thickness of the parts to be joined between the horn 208 and the anvil 220. It should be emphasized that the raised profile 312 can be present on the horn 208 or the anvil 220, or both, and the principles discussed herein apply equally to both the horn 208 and the anvil 220. In most applications, the raised profile 312 will be present on the anvil 220. For example, as best seen in FIG. 4, there may be two or more raised profiles 312. Multiple raised profiles, such as raised profile 312, can be present on horn 208 or anvil 220, or can be distributed between horn 208 and anvil 220 (e.g., one raised profile can be present on horn 208 and one raised profile can be present on anvil 220) to join a pair of parts or pairs of parts together. Raised profile 312 can be referred to herein as a "depth control" profile because it serves to control the depth of penetration into the parts being joined together by sealing or welding.

[0025] The raised profile 312 shown in FIG. 3 has a substantially flat, continuous raised surface 0.040 inches (1.0 mm) wide, transitioned on either side by a curved surface of radius R=0.015 inches (0.38 mm). The width of the raised profile 312 is also much narrower than the unpatterned profiles of the prior art, e.g., less than 10% or less than 7% or less than 5% of the overall width of the horn 208 or anvil 220. The radial dimension is exemplary, but serves to provide a dynamic stop function for the rotational system without the need for mechanical stops found in prior art rotary ultrasonic welding systems. The radial dimension is also a function of the height H3 of the raised profile 312, but the height H3 is constrained not to exceed the thickness of the parts, such as films, that are to be joined between the horn 208 and the anvil 220 by the application of ultrasonic energy to the horn 208 as the horn 208 and anvil 220 rotate relative to one another about the axis of rotation R (shown in FIG. 4). In this example, the height H3 of the raised profile 312 is, for example, about 0.0035 inches (89 μm) (within typical tolerances). However, the height H3 can be as low as 0.002 inches (50 μm) to accommodate films of that thickness.

[0026] The horn 208 or anvil 220 can be easily replaced with another horn 208 or anvil 220 having a raised profile of a different size (e.g., height and / or width). The height H3 of each raised profile can be machined to differ by increments of only 0.0005 inches (13 μm) from profile to profile. For example, if the lowest profile height is 0.0020 inches (50 μm), the next profile height can be 0.0025 inches (64 μm), followed by 0.0030 inches (76 μm), etc. Using the example shown in FIG. 3, the height of the raised profile 312 of one anvil 220 can be approximately 0.003 inches (76 μm) while another anvil can have a raised profile with a height of 0.0035 inches (89 μm), followed by 0.0040 inches (100 μm), etc. Depending on the thickness of the parts (e.g., films) being joined together, the anvil 220 or horn 208 can be easily changed to match the height of the raised profile to the thickness of the parts. It should be emphasized that any dimensions or tolerances provided herein are exemplary only and are used to indicate the relative height of the profile to the thickness of the part layers being fused or joined together.

[0027] The raised profile 312 can surround the entire circumference of the horn 208 or the anvil 220, as shown in the partial cutaway perspective view shown in FIG. 4 and in more detail in FIGS. 5 and 6. Due to the extremely low height of the raised profiles 312a, 312b, FIGS. 5 and 6 show the raised profiles 312a, 312b in enlarged view (two are shown in FIG. 5). The profile 312 provides sufficient energy for welding to occur. It should be noted that the height of the raised profiles 312a, 312b can be different. This can be useful, for example, when the raised profiles 312a, 312b are on the horn 208 and the width of the anvil 220 is narrower compared to the horn 208. This allows an operator or end user to use the same horn 208 to weld different part thicknesses by simply flipping the horn 208 so that the appropriate raised profile (312a or 312b) is in contact with the anvil 220. For example, if raised profile 312a has a height X and raised profile 312b has a height Y>X, then when a thicker part needs to be welded, horn 208 can be flipped over so that raised profile 312b contacts anvil 220, whereas when a thinner part needs to be welded, horn 208 can be flipped over so that raised profile 312a contacts anvil 220 instead. It should be emphasized that the respective widths of horn 208 and anvil 220 can be the same or different (e.g., when raised profiles 312a, 312b are present in horn 208, anvil 220 can be thin or narrow compared to horn 208).

[0028] FIG. 7 shows an exemplary cross-section of two parts, in this example a two-layer film with a bottom film 400 and a top film 402. As the layers 400, 402 are pulled between the horn 208 and the anvil 220, the layers 400, 402 begin to melt due to the application of ultrasonic energy to the horn 208. As the layers 400, 402 move or are moved by force or pressure into the open space along the direction of arrow G shown in FIG. 7, they are squeezed by the raised profile 312. The height of this raised profile 312 corresponds to the thickness of only one of the layers 400, 402 (as the height of the raised profile 312 does not exceed the thickness of one of the layers 400, 402). The thicknesses of the layers 400, 402 are assumed to be the same, but need not be identical. The height H3 of the raised profile can be dimensioned to accommodate the thicker of the two layers 400, 402.

[0029] An important aspect of the height dimension of the raised profile 312 is that it creates a dynamic stop effect without the need for an external mechanical stop device. When the layers 400, 402 enter the gap between the horn 208 and the anvil 220, the amplitude of the ultrasonic energy and the pinching force created at the raised profile 312 provide enough energy for welding to occur along the raised profile 312. In areas other than the raised profile between the horn 208 and the anvil 220, there is not enough energy for welding due to the welding force being distributed over an expanded surface area after penetration of the profile is achieved. In these areas, the unwelded layers 400, 402 prevent contact between the horn 208 and the anvil 220. As a result, the need for an external physical mechanical stop that would otherwise be required to maintain the thickness and consistency of the seal line is eliminated. The unwelded layers between the horn 208 and the anvil 220 provide a physical stop that would previously have been provided by a mechanical stop, but which is excluded from the embodiments disclosed herein.

[0030] In prior art systems, an external mechanical stop device is required to tell the system when to stop the forward motion of the horn when the height of the raised profile is much higher than the thickness of the film provided between the horn and the anvil. Otherwise, too much or insufficient force or pressure may be applied to the film, resulting in an insufficient or poor weld at the seal interface. In contrast, a depth control profile such as profile 312 has a much shallower profile and is narrower in width. This continuous profile (see FIG. 4) can weld the film 400, 402 by initiating melting at the profile surface 312 until the profile 312 penetrates to the depth of the adjacent shoulder. When the shoulder contacts the film 400, 402, it bottoms out at the much larger surface area at the shoulder and melting and penetration are stopped (referred to herein as a dynamic stop effect).

[0031] The gap between the horn 208 and the anvil 220, and the resulting thickness of the seal line, is determined by the profile height as a percentage of the thickness of a single ply of material. For example, if material thickness=x, then the profile height is a predetermined percentage of x, typically 50% to 150%, depending on the material being welded and the desired weld result (e.g., a hermetic seal).

[0032] The advantage of the welds made by the apparatus and methods of the present disclosure over prior art rotary systems is that the continuous welds form a stronger, hermetic seal. Raised profiles according to embodiments of the present disclosure can be applied to multi-layer films, recyclable films, biodegradable films, compostable films, monolayer films, paper-based films, or mono-material films. With embodiments of the present disclosure, complete control of seal line thickness is achievable for material thicknesses ranging from 10 μm to 150 μm.

[0033] As noted above, the raised profile can be present on both the horn 208 and the anvil 220, at the same height or at different heights. FIG. 8 shows an exemplary depth control configuration 800 in which one of the horn 208 or anvil 220 has a first raised profile 812a and the other of the anvil 220 or horn 208 has a second raised profile 812b, both of which are shown greatly exaggerated in size and shape for ease of illustration and discussion. A product 802, such as a pouch or container filled with liquid and thereby requiring a hermetic seal, has a first layer 400 and a second layer 402. The height of each raised profile 812a, 812b must be less than 100% of x (x being the thickness of the layers 400, 402) when the profile heights are the same. When the profile heights are different or if uneven penetration is required, one element may exceed 100% of x, but the other element must be proportionally less. Although both the horn 208 and the anvil 220 are shown in FIG. 8 as having raised profiles 812a, 812b, in alternative embodiments, only one of the horn 208 or the anvil 220 can have a raised profile, and the other of the horn 208 and the anvil 220 does not have a raised profile.

[0034] For example, if the layers 400, 402 are 100 μm thick (x=100), and a seal thickness of 25 μm is desired at the interface 830, and the seal 830 needs to be offset from the centerline, a profile height of 125% of x on one element 812a (horn 208 or anvil 220) and a profile of 50% of x on the second element 812b (anvil or horn) will achieve a 25 μm thick offset seal line. If uniform penetration is required, both the horn 208 and the anvil 220 have raised profiles 812a, 812b with a height equal to 87.5% of x. The unwelded layers 400, 402 in the area 832 downstream of the seal interface 830 prevent contact between the horn 208 and the anvil 220. As a result, the need for external physical mechanical stops that would otherwise be required to maintain the thickness and consistency of the seal line is eliminated. The unwelded layers 400, 402 in the area 832 between the horn 208 and the anvil 220 provide a physical stop.

[0035] FIG. 9A shows a "seal and score" configuration 900 in which a raised profile 912 of either the horn 208 or the anvil 220 includes a scoring element 916 for scoring or cutting a seal boundary 930 of the welded layers 400, 402 just at one of the distal (relative to the product 902) shoulders of the raised profile 912. The unwelded layers 400, 402 in area 932 are scored or cut from the seal boundary 930, thereby allowing the sealing and scoring operation to occur in one step. Again, as with the configuration 800 shown in FIG. 8, the raised profile 912 and scoring element 916 shown in FIG. 9A are greatly exaggerated for ease of illustration and discussion. The scoring element 916 can have a wedge shape for scoring other materials, such as for shrink wrap applications. The unwelded film in area 932 maintains the weld and scoring depth and eliminates the possibility of the horn 208 being damaged by the anvil 220 (assuming that the scoring element 916 is part of the raised profile 912 of the anvil 220).

[0036] FIG. 9B illustrates an "angled seal profile" configuration 950 in which a raised profile 952 of either the horn 208 or the anvil 220 includes an angled profile to aid in sealing or welding the seal interface 930 of the weld layer 400, 402. A product package or container 902 (e.g., containing contents 960, such as liquid, powder, gel, or food, within a sealed container) has a seal interface 930 created in part by the angled profile of the raised profile 952. As shown in FIG. 9B, the seal line of the raised profile 952 is angled across the interface 930 at its shallow edge adjacent or close to the product 902. As the distance from the product 902 increases along the interface 930, this angle increases or tapers away from the product 902. The angled profile of the raised profile 952 diverts more molten material 400, 402 toward the product while improving velocity and increasing seal strength.

[0037] Additional features that may be incorporated into any of the raised profiles disclosed herein are discussed in connection with Figures 10A-11B. Three features broadly summarized as "traction," "tapered weld profile," and "cut and seal" are now described. Some of these features may be combined, for example, a traction feature may be combined with a tapered weld profile feature as shown in Figure 10A.

[0038] FIG. 10A shows a horn 208 or anvil 220 as disclosed above incorporated into a rotary ultrasonic welding apparatus 1000 having the same basic structure as the rotary ultrasonic welding apparatus 200 disclosed above, except that a traction feature 1020 is shown downstream of the raised profile 1012, and a tapered welding profile feature 1014 is shown upstream of and leading to the raised profile 1012.

[0039] Exemplary dimensions of the features shown in FIG. 10A are summarized in the table below.

[0040] [Table 1]

[0041] In the exemplary raised weld profile 1012 shown in FIG. 10A, the height H4 of the raised weld profile relative to the surface of the horn / anvil 208, 220 is 0.0035 inches or approximately 0.1 mm. The raised weld profile 1012 is joined at the front by a leading tapered weld profile 1014 having a taper at an angle α1 that intersects with the surface of the horn / anvil 208, 220. The angle α1 can be between 0.5 degrees and 5 degrees, and is shown in this example to be at an angle of approximately 1.15 degrees. The raised weld profile 1012 is followed at the rear by a trailing tapered weld profile 1016, which is followed by a traction or pattern feature 1020.

[0042] The traction feature 1020 provides the function of pulling the material through the ultrasonic nip, and therefore the ultrasonic nip must provide its own drive. Vertical form fill & seal packaging systems (FFS) are particularly suited for the traction feature 1020 since they have no way to pull the material. An exemplary pattern 1020 can be seen in FIG. 10B, where an array or pattern of raised bumps or protrusions 1004 are distributed in a grid-like pattern on the surface of the horn / anvil 208, 220. The pattern 1020 is designed to avoid excessive localized heat buildup, especially when monolayer films are present, and therefore the pattern 1020 must not impair the necessary drive of the material through the FFS system. Although the pattern 1020 is exemplary only and is shown with a pattern running parallel to the edge of the horn 208 or anvil 220, the pattern 1020 can be angled and spaced apart relative to the edge, such as 1-15 degrees, to provide the desired drive characteristics without excessive heat buildup. Similarly, the shape and form of the nubs or protrusions 1004 can be modified from that shown to provide pulling or gripping friction to the material passing through. For example, the nubs 1004 can have a tooth-like shape. In the example shown in FIG. 10C (cut along line 10C-10C shown in FIG. 10B), it can be seen that the nubs 1004 have a tapered profile as shown with an angle α2. Exemplary values ​​for the dimensions shown in FIG. 10B are set forth in the table below.

[0043] [Table 2]

[0044] Horizontal applications can also benefit from the traction feature 1020. For example, in applications involving zippers, where there is material that is preheated immediately prior to welding, there is slack along the edges caused by laser scoring of the film. The preheating and slack edges caused by the laser scoring created control problems, i.e., it was difficult to hold the material in the nip of the horn / anvil 208, 220. The traction pattern 1020 avoids these problems.

[0045] Returning to Figure 10A, on the forward side of the raised weld profile 1012, we can see a tapered weld profile or feature 1014. The taper, as indicated by angle α1, can range from 0.5 degrees to 5 degrees, and in the example shown, the angle is 1.15 degrees. The product side of the weld would be on the left side of Figure 10A (e.g., in the case of a zippered pillow package, the zipper would be on the right side of Figure 10A, and the product or contents within the pillow package would be on the left side of the tapered weld profile 1014).

[0046] The tapered weld profile 1014 has several advantages. First, it directs the melt flow toward the product, which improves the seal. Whereas a flat profile (e.g., FIG. 3) allows material to move evenly but uncontrolled to both sides of the weld, the tapered weld profile 1014 directs the melt in a more controlled manner toward the product, resulting in a thicker, stronger seal on this side of the weld. Additionally, the tapered design is more resilient to variations in material thickness (e.g., some materials have up to 40% variation in material thickness). In other words, if the maximum combined thickness (two layers) is 180 μm but can be as thin as 108 μm, a depth control anvil with an 88 μm profile would penetrate too far at its highest point, but the lateral taper 1014 moves the ideal weld point from the highest point towards the lowest point of the horn / anvil 208, 220, which means that even with variations in material thickness, the ideal weld condition will be ensured to be met at some point in the profile of the horn / anvil 208, 220. This tapered design 1014 also allows a wider range of film thicknesses to be used with the same horn 208 or anvil 220.

[0047] It should be noted that a tapered weld profile will not work with an anvil / horn that does not use depth control as over-penetration will occur quickly and the anvil will become a cutting tool instead of a welding tool. The tapered weld profile 1014 disclosed herein works with the depth control profiles 312, 1012 as shown in Figures 3, 10A-10C, but is not suitable with conventional anvils that do not have the raised depth control profiles 312, 1012 as disclosed herein. The tapered profile design also improves speed as it penetrates the material more easily during the welding process.

[0048] In general, the thinner the material, the shallower the taper angle of the tapered weld profile 1014 should be. Higher speeds can be achieved and seals can be improved compared to a raised profile without a taper. The taper of the tapered weld profile 1014 can be defined by a radius (e.g., a curve) or an angle (e.g., a slope or α1 as shown in FIG. 10A).

[0049] For certain packaging films, traditional radiused (no depth control) profiles can be problematic because they create a "porpoising effect". This occurs when the radiused anvil begins to penetrate the material and as the penetration depth deepens, the surface contact between the anvil profile and the material being welded increases exponentially, resulting in an amplitude and pressure that is insufficient to maintain the anvil penetration depth, which causes the anvil to recede against the pressure from the material. When this happens, the contact area then decreases exponentially, resulting in excessive pressure and amplitude for the reduced weld depth, thus increasing anvil penetration and causing a cyclical "porpoising" effect (uncontrollable bobbing).

[0050] In contrast, the use of an angled profile 1014 (such as α1 shown in FIG. 10A ) is not sensitive to these effects because the angle of attack of the tapered weld profile 1014 coupled with the profile weld height (H4) of the flat raised profile 1012 is determined based on the range of film thicknesses.

[0051] Additional advantages of the tapered adhesive profile 1014 include:

[0052] Improved speed due to easier material penetration

[0053] Improved seal - The angled profile 1014 with the shallow side towards the product helps improve seal strength by controlling the melt flow and directing it towards the product side of the seal. This also improves vacuum tank testing performance and reduces the chance of defect lines in the film caused by the welding process.

[0054] Reduced particulate spreading - The shallow taper angle (α1) of the tapered profile 1014 traps particulates and deposits them within the weld line, so that no welding occurs on the shallow side of the seal line, but firm contact pressure is applied to trap the particulates.

[0055] Possibility of simultaneous sealing / cutting - Utilizing the angle (e.g., α1) allows reliable cutting / sealing with and without depth control. The depth of the cut can be precisely controlled by adjusting the applied pressure and / or amplitude. The system utilizes the unfused material under the shallow edge of the anvil profile 1012 to act as a compressible depth stop against the penetration of the knife side (1130, FIG. 11B) of the opposite corner. The weld occurs between the knife point 1130 and the shallow edge of the profile (e.g., 1014 in FIG. 10A).

[0056] The "cut and seal" feature will now be described in connection with Figures 11A and 11B. In some applications, it is desirable to simultaneously seal and cut or score shrink wrap or other material to provide a virtually invisible seal with zero fin seal height. Figures 11A-11B show a horn 208 or anvil 220 that utilizes depth control to penetrate the film material, e.g., 30 μm thick when the two layers are combined, leaving 4 μm uncut, which is then easily separated by a conventional vacuum removal system (not shown). This step will be readily known to those skilled in the art to which this disclosure pertains.

[0057] Exemplary dimensions are summarized in the table below.

[0058] [Table 3]

[0059] The corners of this profile (important to obtain the desired result) ensure that the force welding requirements are met in a narrow area that, although very narrow, produces a very strong weld that will withstand shrink-wrap applications after welding, at least for this film. As can be seen in FIG. 11A, the horn / anvil 208, 220 has two welding profiles, one on each edge, which can be used in applications where the width of the horn is narrower than the width of the horn / anvil 208, 220. In the horn 208 or anvil 220 shown in FIG. 11A, the depth control profile 1112 is the entire center between the two profiles. In FIG. 11B, a close-up of the cut is shown, with the cutting feature 1130 at height H9 providing a cutting feature for the film being fed (e.g., shrink-wrap) at its surface or boundary. The height H9 of the cutting feature 1130 is slightly higher compared to the height of the raised profile 1112. The cutting feature 1130 forms a generally sharp 90 degree angle with the surface of the raised profile 1112, and this abrupt transition provides a cutting action on the passing film or material by the horn / anvil 208, 220. The height H9 of the cutting feature 1130 can be 1% to 20% of the height H4 of the raised profile 1012, 1112. The cutting feature 1030 forms the terminus of the raised profile 1112 and is therefore located adjacent to or at the end of the raised profile 1112.

[0060] FIG. 12 illustrates a tapered weld profile with two different profiles on either side of the horn / anvil 208, 220. Due to the relatively small dimensions of the profile, only one side of the horn / anvil 208, 220 is shown here for ease of illustration. Exemplary values ​​for the labeled dimensions in FIG. 12 are provided in the table below. The profile includes an angled profile 1214 at an angle α3, a depth control profile 1212 followed by a trailing edge profile 1016, which may be angled or sloped.

[0061] [Table 4]

[0062] According to other aspects of the present disclosure, enhanced depth control (and anvil shape detail) can be coupled with generator power. For example, adding specific depth control and anvil detail results in higher ultrasonic power (thus allowing for better seals and faster speeds). Limits and power adjustments can be set based on these parameters.

[0063] The present disclosure produces a more consistent pull power and stability not seen with radiused anvils without depth control. In fact, the use of the angled profile 1014 results in lower pull power and therefore higher speeds compared to radiused anvils.

Claims

1. An apparatus for joining a first film portion and a second film portion to each other along a seal line using ultrasonic energy, comprising: a horn configured to receive ultrasonic energy; an anvil that can be disposed proximate to the horn, wherein the horn advances toward the anvil, and at least one of the horn or the anvil has a surface with a width dimension and an outer periphery and is rotatable about a rotation axis; The apparatus is provided with The surface has a raised profile, and the surface is arranged such that the raised profile extends along the outer periphery. When rotated about the rotation axis, continuous running contact is provided between the raised profile and the other of the horn or the anvil, and when the continuous running contact is provided, the seal line is formed without any external structure for controlling the distance between the horn and the anvil. The raised profile is part of the horn, and further, when combined with a second anvil, the horn has a second raised profile with a height dimension exceeding the height dimension of the raised profile, thereby sealing films of different thicknesses. The apparatus is characterized by this.

2. The apparatus according to claim 1, wherein the thicknesses of the first film portion and the second film portion are 10 μm to 150 μm.

3. The apparatus according to claim 1, wherein the height dimension of the raised profile corresponds to 100% of the thickness of the first film portion or the second film portion.

4. The apparatus according to claim 1, wherein the height dimension of the raised profile corresponds to 87.5% of the thickness of the first film portion or the second film portion.

5. The apparatus according to claim 1, further comprising a scoring element configured such that when the anvil is rotated about the rotation axis, the raised profile scores or cuts along the seal line.

6. The apparatus according to claim 1, wherein the second raised profile has a height corresponding to 50% to 150% of the thickness of the first film portion or the second film portion, the second raised profile extends along the outer periphery, and when rotated about the rotation axis, continuous running contact is provided between the second raised profile and the other of the horn or the anvil.

7. The apparatus according to claim 6, wherein the height dimension of the second raised profile corresponds to 100% of the thickness of the first film portion or the second film portion.

8. The apparatus according to claim 1, further combined with a second anvil having a second raised profile having a height dimension exceeding 0.0005 inches (12.7 μm) of the height dimension of the raised profile which is part of the anvil.

9. A product comprising the first film portion, the second film portion, and the seal line formed by the apparatus according to claim 1.

10. The apparatus according to claim 1, wherein the first film portion and the second film portion are made of plastic.

11. The apparatus according to claim 1, wherein the first film portion or the second film portion is a multilayer film, a recyclable film, a biodegradable film, a compostable film, a single-layer film, a paper-based film, or a single-material film.

12. An apparatus for joining a first film portion and a second film portion to each other along a seal line using ultrasonic energy, a horn configured to receive ultrasonic energy, an anvil that can be disposed close to the horn, wherein the horn advances toward the anvil, and at least one of the horn or the anvil has a surface having a width dimension and an outer periphery and is rotatable about a rotation axis, the anvil and is provided with the device. The surface has a raised profile with respect to the surface, the surface is arranged such that the raised profile extends along the outer circumference, and when rotated about the rotation axis, continuous running contact is provided between the raised profile and the other of the horn or the anvil, forming the seal line without any external structure for controlling the distance between the horn and the anvil. A device characterized by that.

13. The device according to claim 12, wherein the thickness of the first film portion and the second film portion is 10 μm to 150 μm. A device characterized by that.

14. The device according to claim 12, wherein the height dimension of the raised profile corresponds to 50% to 150% of the thickness of the first film portion or the second film portion. A device characterized by that.

15. The device according to claim 12, wherein the surface includes a traction function portion having a height dimension not exceeding the height of the raised profile, the traction function portion includes a plurality of protrusions arranged in a grid or pattern, and the traction function portion is adjacent to the raised profile. A device characterized by that.

16. The device according to claim 12, wherein the plurality of protrusions are arranged in rows or columns non-parallel to the edge of the surface. A device characterized by that.

17. The device according to claim 12, wherein the surface includes a cutting function portion having a height higher than the height of the raised profile, and the raised profile has a height corresponding to 50% to 150% of the thickness of the first film portion or the second film portion. A device characterized by that.

18. The device according to claim 17, wherein the height of the cutting function portion is 1% to 20% of the height of the raised profile. A device characterized by that.

19. The device according to claim 12, wherein the raised profile including the tapered side surface is part of the anvil. A device characterized by that.

20. The device according to claim 17, wherein the cutting function portion is adjacent to the raised profile and forms its terminal. A device characterized by that.

21. A product comprising the first film portion, the second film portion, and the seal line formed by the apparatus according to claim 12. **Claim 22** The apparatus according to claim 12, wherein the first film portion and the second film portion are made of plastic. **Claim 23** The apparatus according to claim 12, wherein the first film portion or the second film portion is a multilayer film, a recyclable film, a biodegradable film, a compostable film, a single-layer film, a paper-based film, or a single-material film.