Ultrasonic consolidation of materials

The system effectively consolidates CFRP layers using a sonotrode and non-rigid material with higher glass transition and melting temperatures, addressing unsatisfactory welding issues in existing systems, achieving high-quality bonding for automotive, aeronautical, and military applications.

JP7789431B2Active Publication Date: 2025-12-22アジャイル ウルトラソニックス コープ
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Patent Information

Application Number
JP2024510437
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-08-18
Filing Date
2022-08-18
Publication Date
2025-12-22
Estimated Expiration
2042-08-18

AI Technical Summary

Technical Problem

Existing ultrasonic welding systems fail to effectively consolidate carbon fiber reinforced polymer (CFRP) layers without the use of energy directors or sacrificial fusion layers, particularly for CFRP tapes, blades, or pre-compacted plates, resulting in unsatisfactory welding quality, especially for automotive, aeronautical, and military applications.

Method used

A system utilizing a sonotrode to direct ultrasonic energy with a non-rigid consolidation material having a higher glass transition and melting temperature than the CFRP, and a rigid anvil to support the non-rigid material, and a system to apply a compressive force to the CFRP, including a rigid anvil and thermal sensors, and a non-rigid material with a higher glass transition and melting temperature.

Benefits of technology

The system achieves high-quality consolidation of CFRP layers into solid structures, suitable for automotive, aeronautical, and military applications, with improved bonding and reduced power consumption.

✦ Generated by Eureka AI based on patent content.

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Abstract

A system for consolidating a material comprising: a sonotrode configured to direct ultrasonic energy to a material to be consolidated, the material to be consolidated having both a glass transition temperature and a melting temperature; and a non-rigid consolidated material proximate to the sonotrode, the non-rigid consolidated material and the sonotrode defining an area therebetween for receiving the material to be consolidated, the non-rigid consolidated material having a glass transition temperature higher than the glass transition temperature of the material to be consolidated and a melting temperature higher than the melting temperature of the material to be consolidated.
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Description

[Technical Field]

[0001] The disclosed subject matter relates generally to manufacturing and fabrication systems, devices, and methods, and more particularly to systems, devices, and methods for ultrasonic consolidation of materials, such as materials containing carbon fiber. [Background technology]

[0002] Welding multiple carbon fiber reinforced polymer (CFRP) layers together using an ultrasonic welding process Consolidated structures are rarely achieved without the use of energy directors or sacrificial fusion layers. or the anvil component of an ultrasonic welding system. This is the case when the component contains a hard surface on which a layer of CFRP is placed. In the bonding method, the thermoplastic or thermoplastic composite material is secured to a rigid anvil. However, these methods cannot be applied to CFRP tapes, blades, or pre-compacted plates. When used, they typically include conventional energy directors and secondary Unless the material is used, welding cannot be performed. welding is often of unsatisfactory quality. Therefore, in automotive, aeronautical and military applications CFRP tapes can be effectively consolidated into solid structures for use in a variety of applications, including There is a continuing need for ultrasonic welding systems that can The prior art documents relevant to the invention of this application are as follows (including documents cited in the international phase after the international filing date and documents cited when the application entered the national phase in other countries). (Prior art document) (Patent document) (Patent Document 1) International Publication No. 2017 / 220327 (Patent Document 2) U.S. Patent Application Publication No. 2021 / 0086290 (Patent Document 3) International Publication No. 2006 / 087224 (Patent Document 4) U.S. Patent Application Publication No. 2021 / 0154944 Summary of the Invention

[0003] The following provides a summary of certain embodiments of the disclosed inventive subject matter. This summary is not an extensive overview, and is not intended to identify key or critical aspects or elements of the disclosed inventive subject matter or to delineate the scope thereof. However, it should be understood that the use of indefinite articles in the language used to describe and claim the disclosed inventive subject matter is not intended to limit the described inventive subject matter in any way. Rather, the use of "a" or "an" should be construed to mean "at least one" or "one or more."

[0004] An embodiment of the disclosed technology provides a first system for consolidating a material, the system including a sonotrode configured to direct ultrasonic energy toward a material to be consolidated, the material having both a characteristic glass transition temperature and a characteristic melting temperature, and a non-rigid consolidation material disposed proximate the sonotrode, defining a region for receiving the material to be consolidated between the non-rigid consolidation material and the sonotrode, the non-rigid consolidation material having a higher characteristic glass transition temperature than the material to be consolidated and a higher characteristic melting temperature than the material to be consolidated and higher than the material to be consolidated.

[0005] The system may further include a rigid anvil for supporting the non-rigid consolidated material. The system may further include at least one force sensor and at least one thermal sensor. The system may further include an input material anvil disposed on one side of the sonotrode and an output material anvil disposed on the opposite side of the sonotrode, the anvils configured to apply a compressive force to the material being consolidated, and the anvils configured to cool or heat the material being consolidated. The system may further include at least one ultrasonic transducer configured to provide ultrasonic energy to the sonotrode, the at least one ultrasonic transducer mounted within an articulating housing configured to provide the sonotrode with a compressive force and a varying contact angle (or attack) with respect to the placement of the material to be consolidated (i.e., approaching the surface normal for complex surface shapes). The sonotrode may include a rounded or tapered face profile, and the sonotrode may be configured to consolidate either a component of a predetermined narrow width or a component of a predetermined wide width. The sonotrode may include a compacted hold-down structure configured to contact the material to be compacted. The material to be compacted may be a thermoplastic material, a thermoset material, or a carbon fiber reinforced polymer and may be configured as a layer of material or a sheet of material. Non-rigid compacted materials include thermoplastic materials, thermoset materials, silicone, polyamide, urethane, rubber, woven glass sheets, glass, carbon fiber materials, or various combinations thereof and may be configured as a layer of material, a sheet of material, or a pre-integrated structure. The non-rigid compacted material may have a Shore A hardness of 40 to 100.

[0006] Another embodiment of the disclosed technology provides a second system for consolidating material. The system includes at least one ultrasonic transducer configured to provide ultrasonic energy to a sonotrode, the at least one ultrasonic transducer mounted within an articulating housing configured to provide a compressive force to the sonotrode and a varying contact angle with respect to the placement of the material to be consolidated; the sonotrode configured to direct ultrasonic energy toward the material to be consolidated, the material to be consolidated having both a characteristic glass transition temperature and a characteristic melting temperature; a non-rigid compaction material proximate to the sonotrode, the non-rigid compaction material and the sonotrode defining an area therebetween for receiving the material to be consolidated, the non-rigid compaction material having a characteristic glass transition temperature higher than the characteristic glass transition temperature of the material to be consolidated and a characteristic melting temperature higher than the characteristic melting temperature of the material to be consolidated; an input material anvil disposed on one side of the sonotrode; and an output material anvil disposed on the other side of the sonotrode, the anvil configured to provide an additional compressive force to the material to be consolidated, the anvil configured to either cool or heat the material to be consolidated.

[0007] The system may further include a rigid anvil for supporting the non-rigidly consolidated material. The system may further include at least one force sensor and at least one thermal sensor. The sonotrode may include a rounded or tapered surface profile, and the sonotrode may be configured to consolidate either a component of a predetermined narrow width or a component of a predetermined wide width. The sonotrode may include an integral hold-down structure configured to contact the material to be consolidated. The material to be consolidated may be a thermoplastic material, a thermoset material, or a carbon fiber reinforced polymer, and may be configured as a layer of material, a sheet of material, or a pre-consolidated structure. The non-rigidly consolidated material may include a thermoplastic material, a thermoset material, silicone, polyamide, urethane, rubber, a woven glass sheet, glass, a carbon fiber material, or various combinations thereof, and may be configured as a layer of material or a sheet of material. The non-rigidly consolidated material may have a Shore A hardness of 40 to 100.

[0008] Yet another embodiment of the disclosed technology provides a method of consolidating materials, the method comprising the steps of directing ultrasonic energy to a material to be consolidated, configuring a sonotrode to exert a compressive force on the material to be consolidated, the material to be consolidated having both a characteristic glass transition temperature and a characteristic melting temperature, disposing a non-rigid consolidating material adjacent to the sonotrode, the non-rigid consolidating material and the sonotrode defining an area therebetween for receiving the material to be consolidated, the non-rigid consolidating material having a higher characteristic glass transition temperature than the material to be consolidated and a higher characteristic melting temperature than the material to be consolidated, and actuating the sonotrode to move the sonotrode through the material under a compressive force, thereby joining the material to be consolidated.

[0009] It should be understood that all combinations of the foregoing concepts and additional concepts described in more detail below (provided such concepts are not mutually inconsistent) are contemplated as part of the inventive subject matter disclosed herein and can be implemented to achieve the described advantages. Additional features and aspects of the disclosed systems, apparatus, and methods will become apparent to those skilled in the art upon reading and understanding the following detailed description of the embodiments. As will be appreciated by those skilled in the art, further implementations are possible without departing from the scope and spirit of the subject matter disclosed herein. Accordingly, the drawings and associated description should be regarded as illustrative in nature and not restrictive. [Brief explanation of the drawings]

[0010] The accompanying drawings, which are incorporated in and form a part of this specification, illustrate generally one or more exemplary implementations of the disclosed subject matter and, together with the general description above and the detailed description below, serve to explain the principles of the disclosed subject matter of the present invention. [Figure 1A] FIG. 1A is a front view of a system and apparatus for ultrasonically consolidating materials in accordance with a first embodiment of the disclosed technique. [Figure 1B] FIG. 1B is a front perspective view of the system and device of FIG. 1A. [Figure 2A] FIG. 2A is a front view of a system and apparatus for ultrasonic consolidation of materials in accordance with a second embodiment of the disclosed technique. [Figure 2B] FIG. 2B is a front perspective view of the system and device of FIG. 2A. [Figure 3] FIG. 3 is a front view of a system and apparatus for ultrasonically consolidating materials in accordance with a third embodiment of the disclosed technique. [Figure 4] FIG. 4 shows a first exemplary configuration of a sonotrode, anvil, layer of consolidated material, and layer of material to be consolidated, arranged relative to one another in accordance with the disclosed technique. [Figure 5]FIG. 5 shows a second exemplary configuration of a sonotrode, anvil, layer of consolidated material, and layer of material to be consolidated, arranged relative to one another in accordance with the disclosed technique. [Figure 6] FIG. 6 illustrates a third exemplary configuration of a sonotrode, anvil, layer of compaction material, and layer of material to be compacted, arranged relative to one another in accordance with the disclosed technology. [Figure 7] FIG. 7 shows a fourth exemplary configuration of a sonotrode, anvil, and layer of material to be consolidated relative to one another in accordance with the disclosed technique. [Figure 8] FIG. 8 illustrates a fifth exemplary configuration of a sonotrode, anvil, layer of consolidated material, and layer of material to be consolidated, arranged relative to one another in accordance with the disclosed technology. DETAILED DESCRIPTION OF THE INVENTION

[0011] Examples will now be described with reference to the figures. Reference numbers will be used throughout the detailed description to refer to various elements and structures. Although the following detailed description contains many details for purposes of illustration, those skilled in the art will appreciate that many variations and modifications to the following details are within the scope of the disclosed inventive subject matter. Accordingly, the following embodiments will be described without loss of generality to, and without imposing limitations upon, the claimed subject matter.

[0012] The disclosed technology provides systems, devices, and methods for ultrasonically consolidating multiple layers of certain types of material into a laminated structure. Referring to the drawings, a typical example of the disclosed system includes an ultrasonic stack (ultrasonic transmission line) that further includes an ultrasonic transducer, an ultrasonic booster, and an ultrasonic horn (sonotrode). The components of the ultrasonic stack are mounted within an articulating head assembly that is statically forced downward (or toward the material to be consolidated) and moves with a lateral system motion. A power source drives the ultrasonic transducer to generate ultrasonic vibrations that are transmitted through the ultrasonic booster and sonotrode to the multiple layers of target material, thereby bonding (i.e., consolidating) the layers of material. The layers of material to be consolidated are placed on a substrate (called the "consolidation material") with specific non-rigid, elastic, or flexible properties. The substrate itself is typically placed on a rigid support called an anvil, although in some embodiments, the substrate itself functions as the anvil. The sonotrode can be configured in various widths, e.g., narrow for use in welding tapes of material or wide for welding sheets of material. The anvil may be supported by a primary processing surface that has rigid characteristics. The primary processing surface may remain stationary, but incorporate multiple degrees of freedom, such as X, Y, Z, I, J, K axis motion, or a combination thereof, facilitating spot welding or continuous scan welding of materials across complex surface geometries.

[0013] The articulating head assembly of the disclosed technology can be provided in a number of alternative configurations. In one embodiment, the head assembly includes a rigid housing secured to a support structure. Actuation of the ultrasonic transmission line can be performed using pneumatic, hydraulic, or electromechanical devices to apply force to the material to be consolidated. In another embodiment, the head assembly includes a rigid housing secured to the end of a numerically controlled multi-axis system, the system structure having independent actuation for exerting force on the material to be consolidated. In yet another embodiment, the head assembly includes a rigid housing secured to the end of an articulated network of robotically controlled joints. Applying force to the material to be consolidated can be performed by the network of robotic joints and / or through pneumatic, hydraulic, or electromechanical devices contained within the housing. The disclosed welding system also includes a real-time force sensor coupled between the articulating head assembly and the force-applying actuator device to provide real-time feedback to the actuation device to increase or decrease the force to deliver the varying energy per unit area, thereby modifying the process temperature to better suitably consolidate the target material.

[0014] In an exemplary embodiment, the disclosed system includes an ultrasonic transmission line having a transducer with a resonant frequency between 10 kHz and 60 kHz, a booster that facilitates rigid attachment of the transmission line to the coupled device and amplifies or de-amplifies the amplitude from the transducer, and an ultrasonic sonotrode that applies a force to the material to be consolidated and delivers intense ultrasonic vibrations to cause changes in the material. Each component of the transmission line is designed to be 1 / 2 wavelength at the operating frequency. An array of 1 / 2 wavelength components can be attached to the transmission line. In one embodiment, only three components are required, producing 1 wavelength and 1 / 2 wavelength.

[0015] In an exemplary embodiment, the disclosed system includes an ultrasonic sonotrode with a rounded or tapered surface profile that creates an ironing effect that aligns fibers in the proper orientation of the laminate (consolidated material). Additionally, it utilizes a trailing backing bar that applies a compressive force during consolidation of the material being consolidated, thereby eliminating voids between subsequent layers.

[0016] In an exemplary embodiment, the disclosed welding system includes a thermally controlled contoured backing anvil that provides a consistent and uniform compressive force to the target material during consolidation. Additionally, the thermally controlled backing anvil can have temperature zones controlled by heating elements suitable for modifying the cooling rate of the target material, thereby affecting the performance of the material and its final performance through a heat treatment process controlled by the thermally contoured backing anvil. This specifically controlled cooling rate capability produces specifically tailored material properties of the consolidated material.

[0017] In an exemplary embodiment, the disclosed system includes real-time thermal monitoring sensors that measure input and output process temperatures. The outfeed temperature sensor is important because temperature fluctuations are changed by increasing or decreasing the amplitude value within the ultrasonic transducer. Temperature fluctuations are also changed by increasing or decreasing the speed of travel of the ultrasonic sonotrode across the material being consolidated. Temperature fluctuations are also changed by increasing or decreasing both the speed of travel and the applied amplitude of the ultrasonic sonotrode relative to the target material.

[0018] The disclosed systems, devices, and methods are effective for consolidating certain types of materials, such as thermoplastics, thermosets, and carbon fiber reinforced polymer (CFRP) sheets or tapes. CFRP can refer to carbon fiber reinforced polymer, carbon fiber reinforced plastic, or carbon fiber reinforced polyethylene. CFRP can also refer to carbon fiber infused with a thermoplastic resin. The disclosed techniques can be used to consolidate multiple layers of thermoplastic or thermoset materials. For example, a consolidated object or component made by the disclosed techniques can include 2 to 24 layers of material or pre-consolidated plates or structures. Additional layers of tape, sheet material, or pre-consolidated structures can also be used.

[0019] When the disclosed system is in operation, the use of a suitable non-rigid substrate material, also known as a "peeling layer" or "consolidation material," ensures proper bonding of the layers of material being welded. However, a suitable consolidation material does not bond to the material being consolidated. Such materials may include, by way of non-limiting example, single or multiple thin layers or sheets of compliant, flexible, or pliable materials, such as thermoplastics, thermosets, silicones, polyamides, urethanes, woven rubber-glass sheets, glass, carbon fiber materials, or various combinations thereof. Teflon® (polytetrafluoroethylene (PTFE)) or other materials with similar properties can also be used as consolidation materials. The thickness of the substrate varies depending on the thickness of the layer of material being consolidated, with the thickness of the substrate decreasing as the thickness of the layer being consolidated increases.

[0020] In some embodiments, a non-rigid substrate material may not be present, and the anvil itself may be made from a compliant, flexible, or pliable material. In one example, processing of carbon fiber reinforced polymers is performed on an elastic backing surface with a Shore A hardness of 40-100. Furthermore, the elastic processing surface must be able to withstand processing temperatures of 150-600 degrees Celsius. Prior art ultrasonic processing methods for thermoplastics teach the use of a rigid support structure, typically steel or aluminum, to ensure consistent energy transfer to the weld joint. In contrast to prior art systems, utilizing an elastic anvil structure creates an elastic rebound surface while acting as a heat sink-like structure whose thickness and thermal properties can be varied and tuned to control cooling rates. Figure 1A is a front view of a system and apparatus for ultrasonically compacting material in accordance with a first embodiment of the disclosed technology. Figure 1B shows a front perspective view of the system and apparatus of Figure 1A. Referring to Figures 1A-1B, ultrasonic compaction system 100 includes a housing 110, an ultrasonic stack actuator 112, a closed-loop force feedback sensor 114, a linear rail 116, and a carriage 118 to which an ultrasonic head assembly 120 is mounted.

[0021] The ultrasonic head assembly 120 includes an ultrasonic transducer 122 connected to a rigid mount booster 124 and an ultrasonic sonotrode also connected to the rigid mount booster 124. An ultrasonic sonotrode lateral support 128 is attached to the bottom of the housing 110, as is a thermal sensor 130. A welding anvil 140 supports one or more layers of material 150 to be consolidated, and during the consolidation process, multiple layers of material 160 to be consolidated are positioned between the material 150 to be consolidated and the ultrasonic sonotrode 126.

[0022] FIG. 2A is a front view of a system and apparatus for ultrasonically consolidating material according to a first embodiment of the disclosed technology. FIG. 2B is a front perspective view of the system and apparatus of FIG. 2A. In FIGS. 2A-2B, ultrasonic consolidation system 200 includes a housing 210, an ultrasonic stack actuator 212, a closed-loop force feedback sensor 214, a linear rail 216, and a carriage 218 to which an ultrasonic head assembly 220 is mounted. Ultrasonic head assembly 220 includes an ultrasonic transducer 222 connected to a rigid mount booster 224 and an ultrasonic sonotrode 226 also connected to the rigid mount booster 224. A thermal sensor 230 is attached to the bottom of housing 210. Integrated material hold-down structures are formed on both sides of ultrasonic sonotrode 226. A welding anvil 240 supports one or more layers of material 250 to be consolidated. During the consolidation process, multiple layers of material 260 to be consolidated are positioned between the material 250 to be consolidated and ultrasonic sonotrode 226.

[0023] FIG. 3 provides a front view of a system and apparatus for ultrasonic consolidation of material according to a third embodiment of the disclosed technology. As shown in FIG. 3, the ultrasonic consolidation system 300 includes a housing 310, an ultrasonic stack actuator 312, a closed-loop force feedback sensor 314, an ultrasonic transducer (not shown), a rigid-mount booster 324, and an ultrasonic sonotrode 326. A first adjustable cylinder mount 370 and a second adjustable cylinder mount 372 are attached to the bottom of the housing 310. An input material hold-down assembly 380 is attached to the first adjustable cylinder mount 370 and includes insulation 382 and a cooling / heating region 382 in contact with the material to be consolidated, or, in some cases, the material to be consolidated. A pressure regulator 386, which controls the downward pressure of the input material hold-down assembly 380, is attached to the side of the housing 310. The processed material hold-down assembly 390 includes insulation 382 and a cooling / heating region 382 that contacts the processed material (e.g., consolidated material) or, in some cases, the consolidated material. A pressure regulator 396 that controls the downward pressure on the processed material hold-down assembly 390 is mounted to the side of the housing 310.

[0024] 4 illustrates a first exemplary configuration of a sonotrode, anvil, layer of material to be consolidated, and layer of material to be consolidated relative to one another in accordance with the disclosed technology. In configuration 400, an ultrasonic sonotrode 426 is positioned above or immediately adjacent to a rigid anvil 440, a predetermined number or “N” layers of material to be consolidated 450 are disposed on the rigid anvil 440, and a predetermined number or “N” layers of material to be consolidated 460 are disposed on the material to be consolidated 450. The actual number of layers is determined by various factors, including the specific material used for the material to be consolidated or the specific material to be consolidated, and the characteristics of the component or part being manufactured using the disclosed technology. In this embodiment, the ultrasonic sonotrode 426 comes into contact with the top layer 460 of material to be consolidated when the consolidation process is initiated.

[0025] 5 illustrates a second exemplary configuration of a sonotrode, anvil, layers of material to be consolidated, and layers of material to be consolidated relative to one another in accordance with the disclosed technology. In configuration 500, an ultrasonic sonotrode 526 is positioned above or immediately adjacent to a rigid anvil 540, a first predetermined number or “N” of layers of material to be consolidated 550 is disposed on the rigid anvil 540, a predetermined number or “N” of layers of material to be consolidated 560 is disposed on the material to be consolidated 550, and a second predetermined number or “N” of layers of material to be consolidated 555 is disposed on the material to be consolidated 560. The actual number of layers is determined by various factors, including the specific material or materials used for the material to be consolidated. The actual number of layers is determined by various factors, including the specific material or materials used for the material to be consolidated, and the characteristics of the component or part being manufactured using the disclosed technology. In this embodiment, the ultrasonic sonotrode 526 is brought into contact with the top layer of the second predetermined number or "N" layers of the consolidated material 555 when the consolidation process is initiated.

[0026] 6 illustrates a third exemplary configuration of a sonotrode, anvil, layers of material to be consolidated, and layers of material to be consolidated relative to one another in accordance with the disclosed technology. In configuration 600, an ultrasonic sonotrode 626 is positioned above or near a conforming anvil 640, a first predetermined number or “N” of layers of material to be consolidated 650 is disposed on the conforming anvil 640, a predetermined number or “N” of layers of material to be consolidated 660 is disposed on the material to be consolidated 650, and a second predetermined number or “N” of layers of material to be consolidated 655 is disposed on the material to be consolidated 660. The actual number of layers is determined by various factors, including the specific material or materials used in the material to be consolidated. The actual number of layers is determined by various factors, including the specific material or materials used in the material to be consolidated or the specific material to be consolidated, and the characteristics of the component or part being manufactured using the disclosed technology. In this embodiment, the ultrasonic sonotrode 626 is brought into contact with the top layer of the second predetermined number or "N" layers of consolidated material 655 when the consolidation process is initiated.

[0027] 7 shows a fourth example configuration of a sonotrode, anvil, and layers of material to be consolidated relative to one another in accordance with the disclosed technology. In configuration 700, an ultrasonic sonotrode 726 is positioned above or adjacent to a conforming anvil 740, and a predetermined number or "N" of layers of material to be consolidated 760 are placed on the conforming anvil 740. The actual number of layers will be determined by various factors, including the particular materials used in the material to be consolidated and the properties of the component or part being manufactured using the disclosed techniques. In this embodiment, the ultrasonic sonotrode 726 is brought into contact with the top layer of the material to be consolidated 760 when the consolidation process is initiated.

[0028] 8 shows a fifth example configuration of a sonotrode, anvil, layer of material to be consolidated, and layer of material to be consolidated relative to one another in accordance with the disclosed technology. In configuration 800, an ultrasonic sonotrode 826 is positioned above or adjacent to a conforming anvil 840, and a predetermined number, or "N," of layers of material to be consolidated 860 are placed on the conforming anvil 840. The actual number of layers is determined by various factors, including the specific material used for the material to be consolidated and the characteristics of the component or part being manufactured using the disclosed technology. In this embodiment, the ultrasonic sonotrode 826 is brought into contact with the top layer of material to be consolidated 860 when the consolidation process is initiated. Configuration 800 also includes the use of two anvils positioned on either side of the ultrasonic sonotrode to apply a downward force (860) to the material to be consolidated and to heat or cool the material to be consolidated. As shown in FIG. 8, the input material (pre-consolidation) anvil 880 includes a thermocouple 882 and the output material (post-consolidation) anvil 890 includes a thermocouple 892 and heating and cooling passages or elements 894 .

[0029] A key aspect of the disclosed technology is the control of process operation in conjunction with the control of ultrasonic processing parameters. Key variables for ultrasonic processes include, but are not limited to, ultrasonic amplitude, applied force, and total energy (i.e., energy per unit area). Machine-specific parameters address or control when ultrasonic input occurs, when the processing table begins moving, and processing speed. The control system provided to the operator allows for the creation of unique processing conditions that affect the quality of the weld / consolidation. These control functions include (i) ultrasonic activation, (ii) head activation at a programmed force, and (iii) welding operation, with delay timers included for all three control functions. These control functions allow the operator to determine when and for how long force is applied. The ultrasonic can then be triggered for a predetermined time before movement is induced. Furthermore, these control functions can be modified to initiate the ultrasonic before force is applied. Force can then be applied at a programmed value and operation can be initiated as needed. Advantages offered by the disclosed technology include reduced power consumption and processing time compared to other consolidation processes. All literature and similar materials cited in this application, including but not limited to patents, patent applications, papers, books, articles, and web pages, regardless of the format of such literature and similar materials, are expressly incorporated herein by reference in their entirety. In the event that one or more of the incorporated references and similar materials differs from or contradicts this application, this application controls.

[0030] As stated above and used herein, the singular forms "a," "an," and "the" refer to both the singular and the plural unless the context clearly dictates otherwise. As used herein, the term "comprising" is synonymous with "including," "containing," or "characterized by" and is inclusive or open-ended and does not exclude additional, unrecited elements or method steps. While many methods and materials similar or equivalent to those described herein can be used, particularly suitable methods and materials are described herein. Unless the context dictates otherwise, the recitation of numerical ranges by endpoints includes all numbers subsumed within that range. Furthermore, references to "one implementation" are not intended to be interpreted as excluding the existence of additional implementations that incorporate the recited functionality. Furthermore, unless explicitly stated to the contrary, an implementation that "includes" or "has" one or more elements having a particular characteristic can include additional elements, whether or not they have that characteristic.

[0031] The terms "substantially" and "about," as used throughout this specification, are intended to account for small variations due to variations in processing, etc. For example, these terms can refer to ±5% or less, such as, for example, ±2% or less, ±1% or less, ±0.5% or less, ±0.2% or less, ±0.1% or less, ±0.05% or less, and / or 0%, etc.

[0032] Underlined and / or italicized headings and subheadings are used for convenience only, do not limit the disclosed subject matter, and should not be referenced in connection with interpreting the description of the disclosed subject matter. All structural and functional equivalents to the elements of the various embodiments described throughout this disclosure that are known, or that later become known, to those of ordinary skill in the art are expressly incorporated herein by reference and are intended to be encompassed by the disclosed subject matter. Furthermore, nothing disclosed herein is intended to be offered to the public, regardless of whether such disclosure is explicitly set forth in the description above.

[0033] There may be many alternative ways to implement the disclosed technology. The various functions and elements described herein may be divided differently than shown without departing from the scope of the disclosed technology. The general principles defined herein are applicable to other embodiments. A different number of given modules or units may be used, different types of given modules or units may be used, given modules or units may be added, or given modules or units may be omitted.

[0034] It should also be noted that the implementation may be described as a process that is depicted as a flowchart, flow diagram, data flow diagram, structure diagram, or block diagram. While a flowchart may describe operations as a sequential process, many of the operations may be performed in parallel or simultaneously. Additionally, the order of operations may be changed. A process terminates when operations are completed, but may include additional steps not included in the diagram. A process may correspond to a method, a function, a procedure, a subroutine, a subprogram, etc. When a process corresponds to a function, the termination of the process corresponds to a return of the function to the calling function or the main function.

[0035] In the context of this disclosure, the term "multiple" refers to two or more than two. Furthermore, unless otherwise specified, orientations and positions indicated by terms such as "upper," "lower," and the like are based on those shown in the drawings for ease of explanation and simplicity of description of the disclosed technology. They should not be construed as limiting the disclosed technology to indicate or imply that the referenced devices or elements must be in a particular orientation or be constructed or operated in a particular orientation. Terms such as "connected," "mounted," and "fixed" should be understood broadly. For example, "connected" may refer to a fixed connection, a detachable connection, or an integral connection, a direct connection, or an indirect connection via an intermediate medium. Those skilled in the art will understand the specific meaning of the above terms in the disclosed technology depending on the specific circumstances.

[0036] It should be understood that all combinations of the foregoing concepts and additional concepts described in more detail herein (provided such concepts are not mutually inconsistent) are contemplated as part of the disclosed technology. In particular, all combinations of subject matter recited in the claims at the end of this disclosure are considered to be part of the technology disclosed herein. The disclosed technology has been illustrated by description of embodiments, and while the embodiments have been described in particular detail, it is not intended to restrict or in any way limit the scope of the appended claims to such details. Additional advantages and modifications will be readily apparent to those skilled in the art. Thus, the disclosed technology, in its broader aspects, is not limited to any of the specific details, representative apparatus and methods, and / or illustrative examples shown and described. Accordingly, departures may be made from such details without departing from the spirit or scope of the general inventive concept.

Claims

1. 1. A system for consolidating material, comprising: (a) a sonotrode configured to direct ultrasonic energy to a material to be consolidated, the material to be consolidated having both a glass transition temperature and a melting temperature; (b) a non-rigid consolidated material proximate to the sonotrode, the non-rigid consolidated material and the sonotrode defining an area therebetween for receiving the material to be consolidated; (c) the non-rigid consolidated material has a glass transition temperature greater than the glass transition temperature of the material to be consolidated and a melting temperature greater than the melting temperature of the material to be consolidated; The system further includes at least one ultrasonic transducer configured to provide ultrasonic energy to the sonotrode, the at least one ultrasonic transducer mounted in an articulating housing, the articulating housing configured to provide the sonotrode with a compressive force and a contact angle that varies with the placement of the material to be consolidated.

2. 10. The system of claim 1, further comprising a rigid anvil for supporting the non-rigid consolidated material.

3. The system of claim 1 , further comprising at least one of a force sensor and a thermal sensor.

4. 10. The system of claim 1, wherein the sonotrode includes a rounded or tapered surface profile, and the sonotrode is configured to compact a component having a narrow predetermined width or a component having a wide predetermined width.

5. 10. The system of claim 1, wherein the sonotrode includes an integral hold-down structure configured to contact the material being consolidated.

6. The system of claim 1 , wherein the material to be consolidated is a thermoplastic material, a thermoset material, or a carbon fiber reinforced polymer.

7. 10. The system of claim 1, wherein the material to be consolidated is configured as a layer of material, a sheet of material, or a pre-consolidated structure.

8. 10. The system of claim 1, wherein the non-rigid compactable material comprises a thermoplastic material, a thermoset material, a silicone, a polyamide, a urethane, a rubber, a woven glass sheet, a glass, a carbon fiber material, and combinations thereof.

9. The system of claim 1 , wherein the non-rigid consolidated material is configured as a layer of material or a sheet of material.

10. The system of claim 1 , wherein the non-rigid compactable material has a hardness of 40-100 Shore A.

11. 1. A system for consolidating material, comprising: (a) at least one ultrasonic transducer configured to provide ultrasonic energy to a sonotrode, the at least one ultrasonic transducer mounted within an articulating housing configured to provide a compressive force to the sonotrode and a varying contact angle with respect to a placement of a material to be consolidated, the sonotrode configured to direct ultrasonic energy to the material to be consolidated, the material to be consolidated having both a glass transition temperature and a melting temperature; (b) a non-rigid consolidated material proximate to the sonotrode, the non-rigid consolidated material and the sonotrode defining an area therebetween for receiving the material to be consolidated, the non-rigid consolidated material having a glass transition temperature higher than the glass transition temperature of the material to be consolidated and a melting temperature higher than the melting temperature of the material to be consolidated; (c) an input material anvil disposed on one side of the sonotrode and an output material anvil disposed on the other side of the sonotrode, the input material anvil and the output material anvil configured to apply additional compressive force to the material to be consolidated, and the input material anvil and the output material anvil configured to cool or heat the material to be consolidated; A system having:

12. 12. The system of claim 11, further comprising a rigid anvil for supporting the non-rigid consolidated material.

13. 12. The system of claim 11, further comprising at least one force sensor and at least one thermal sensor.

14. 12. The system of claim 11, wherein the sonotrode includes a rounded or tapered surface profile, the sonotrode is configured to compact a narrow component having a predetermined width or a wide component having a predetermined width, and the sonotrode includes an integral hold-down structure configured to contact the material being compacted.

15. 12. The system of claim 11, wherein the material to be consolidated is a thermoplastic material, a thermoset material, or a carbon fiber reinforced polymer, and the material to be consolidated is configured as a layer of material, a sheet of material, or a pre-consolidated structure.

16. 12. The system of claim 11, wherein the non-rigid consolidated material comprises a thermoplastic material, a thermoset material, a silicone, a polyamide, a urethane, a rubber, a woven glass sheet, a glass, a carbon fiber material, and combinations thereof, and wherein the non-rigid consolidated material is configured as a layer of material or a sheet of material.

17. 12. The system of claim 11, wherein the non-rigid compactable material has a hardness of 40-100 Shore A.

18. 1. A method for consolidating a material, comprising: (a) configuring a sonotrode to direct ultrasonic energy at a material to be consolidated to impart a compressive force to the material to be consolidated, the material to be consolidated having both a glass transition temperature and a melting temperature; (b) placing an input material anvil on one side of the sonotrode and an output material anvil on the other side of the sonotrode, the input material anvil and the output material anvil being configured to apply a compressive force to the material to be consolidated, and the input material anvil and the output material anvil being configured to cool or heat the material to be consolidated; (c) placing a non-rigid consolidated material adjacent to the sonotrode, the non-rigid consolidated material and the sonotrode defining an area therebetween for receiving a material to be consolidated, the non-rigid consolidated material having a glass transition temperature higher than the glass transition temperature of the material to be consolidated and a melting temperature higher than the melting temperature of the material to be consolidated; (d) activating the sonotrode so that it moves across the material under compressive force and at a predetermined angle, thereby combining the material to be consolidated; A method comprising:

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