Magnetically actuated exciter device with impact hammer function.
The magnetically actuated exciter device with a non-contact magnetic suspension and additive manufacturing addresses the limitations of conventional impact hammers and shakers by enabling precise and scalable excitation modes and complex geometries for high-precision frequency response measurements.
Patent Information
- Application Number
- JP2024544365
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-01-25
- Filing Date
- 2023-01-20
- Publication Date
- 2025-12-25
- Estimated Expiration
- 2043-01-20
AI Technical Summary
Conventional impact hammers and integrated shaker devices struggle to provide sufficient energy for high-precision frequency response measurements, and their force direction is difficult to control, while integrated shaker devices are limited in frequency range and conventional machining methods fail to produce complex geometries and are costly.
A magnetically actuated exciter device with a non-contact magnetic axial suspension and additive manufacturing, enabling precise excitation modes, scalable forces, and complex geometries, using a permanent ring magnet and electromagnet to induce vibration and impact forces.
The exciter device provides high-precision measurements across a wide frequency range with controlled force direction, eliminating uncertainties and reducing manufacturing costs through additive manufacturing.
Smart Images

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Abstract
Description
[Technical Field]
[0001] Background technology The present invention relates generally to electromagnetic devices, and more particularly to a structure for manufacturing a magnetically actuated shaker device. Summary of the Invention [Means for solving the problem]
[0002] In one embodiment, the present invention provides an exciter device including a piston, a permanent ring magnet, a movable housing, an impact hammer, and an electromagnet. A first end of the piston is connectable to a device under test, and a second end of the piston is aligned with the position of the impact hammer. The permanent ring magnet is fixedly connected to the piston, and the electromagnet is connected to the movable housing such that a magnetic field generated by the electromagnet impinges on the permanent ring magnet and causes movement of the movable housing relative to the piston. The exciter device applies a vibration force to the device under test when the electromagnet applies an alternating magnetic field to the permanent magnet, causing linear reciprocating motion of the movable housing relative to the piston. The exciter device applies an impact force to the device under test when the electromagnet applies a magnetic field to the permanent magnet, causing linear motion of the movable housing sufficient to bring the impact hammer into contact with the second end of the piston.
[0003] In some implementations, the present invention provides a force-responsive testing system including an exciter device and an electronic controller. The electronic controller is communicatively coupled to the exciter device and configured to generate control signals for causing the exciter device to selectively apply vibration and impact forces. In some implementations, the electronic controller is configured to generate the control signals by generating currents that are applied to coils of electromagnets.
[0004] In another embodiment, the present invention provides a method for applying a force to a device under test by operating an exciter apparatus to apply a vibrational force to the device under test and operating the exciter apparatus to apply an impact force to the device under test. The vibrational force is applied by sending, by an electronic controller, a first electrical signal input to the exciter apparatus that causes an electromagnet to generate an alternating magnetic field applied to a permanent ring magnet that causes linear reciprocating motion of the moveable housing relative to the piston. The impact force is applied by sending a second electrical signal input to the exciter apparatus that causes an electromagnet to generate a magnetic field applied to the permanent ring magnet that causes linear motion of the moveable housing sufficient to drive an impact hammer tip of the moveable housing into contact with the second end of the piston.
[0005] In some embodiments, the present invention provides a method for applying an impact force to a device under test by sending an electrical signal input to an electromagnet of an exciter device, causing the electromagnet to generate a magnetic field applied to a permanent ring magnet that causes linear movement of the movable housing sufficient to drive a first component coupled to the piston into a second component coupled to the housing. In some embodiments, the first component is the second end of the piston, and the second component is an impact hammer tip attached to the movable housing aligned with the second end of the piston. In other implementations, the first component may include an impact hammer tip coupled to the second end of the piston, and the second component may be a surface of a support plate of the movable housing. In other implementations, the first component may be a permanent ring magnet coupled to the piston, and the second component may be another component of the movable housing, and when a magnetic field is applied to the electromagnet, the impact force is generated by the magnet of the piston colliding with the other component of the movable housing.
[0006] Other aspects of the invention will become apparent by consideration of the detailed description and accompanying drawings. [Brief explanation of the drawings]
[0007] [Figure 1A] 1 is a cross-sectional view of a movable housing of an exciter device (e.g., a mobile exciter device). [Figure 1B] FIG. 1B is a perspective view of the exciter device of FIG. 1A. [Figure 2A] 1B is a cross-sectional view of the exciter device of FIG. 1A with a selectively attachable impact hammer attachment component. [Figure 2B] FIG. 2B is a perspective view of the exciter device of FIG. 2A. [Figure 3] FIG. 3 is a block diagram for a control system for the exciter device of FIGS. 1A-2B. [Figure 4] 1C is a graph of the control signals applied by the control system of FIG. 3 to the exciter device of FIGS. 1A and 1B to apply a vibration force to the structure / device under test. [Figure 5] 4 is a graph of the control signals applied by the control system of FIG. 3 to the exciter device of FIGS. 2A and 2B to apply an impact force to a structure / device under test. [Figure 6] 1A-2B is a flowchart of a method for controllably applying forces to a structure / device under test using the exciter apparatus of FIGS. 1A-2B. [Figure 7] FIG. 2C is a cross-sectional view of the magnetic axial and radial suspension system of the exciter device of FIGS. 1A-2B. [Figure 8A] FIG. 2 is a perspective view of the cylindrical body of the exciter device. [Figure 8B] FIG. 2 is a perspective view of a bobbin of the exciter device. [Figure 8C] 8B positioned within the cylindrical body of FIG. 8A during assembly. FIG. [Figure 8D] FIG. 10 is a perspective view of a mode indicator of the exciter device. [Figure 8E] FIG. 2 is a perspective view of a table assembly of the exciter apparatus. [Figure 8F] FIG. 1 is a perspective view of a lower support plate assembly of the exciter apparatus. [Figure 8G]FIG. 12 is a perspective view of the radial guide bushing (i.e., neoprene O-ring) of the exciter device. [Figure 8H] FIG. 10 is a perspective view of the housing of the impact hammer attachment component of the exciter device. [Figure 8I] FIG. 10 is a perspective view of the hammer tip and set screw of the impact hammer attachment component of the exciter device. [Figure 8J] 8B is a perspective view of a key-lock tool for selectively coupling and decoupling the upper support plate, the lower support plate, and / or the impact hammer accessory components to the cylindrical body of FIG. 8A. FIG. [Figure 9] 1B is a flowchart of a method for fabricating the exciter device of FIG. 1A using 3D printing. [Figure 10] 1B is a flowchart of an alternative method for assembling the exciter device of FIG. 1A by 3D printing components directly onto other components. DETAILED DESCRIPTION OF THE INVENTION
[0008] Before describing any embodiments of the invention in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or carried out in various ways.
[0009] Modal testing is a process for measuring structural frequency response functions (FRFs). The user is responsible for selecting the correct sensors, channel coupling, frequency range, etc. to accurately obtain the system frequency response function. Various embodiments of the present invention recognize that an impact hammer, a single shaker, or multiple shakers can be used to excite a device under test (DUT) or structure under test (SUT). However, conventional impact hammers often cannot impart enough energy to obtain an appropriate response signal in the frequency range of interest, and the direction of the applied force is difficult to control. Furthermore, integrated shaker devices are limited in the range of frequencies they can provide to the DUT.
[0010] Embodiments of the present invention provide an exciter device that includes an impact hammer and a non-contact magnetic axial suspension, providing multiple excitation modes for high-precision measurements, precise exciter positioning, and orientation, eliminating uncertainties due to equipment swapping. As described in further detail below, in some implementations, the magnetic axial suspension is implemented with a zero-clearance, low-friction radial suspension. Furthermore, the exciter device provides in-line excitation for impact and / or continuous excitation (e.g., vibration) at points with limited access over a wide frequency range (e.g., 10-10,000 Hz), for example, by selectively switching between these two excitation modes and reassembling frequency response function (FRF) measurements to account for the quality achieved in different frequency ranges.
[0011] Various embodiments of the present disclosure recognize that challenges exist in limiting component movement when using a magnetic-based system to induce vibration. Some mechanisms for limiting component movement of an exciter device (e.g., a vibration exciter or "shaker device") during vibration may include, for example, springs, cushions, or brackets that physically prevent the component from moving beyond a certain displacement. However, embodiments of the present disclosure provide a device that utilizes a first permanent ring magnet fixed to a non-magnetic table and positioned as the primary driving and inducing component of the exciter device, and at least one instance of a second permanent ring magnet positioned to generate a repulsive force with the first permanent ring magnet to provide magnetic axial suspension for the exciter device. The second permanent ring magnet of the magnetic axial suspension eliminates the need for various mechanisms for limiting component movement, allowing the exciter device to be easily miniaturized and reducing manufacturing costs. In some implementations, the non-contact magnetic axial suspension involves a zero-clearance (e.g., "self-aligning"), low-friction radial suspension that provides a ring-shaped contact interface between the table / piston fixed to the device under test and the moving body.
[0012] Embodiments of the present invention recognize that various challenges exist in the manufacture and assembly of structural devices using conventional machining methods. For example, the various material properties of solid structures cannot be achieved using conventional machining methods. Furthermore, conventional machining methods are limited to certain shapes / geometries, such as angled channels (e.g., angled through-holes for wire routing, notches, etc.), because the shapes / geometries cannot be achieved using conventional machining methods or are so difficult and / or expensive to manufacture that they are impractical. Embodiments of the present invention also recognize that conventional manufacturing methods involve tolerance and additional assembly issues.
[0013] Embodiments of the present invention enable the additive manufacturing of fully functional shaker devices, including shapes and geometries that are difficult or impossible to machine using conventional methods. Furthermore, the shaker device and corresponding forces are scalable because components of the shaker device can be additively manufactured, with the exception of the coil, permanent magnet, and radial guide bushing, resulting in a reduced overall weight of the device. It also provides customized components (e.g., pistons, bases, etc.) that can be designed to fit a variety of complex surfaces, threaded inserts, and / or areas of limited space. Furthermore, additive manufacturing of a shaker device allows multiple components of the device to be formed as a single complex part, thereby avoiding assembly and tolerance issues and reducing costs associated with waste materials over traditional subtractive manufacturing methods. In some implementations, the use of additive manufacturing enables alternative distribution modes. For example, in some implementations, rather than a manufacturer producing a physical device, a design file can instead be tailored to a specific customer (e.g., rescaling components for a specific application) and digitally transferred to the customer, who then manufactures the vibration exciter device using a 3D printer, thereby avoiding the wait times associated with traditional manufacturing and delivery.
[0014] Additive manufacturing techniques can also be used to realize "differently tuned" vibration exciters using the same internal components (e.g., coils, magnets, O-rings, etc., as described in detail below). Slight scaling adjustments to the vibration exciter's axial dimensions before printing can be used to adjust the spacing of the same suspension magnets and table magnets; thus, decreasing the axial dimensions increases the axial repulsion, increases the vibration exciter's stiffness, shifts the natural resonance to higher frequencies, and makes the vibration exciter less susceptible to damage at low frequency operation. Conversely, increasing the scaling of the vibration exciter's axial dimensions decreases the axial repulsion and therefore the axial stiffness, resulting in more force output in the low frequency range.
[0015] 1A and 1B illustrate an example of an exciter apparatus 100 for controllably applying a vibration force to a device / structure under test. As shown in FIG. 1B, the exciter apparatus 100 (e.g., a shaker apparatus) includes a movable housing 110 having a lower support plate 112, an upper support plate 114, a cylindrical body 116, and a mode indicator 118. As shown in FIG. 1A, the upper support plate 114 and the cylindrical body 116 are formed with counter-engaging helical structures such that the upper support plate 114 is selectively coupleable to the cylindrical body 116 by a threaded action at a first end of the cylindrical body 116. Similarly, the lower support plate 112 and the cylindrical body 116 are also formed with counter-engaging helical structures such that the lower support plate 112 is selectively coupleable to the cylindrical body 116 by a threaded action at a second end of the cylindrical body 116.
[0016] The movable housing 110 is positioned to partially surround a non-magnetic table 120 (e.g., a piston). The lower support plate 112 and the upper support plate 114 each include an opening positioned to allow a respective end of the non-magnetic table 120 to extend from the movable housing 110. Additionally, a mode indicator 118 is coupled to the cylindrical body 116. Additionally, a first end of each end of the non-magnetic table 120 is coupled to a base 170 that is coupleable to a device / structure under test. The base 170 holds the non-magnetic table stationary relative to the device / structure under test, and movement of the movable housing 110 relative to the non-magnetic table 120 imparts a force to the device / structure under test, as described in further detail below.
[0017] Radial guide bushings 140 are disposed in both openings of the movable housing 110. The radial guide bushings 140 are coupled to the movable housing 110. For example, a first radial guide bushing 140 is coupled to the lower support plate 112 of the movable housing 110, adjacent to a first end of the non-magnetic table 120. Similarly, a second radial guide bushing is coupled to the upper support plate 114, adjacent to a second end of the non-magnetic table 120. The radial guide bushings 140 each include a circular opening that surrounds the non-magnetic table 120 and guides movement of the movable housing 110 relative to the non-magnetic table 120. For example, the radial guide bushings 140 align movement of the movable housing 110 relative to the non-magnetic table 120. In some implementations, the radial guide bushing 140 is formed of a neoprene material (e.g., a neoprene O-ring) and remains in contact with the non-magnetic table 120 during operation of the exciter apparatus 100 as the movable housing 110 moves relative to the non-magnetic table 120.
[0018] The radial guide bushing 140 acts as a radial suspension for the exciter apparatus 100 and is constructed of a flexible material with a low coefficient of friction between the table / piston 120 and the radial guide bushing 140. In some implementations, the compressible material of the radial guide bushing 140 causes the exciter apparatus 100 to eliminate clearance between the radial guide bushing 140 and the table / piston 120 when the exciter apparatus 100 is assembled. For example, in some implementations, final assembly of the exciter apparatus 100 causes the radial guide bushing 140 to compress axially between the axial suspension ring magnet 150 and the support plate 112 / 114. This axial compression causes expansion of the radial guide bushing 140 in the radial direction, closing any clearance that may exist between the radial guide bushing 140 and the table / piston 120.
[0019] Additionally, the axial magnetic force applied to the axial suspension ring magnet 150 further contributes to an axial compressive force applied to the radial guide bushings 140 at both the top and bottom of the exciter apparatus 100. This provides a radial suspension that is "self-adjusting" in that as the permanent ring magnet 130 of the table / piston 120 approaches the axial suspension ring magnet 150 at either end of the exciter apparatus 100, the axial suspension ring magnet 150 provides an opposing magnetic force that further compresses the radial guide bushings 140. Thus, as the moveable housing 110 approaches either end of the table / piston 120, the corresponding radial guide bushing 140 expands further radially, increasing the degree of radial stiffness between the moveable housing 110 and the table / piston 120. This increased stiffness of the radial suspension further limits rocking of the table / piston 120 and, in some implementations, may provide a "zero play" radial condition even under higher load operation and / or compensate for wear at the contact interface between the radial guide bushing 140 and the table / piston 120.
[0020] In some implementations, the radial guide bushing 140 is further configured to provide limited surface area contact (e.g., an idealized "line contact") between the radial guide bushing 140 and the table / piston 120. The reduced contact area also reduces axial friction. In some implementations, the radial guide bushing 140 is fabricated from a neoprene material to provide a balance between radial flexibility and an axial coefficient of friction. In some implementations, silicone lubrication may be added between the table / piston 120 and the radial guide bushing 140 to further reduce friction between the parts.
[0021] An axial suspension ring magnet 150 is also disposed in an opening in the lower support plate 112, and a second axial suspension ring magnet is similarly disposed in an opening in the upper support plate 114. In some implementations, the axial suspension ring magnet 150 is coupled to the lower support plate 112 of the movable housing 110 and surrounds the non-magnetic table 120. As described in further detail below, the permanent ring magnet 130 is coupled to the non-magnetic table 120 to drive the movement of the movable housing 110, and the axial suspension ring magnet 150 damps the movement of the movable housing 110 relative to the non-magnetic table 120 by providing an opposing magnetic force when the permanent ring magnet 130 approaches the axial suspension ring magnet 150. The axial suspension ring magnet 150 also limits the distance the non-magnetic table 120 extends from the movable housing 110, preventing the portion of the non-magnetic table 120 to which the permanent ring magnet 130 is attached from extending outside the movable housing 110. For example, the poles of the axial suspension ring magnet 150 are oriented to face the same poles of the permanent ring magnet 130 fixed to the non-magnetic table 120, creating a repulsive force that suspends the non-magnetic table 120 and prevents the non-magnetic table 120 from being ejected from the movable housing 110. In some implementations, the axial suspension ring magnet 150 and the permanent ring magnet 130 are both permanent ring magnets constructed of neodymium material.
[0022] A non-magnetic bobbin 160 is disposed within the movable housing 110 and at least partially surrounds the non-magnetic table 120 and the permanent ring magnet 130 attached thereto. The non-magnetic bobbin 160 is coupled to the cylindrical body 116 of the movable housing 110. A coil 165 is formed around the non-magnetic bobbin 160. In the example of FIG. 1A , the coil 165 includes at least two opposing windings. The type and shape of the windings of the coil 165 are configured to produce comparable parameters (e.g., inductance, Q factor, insulation strength, and desired magnetic field strength) for the opposing windings. The coil 165 is formed from a conductive material (e.g., copper wire), and when a current is controllably applied to the coil 165 (as described in more detail below), the coil 165 operates as an electromagnet that provides a controllable magnetic field. A controllable magnetic field is applied to the permanent ring magnet 130 to selectively induce movement of the movable housing 110 relative to the permanent ring magnet 130 (and the non-magnetic table 120 to which the permanent ring magnet 130 is coupled) by controllably applying a magnetic field that attracts or repels the permanent ring magnet 130. Thus, the movable housing 110 is controllably moved up and down relative to the non-magnetic table 120 by controlling the current applied to the coil 165.
[0023] 1A , the mode indicator 118 is disposed between the cylindrical body 116 and the upper support plate 114. In some implementations, the mode indicator 118 is a plastic ring body having one or more light-emitting diodes disposed therein to controllably illuminate the mode indicator 118. In some implementations, the mode indicator 118 is coupled to the cylindrical body 116 of the movable housing 110. In other implementations, the mode indicator 118 is coupled to the upper support plate 114 of the movable housing 110. In still other implementations, the mode indicator 118 is a separate component that is held in place between the upper support plate 114 and the cylindrical body 116 of the movable housing 110 when the upper support plate 114 is selectively coupled to the cylindrical body 116 by a threaded action.
[0024] In the example of FIG. 1A, mode indicator 118 indicates the operating mode of the exciter device. Mode indicator 118 may include one or more light-emitting diodes (LEDs), which may change color to indicate the operating mode. Additionally, mode indicator 118 may continuously illuminate or flash (e.g., power off and on) while the exciter device is operating. In the example of FIG. 1A, mode indicator 118 may be controlled based on an electrical signal input (e.g., a control signal from a controller, a current in coil 165, etc.) received by the exciter device.
[0025] As described in further detail below, the lower support plate 112, the upper support plate 114, the cylindrical body 116, and / or the mode indicator 118 of the moveable housing 110 may be manufactured by additive manufacturing (e.g., three-dimensional (3D) printing). For example, the lower support plate 112 and the upper support plate 114 may be constructed of composite carbon fiber polylactic acid (PLA), the cylindrical body 116 may be constructed of composite iron PLA, and the mode indicator 118 may be constructed of PLA.
[0026] In some implementations, the non-magnetic table 120 may be constructed of stainless steel. In some implementations, the non-magnetic table 120 and / or the base 170 may be manufactured by additive manufacturing (e.g., 3D printing). In this example, the non-magnetic table 120 and the base 170 may be constructed of composite carbon fiber polylactic acid (PLA). Furthermore, the base 170 may take on various shapes suitable for applying the force of the exciter device to the device / structure under test (e.g., a wedge for an inclined surface and / or a rounded adapter for a curved surface). In some implementations, the non-magnetic table 120 may include one or more notches configured to receive a C-shaped washer clip as a mechanism for securing the permanent ring magnet 130 to the non-magnetic table 120.
[0027] 2A and 2B illustrate an example of an exciter apparatus 100 including an impact hammer attachment component 200 configured to controllably apply an impact force to a device / structure under test in addition to (or instead of) a vibration force. As described above, the upper support plate 114 of the movable housing 110 in the example of FIG. 1A is selectively coupleable to the cylindrical body 116 of the movable housing 110. Thus, in some implementations, the upper support plate 114 can be removed from the cylindrical body 116 and replaced with the impact hammer attachment component 200. As shown in FIG. 2A , in this example, the impact hammer attachment component 200 includes a helical structure similar to the helical structure of the upper support plate 114 and is therefore selectively engageable with the cylindrical body 116 via a threaded action. As shown in FIG. 2A , the impact hammer attachment component 200 includes a housing 202, a set screw 210, and a hammer tip 212 coupled to the set screw 210. 2A , a set screw 210 is disposed in the opening of the housing 202 and coupled to the housing 202 of the impact hammer attachment component 200. The set screw 210 is positioned so as to align with the non-magnetic table 120. The set screw 210 includes a hammer tip 212. The hammer tip 212 is secured to the end of the set screw 210 and is positioned so as to contact the second end (e.g., the top end) of the non-magnetic table 120 when the first end of the non-magnetic table 120 is coupled to the base 170 as described above. For example, instead of providing a vibration force by applying an alternating current to the coil 165, the movable housing 110 is configured to provide an impact force to the device / structure under test that moves the movable housing 110 upward and away from the surface of the device / structure under test by applying a first control signal / current to the coil while the impact hammer attachment component 200 is coupled to the movable housing 110. Following this, an opposite current is applied to the coil 165 to move the movable housing 110 more quickly in the opposite / downward direction relative to the surface of the device / structure under test.The rapid downward movement causes the hammer tip 212 to contact the edge of the non-magnetic table 120, thereby applying an impact force through the non-magnetic table 120 to the device / structure under test.
[0028] The example in FIG. 2A is just one example of an implementation configured to apply an impact force. Other configurations for generating an impact force between the non-magnetic table 120 and either the movable housing 110 or the impact hammer attachment component 200 are possible. For example, in some implementations, the hammer tip 210 may be attached to the distal end of the non-magnetic table 120 and configured to impact a surface of the impact hammer attachment component 200 and / or other upper support plate. In other implementations, a structure / component of the non-magnetic table 120 may be configured to impact a structure / component of the movable housing. For example, the device may be configured such that the permanent ring magnet 130 is aligned along a vertical axis with a surface, protrusion, or upper plate of the movable housing 110 and the impact force is generated by applying a magnetic force that causes the surface of the permanent ring magnet 130 to impact an opposing surface / structure of the movable housing 110.
[0029] Furthermore, in some implementations, the device is configured so that elastic deformation of the impact hammer tip 212 does not corrupt exciter measurements when used for frequency response function (FRF) testing. In some implementations, a load cell is mounted between the bottom end of the non-magnetic table 120 and the base 170 (i.e., downstream from the impact tip). Thus, the load cell can accurately measure the force applied to the structure / device under test and adjust the applied magnetic force to the target force. In this way, measurement uncertainties due to elastic deformation of the hammer tip 212 are reduced or avoided altogether.
[0030] 2A , the radial guide bushing 140 is disposed in an opening of the housing 202 of the impact hammer accessory component 200. The radial guide bushing 140 is coupled to the housing 202 of the impact hammer accessory component 200. The radial guide bushing 140 surrounds the non-magnetic table 120 and guides the movement of the movable housing 110 and the housing 202 relative to the non-magnetic table 120. Furthermore, the axial suspension ring magnet 150 is disposed in an opening of the housing 202 of the impact hammer accessory component 200. The axial suspension ring magnet 150 is coupled to the housing 202 of the impact hammer accessory component 200.
[0031] The set screw 210 is formed as a cylindrical body having a helical structure on its outer surface, and the housing 202 includes an opening having an oppositely formed helical structure for receiving and engaging the set screw 210 by a threading action. In this manner, the set screw 210 can be selectively coupled and decoupled from the housing 202. In some implementations, this selective coupling allows the set screw 210 and hammer tip 212 to be removed and replaced if the hammer tip 212 is damaged. Alternatively, in some implementations, multiple set screws 210 may each be provided with a different type of hammer tip 212 (a material of different hardness), thereby making the hammer tip 212 selectively interchangeable and providing a hammer tip 212 suitable for a particular testing protocol.
[0032] In some implementations (e.g., as described in more detail below), the impact hammer attachment component 200 can be manufactured by additive manufacturing (e.g., 3D printing). In some such implementations, the impact hammer attachment component 200 can be constructed of composite carbon fiber PLA. Similarly, in some implementations, the locking screw 210 can be manufactured by additive manufacturing (e.g., 3D printing) and can be constructed of composite carbon fiber PLA. Additionally, the hammer tip 212 can be manufactured and constructed of a material that takes into account the material's ability to resist permanent indentation (i.e., the material's hardness). In some implementations, the hammer tip 212 can be manufactured by additive manufacturing and can be constructed of PLA, composite iron PLA, and / or composite carbon fiber PLA. In other implementations, the hammer tip 212 can be constructed of stainless steel.
[0033] 3 shows the control system for the exciter apparatus 100. The exciter apparatus 100 is operated by a controller 301 to apply forces to the device / structure under test, allowing the exciter apparatus 100 to provide various types and scalable forces based on input signals. Furthermore, it provides consistent, repeatable, and coherent measurements without experimental uncertainties due to alternating apparatus.
[0034] 3, controller 301 includes an electronic processor 303 and non-transitory computer-readable memory 305. Memory 305 stores data and instructions that, when executed by electronic processor 303, provide various functions of controller 301, including, for example, some or all of the functions described herein. Controller 301 is communicatively coupled to exciter device 100.
[0035] In addition to storing computer-executable instructions, in some implementations, the memory 305 is also configured to store additional information regarding the exciter apparatus 100, the upper support plate 114, and / or the impact hammer attachment components 200 of the exciter apparatus 100. For example, the memory 305 may be configured to store component information (e.g., location, LED functions, etc.) and performance information (e.g., operating frequency, component constraints, goals / limits, etc.). The configuration shown in FIG. 3 illustrates only one example of the components and connections of the exciter apparatus 100. However, these components and connections may be configured in other manners and may include other components in place of or in addition to the components illustrated in the example of FIG. 3.
[0036] In some implementations, the controller 301 is communicatively coupled to the coil 165 of the exciter apparatus 100 and is configured to provide control signals for operating the exciter apparatus 100. For example, in some implementations, the controller 301 may be configured to send control signals to the coil 165 in the form of a current that causes the coil 165 to generate a corresponding magnetic field that interacts with the magnetic field of the permanent ring magnet 130 of the exciter apparatus 100, which generates movement within the moveable housing 110 of the exciter apparatus 100 relative to the non-magnetic table 120. In this example, the controller 301 is configured to modify (e.g., alter the frequency, modify the amplitude, etc.) the control signals sent to the coil 165 to generate a force to be imparted to a device / structure under test coupled to the exciter apparatus 100.
[0037] 4 and 5 show example control signals that may be applied by the controller 301 to the coil 165 to cause the exciter apparatus 100 to generate a vibration force and an impact force, respectively. As described above, the exciter apparatus 100 is configured to induce a vibration force in the device / structure under test by generating a reciprocating motion of the movable housing 110 relative to the non-magnetic table 120. In some implementations, this is achieved by the controller 301 applying an AC current to the coil 165, for example, as shown in FIG. 4 . The frequency of the induced vibration can be adjusted and regulated by adjusting the frequency of the AC current applied to the coil 165. Also, as described above, in some implementations, the coil 165 includes two coils configured oppositely. Thus, applying the same AC control signal to the coil 165 causes movement in a first direction by generating a magnetic field in the first coil that attracts the permanent magnet 130 coupled to the non-magnetic table, while generating a magnetic field in the second coil that repels the permanent magnet 130.
[0038] To induce an impact force on the device / structure under test, the applied magnetic field must be configured to raise the movable housing 110 relative to the surface of the device / structure under test and then lower the movable housing 110 toward the surface of the device / structure under test at a relatively high speed. This may be achieved by applying a control signal to the coil 165 as shown in FIG. 5 . A magnetic field induced by a slowly rising current causes the movable housing 110 to move upward, while a magnetic field induced by a relatively high negative slope portion of the control signal causes movement in the opposite direction at a relatively high speed. This relatively high speed downward movement of the movable housing 110 causes the hammer tip 212 to impact the top edge of the non-magnetic table 120, imparting an impact force to the device / structure under test via the non-magnetic table 120. In some implementations, the exciter apparatus 100 may be configured to apply only impact forces when equipped with the impact hammer attachment component 200 and only vibration forces when equipped with the upper support plate 114. In other implementations, the exciter device 100 may be configured to selectively apply both impact and vibration forces when equipped with the impact hammer attachment component 200 .
[0039] 6 shows an example of a method performed by the controller 301 to operate the exciter apparatus 100. In some implementations, the controller 301 determines whether the exciter apparatus includes an accessory component (step 402). In the example of FIG. 6, the controller 301 determines whether the exciter apparatus 100 includes an impact hammer accessory component 200. For example, the electronic processor 303 receives an input from a user interface of the controller 301 indicating whether the exciter apparatus 100 includes the impact hammer accessory component 200 or the upper support plate 114. In other implementations, the exciter apparatus 100 is configured with circuitry that automatically determines whether the impact hammer accessory component 200, the upper support plate 114, or other accessories are coupled to the movable housing 110.
[0040] If the controller 301 determines that the exciter apparatus 100 does not include the impact hammer attachment component 200 (step 402, “No” branch), the controller 301 generates a control signal (e.g., the control signal of FIG. 4 ) for the exciter apparatus 100 to apply a vibration force to the device / structure under test. However, if the controller 301 determines that the exciter apparatus 100 includes the impact hammer attachment component 200 (step 402, “Yes” branch), the controller 301 generates a control signal (e.g., the control signal of FIG. 5 ) for the exciter apparatus 100 to apply an impact force to the device / structure under test. As described above, in some implementations, the exciter apparatus 100 may be configured to selectively provide an impact force and a vibration force when equipped with the impact hammer attachment component 200. Thus, in some implementations, the controller 301 is configured to transmit a control signal for either an impact force or a vibration force based on a user selection or according to a predetermined test protocol in response to determining that the impact hammer attachment component 200 is coupled to the movable housing 110.
[0041] The controller 301 generates a control signal for applying an applicable force to the device / structure under test (step 404) and sends the control signal to the exciter apparatus 100. In some implementations, the controller 301 may be configured to apply the control signal to the exciter apparatus 100 as a current signal applied to the coil 165 to controllably adjust the magnetic field applied by the coil 165. In some implementations, the controller 301 utilizes the electronic processor 303 and instructions / settings stored in the memory 305 to generate the control signal for the exciter apparatus 100. For example, the controller 301 generates an electrical signal having amplitude, frequency, and waveform characteristics. In some implementations, the controller 301 is configured to adjust the signal characteristics according to a test protocol defined by a user. In some implementations, the controller 301 may include one or more signal generators, such as, for example, a function generator, an arbitrary waveform generator, a frequency generator, etc.
[0042] The control signal generated by the controller 301 is then transmitted to the exciter device 100 (step 406). In some implementations, as described above, the control signal is transmitted to the exciter device 100 as an electric current applied to the coil 165 of the non-magnetic bobbin 160 of the exciter device 100. The electric signal passes through opposing windings of the coil 165 of the non-magnetic bobbin 160, generating a magnetic field corresponding to the electric signal. The coil 165 and the non-magnetic bobbin 160 are electromagnets (e.g., solenoids), which generate an induced magnetic field centered at the center of the non-magnetic bobbin 160 and / or coil 165 corresponding to the electric signal (e.g., electric current) passing through the wire of the coil 165. Furthermore, the controller 301 may modify the characteristics of the electric signal to affect the induced magnetic field.
[0043] 6 , the base 170 and non-magnetic table 120 of the exciter apparatus 100 impart the force of the moveable housing 110 and / or impact hammer attachment component 200 to the device / structure under test. For example, the non-magnetic table 120 of the exciter apparatus 100 directs the movement of the moveable housing 110 to the base 170, which is coupled to the device / structure under test. The movement of the moveable housing 110 corresponds to the interaction of the induced magnetic field of the coil 165 of the non-magnetic bobbin 160 with the magnetic field of the permanent ring magnet 130, generating repulsive and attractive forces that induce continuous vibrations in the non-magnetic table 120. In one scenario, the controller 301 sends a control signal (e.g., current) to the exciter apparatus 100 having a waveform of a set frequency and variable polarity that induces an alternating magnetic field when passing through the coil 165 of the moveable housing 110 that interacts with the permanent ring magnet 130 of the non-magnetic table 120. In this scenario, the induced magnetic field of coil 165 causes movable housing 110 to move linearly (e.g., up and down) relative to the non-magnetic table in response to a control signal. Thus, the linear movement of movable housing 110 of exciter apparatus 100 induces continuous vibrations in the device under test, which is coupled to non-magnetic table 120 via base 170.
[0044] In some implementations, the base 170 and non-magnetic table 120 of the exciter apparatus 100 apply the force of the movable housing 110 and / or the impact hammer attachment component 200 to the device / structure under test. Movement of the movable housing 110 corresponding to the interaction of the induced magnetic field of the coil 165 of the non-magnetic bobbin 160 and the magnetic field of the permanent ring magnet 130 causes the hammer tip 212 of the impact hammer attachment component 200 to contact a second end of the non-magnetic table 120 coupled to the device / structure under test. Thus, a force (e.g., an impact force) corresponding to the contact between the second end of the non-magnetic table 120 and the hammer tip 212 of the impact hammer attachment component 200 is directed toward the device / structure under test. In some implementations, a load cell (force transducer) attached between the first end of the non-magnetic table 120 and the base 170 is used to measure the force directed toward the device / structure under test.
[0045] 4, the above methodologies may be used alone or in combination to utilize the non-magnetic table 120 to apply the forces of the moveable housing 110 of the exciter apparatus 100 and the impact hammer attachment component 200 to the device / structure under test. Various embodiments of the present invention provide a controllable excitation mechanism that provides the functionality of a modal hammer and an integrated shaker within a single exciter apparatus. As a result, the exciter apparatus can eliminate the need for a multi-exciter configuration and provide accurate and repeatable results in impact testing.
[0046] In some implementations, the controller 301 also provides a control input to the mode indicator 118 of the exciter device 100 to indicate the operating mode of the exciter device 100 (step 408). In some implementations, the controller 301 is configured to provide a binary (i.e., on / off) signal to the mode indicator 118 to indicate only whether the exciter device 100 is operating (e.g., turning on an LED light of the mode indicator 118 when (a) a control signal current is applied to the coil 165 and / or (b) the exciter device 100 is communicatively coupled to the controller 301). In other implementations, the controller 301 may be configured to operate the mode indicator 118 to convey other information including, for example, (1) the current operating mode (e.g., vibration or shock), (2) active / inactive status, (3) an error indication, and / or (4) the location / grouping of multiple exciter devices. In some implementations, the controller 301 and the mode indicator 118 are configured to utilize various functions of the LED of the mode indicator 118, such as illumination, illumination intensity, flashing, different colors, etc., to indicate the status of the exciter device 100. For example, the mode indicator 118 may illuminate at a first predetermined intensity and / or a first color when the exciter device is providing an impact force, and illuminate at a second, different predetermined intensity and / or a second color when the exciter device 100 is providing a vibration force.
[0047] Thus, the controller 301 of FIG. 3 is operable to apply control signals (e.g., current) to the coils 165 of the exciter apparatus 100 to generate a magnetic field. This controllable magnetic field interacts with a permanent ring magnet 130 coupled to the non-magnetic table 120 to cause movement of the moveable housing 110 relative to the non-magnetic table 120. In some implementations, axial and radial suspensions are incorporated into the exciter apparatus 100 to damp the linear motion of the moveable housing 110 and / or limit the motion of the moveable housing 110 to a defined range. FIG. 7 illustrates the magnetic axial and radial suspensions of the exciter apparatus 100. The axial and radial suspension components of FIG. 7 are also shown in the examples of FIGS. 1A and 2A above, but are shown in more detail in FIG. 7 for clarity.
[0048] 7, the axial and radial suspension of the exciter device 100 includes a permanent ring magnet 130, a radial guide bushing 140, and an axial suspension ring magnet 150. The permanent ring magnet 130 is fixedly coupled to the non-magnetic table 120. The permanent ring magnet 130 also includes at least one permanent magnet. For example, the permanent ring magnet 130 of the magnetic axial suspension may be an annular ring magnet and may be axially magnetized.
[0049] The magnetic axial suspension of the exciter apparatus 100 includes at least one instance of an axial suspension ring magnet 150. The axial suspension ring magnet 150 is positioned to surround the non-magnetic table 120 (e.g., a piston). The axial and radial suspension of the exciter apparatus 100 also includes at least one instance of a radial guide bushing 140. The radial guide bushing 140 is also positioned to surround the non-magnetic table 120 (e.g., a piston). The radial guide bushing 140 guides the movement of the non-magnetic table 120 (i.e., aligns the movement of the non-magnetic table 120 with the opening in the movable housing 110). As mentioned above, in some implementations, the opening in the radial guide bushing 140 is designed to provide zero clearance between the radial guide bushing 140 and the non-magnetic table 120 (i.e., the radial guide bushing 140 contacts the non-magnetic table 120 around the entire circumference of the non-magnetic table 120). Additionally, in some implementations, the structure of the movable housing 110 provides an axial "preload" compression of the radial guide bushing 140, which causes the radial guide bushing 140 to expand radially.
[0050] In this example, the magnetic axial suspension of the exciter apparatus 100 includes a radial guide bushing 140 and an axial suspension ring magnet 150 located at each end of the movable housing 110. Accordingly, in FIG. 7, the radial guide bushing 140 and the axial suspension ring magnet 150 located at the bottom of the movable housing 110 (i.e., near the opening in the lower support plate 112) are labeled as radial guide bushing 140-1 and axial suspension ring magnet 150-1, respectively. Similarly, the radial guide bushing 140 and the axial suspension ring magnet 150 located at the top of the movable housing 110 (i.e., either near the opening in the upper support plate 114 or near the opening in the housing 202 of the impact hammer accessory component 200) are labeled as radial guide bushing 140-2 and axial suspension ring magnet 150-2, respectively. Each ring magnet 130, 150 includes two magnetic poles. In the example of FIG. 7, the north magnetic pole is designated by the letter A and the south magnetic pole is designated by the letter B. For example, the north pole of permanent ring magnet 130 is labeled 130A in FIG. 7, and the south pole of permanent ring magnet 130 is labeled 130B in FIG.
[0051] 7 is provided by the relative arrangement of the magnetic poles of the lower axial suspension ring magnet 150-1, the upper axial suspension ring magnet 150-2, and the permanent ring magnet 130. In particular, the south magnetic pole 150-1B of the lower axial suspension ring magnet 150-1 is configured to face the south magnetic pole 130B of the permanent ring magnet 130, so that the respective magnetic fields of the permanent ring magnet 130 and the axial suspension ring magnet 150-1 interact to generate a repulsive force. This repulsive force inhibits movement of the movable housing 110 as the lower axial suspension ring magnet 150-1 approaches the permanent ring magnet 130 and also limits the distance that the first end of the non-magnetic table 120 can extend relative to the lower axial suspension ring magnet 150-1. Similarly, the north magnetic pole 150-2A of the axial suspension ring magnet 150-2 is configured to face the north magnetic pole 130A of the permanent ring magnet 130, so that the magnetic fields of the permanent ring magnet 130 and the upper axial suspension ring magnet 150-2 interact to generate a repulsive force. This repulsive force inhibits movement of the movable housing 110 as the upper axial suspension ring magnet 150-2 approaches the permanent ring magnet 130 and also limits the distance that the second end of the non-magnetic table 120 can extend relative to the upper axial suspension ring magnet 150-2. The configuration of the axial suspension ring magnets 150-2, 150-1 provides a stable equilibrium position for the permanent ring magnet 130 at the center of the bobbin.
[0052] Furthermore, in some implementations, the axial and radial suspension systems are configured such that operation of the magnetic axial suspension provides additional axial compression (and, therefore, corresponding radial expansion) of the radial guide bushings 140-1, 140-2. In particular, as the permanent ring magnet 130 approaches the axial suspension ring magnet 150-2, the opposing magnetic forces between the permanent ring magnet 130 and the axial suspension ring magnet 150-2 cause the axial suspension ring magnet 150-2 to apply a greater axial compressive force to the radial guide bushing 140-2, thereby increasing the stiffness of the radial guide bushing 140-2 relative to the non-magnetic table 120. Conversely, as the permanent ring magnet 130 approaches the axial suspension ring magnet 150-1, the opposing magnetic forces between the permanent ring magnet 130 and the axial suspension ring magnet 150-1 cause the axial suspension ring magnet 150-1 to apply a greater axial compressive force to the radial guide bushing 140-1, thereby increasing the stiffness of the radial guide bushing 140-1 relative to the non-magnetic table 120.
[0053] 7 and described above provides several benefits and advantages in some implementations: first, the suspension allows the non-magnetic table 120 to be rotated 360° for threaded coupling with the device under test. Also, after assembly, the movable housing 110 can be freely rotated about the non-magnetic table 120 even while the non-magnetic table 120 is secured to the device under test, allowing, for example, more user flexibility in positioning and routing cables coupled to the exciter apparatus 100.
[0054] 8A-8J illustrate an example of the exciter apparatus 100 of FIGS. 1A-2B. In some implementations, the components of the exciter apparatus 100 (e.g., the shaker apparatus) can be manufactured using additive manufacturing (e.g., three-dimensional (3D) printing). For example, the components of the exciter apparatus 100 are 3D printed using fused deposition modeling with a desktop 3D printer, where the components of the exciter apparatus 100 are created layer by layer by applying a molten filament through a nozzle of the desktop printer to form the components. In this example, the molten filament may be a plastic having various material properties (e.g., iron-filled metal composite polylactic acid (PLA), black carbon fiber composite heat-processable PLA (HTPLA), stainless steel composite metal filament, etc.). In another example, the components of the shaker apparatus are 3D printed using fused deposition modeling with an industrial 3D printer, where the components of the shaker apparatus are created layer by layer by applying a molten filament through a nozzle of the industrial printer to form the components. In this example, the molten filament may be a metal (e.g., stainless steel) instead of a plastic. In other examples, shaker device components are 3D printed using selective laser sintering, also known as SLS printing, in which a laser selectively sinters particles of polymer or metal powder, fusing them together and building the component layer by layer.
[0055] In the example of FIG. 8A, a perspective view of the cylindrical body 116 is shown. The cylindrical body 116 may be fabricated using additive manufacturing. For example, the cylindrical body 116 may be fabricated using a filament with magnetic properties that interacts with the magnetic flux generated by the coil 165 for better performance (i.e., generating movement) of the exciter device 100. In another example, the cylindrical body 116 may be fabricated from metal (e.g., using an industrial printer and metal wire) to increase the weight of the cylindrical body 116. Thus, during operation, higher forces are applied to the device / structure under test as the cylindrical body 116 moves up and down with the increased dynamic mass due to the metal. The cylindrical body 116 may include an application-specific identifier (e.g., embossed text, delicate symbols, etc.) to identify a specific shaker device within a large array of shakers. Incorporating an identifier using traditional methods is difficult to achieve when machining an object using subtractive techniques. 3D printing offers a cost-effective solution.
[0056] In yet another example, the cylindrical body 116 may be fabricated from two or more different materials within a single solid shaker body, using a plastic with ferromagnetic iron particles where special magnetic properties are required, and a carbon fiber-reinforced plastic for increased structural strength not achievable through conventional machining. In one scenario, the central segment of the cylindrical body 116 adjacent to the bobbin 160 and the generated magnetic field may be constructed from a magnetic material, while the remaining segments of the cylindrical body 116 may be constructed from a non-magnetic material or a carbon fiber-reinforced material. Also, conductive filament may be used in fabricating the cylindrical body 116 to enable low-cost wire terminals printed directly onto the non-conductive housing of the shaker device. In yet another example, the cylindrical body 116 may include angled through-holes, notches, or other types of channels in shapes / geometries that are difficult, impossible, and / or economically unfeasible to fabricate using conventional methods.
[0057] The example of FIG. 8B shows a perspective view of a non-magnetic bobbin 160 containing a coil 165. In this example, the bobbin 160 is fabricated by additive manufacturing using a heat-resistant, non-magnetic metal (e.g., brass). The coil 165 is wound onto the bobbin 160 using an automated winding machine. The bobbin 160 may include one or more axial notches around the circumference of the non-magnetic bobbin 160 to improve wire routing. Forming this bobbin 160 with axial notches and winding the coil 165 around the bobbin 160 using conventional milling would involve multiple turning steps plus an additional milling step. However, using 3D printing to fabricate the bobbin 160 reduces manufacturing time, complexity, and cost.
[0058] The bobbin assembly (i.e., the bobbin 160 with the coil 165 wound thereon) is designed and dimensioned to be pressed into the cylindrical body 116, as shown in FIG. 8C . The mode indicator 118 is also designed and dimensioned to nest around a portion of the cylindrical body 116, as shown in FIG. 8C . FIG. 8D shows a perspective view of the mode indicator 118 as a separate component. In this example, the bobbin 160, the cylindrical body 116, and the mode indicator 118 are formed separately as separate components using 3D printing and then assembled as shown in FIG. 8C . However, in some implementations, the cylindrical body 116 is 3D printed directly around the wound bobbin 160 and / or the mode indicator 118 is 3D printed directly onto the cylindrical body 116. 3D printing the components directly onto one another in this manner avoids additional assembly steps and also eliminates tolerance issues (e.g., unwanted gaps / shifts between components due to slight size variations).
[0059] FIG. 8E shows an example of a non-magnetic table 120 coupled with a pair of ring magnets 130. In some implementations, the table 120 is formed (e.g., by machining) from an aluminum material. In other implementations, the table 120 is 3D printed using carbon fiber reinforced plastic. By 3D printing the table 120 using a material that is both stiff / rigid and lightweight, the table 120 can transmit forces to the device / structure under test while also reducing the static mass load on the device / structure under test. Mass loads change the structural dynamic characteristics of the device / structure under test, and therefore, the excess weight of the table 120 will cause measurements taken with the exciter apparatus 100 attached to the device / structure to differ from the actual dynamic characteristics of the device / structure under test.
[0060] As shown in FIG. 8E , multiple ring magnets 130 are arranged in series on the table 120 with opposing poles touching, so that the multiple ring magnets 130 together function as a single, larger magnet. In this example, ferromagnetic disks 124 are arranged on either side of the ring magnets 130 to secure the permanent ring magnets 130 to the table 120 (i.e., prevent the magnets from sliding and rotating) and, in some implementations, act as retaining devices to linearize the magnetic field at the end regions of the permanent ring magnets 130 and coils 165. In some implementations, the linearization of the magnetic field can help linearize the output force when operating the exciter device 100 at large displacements. A clip 122 (e.g., a “c”-shaped washer) engages with a groove on the shaft of the table 120 on the outside of the disk 124. In other implementations, the functionality of the ferromagnetic disks 124 and C-shaped clips shown in the example of FIG. 8E may be realized as a single 3D-printed part.
[0061] FIG. 8F provides a perspective view of a lower support plate 112 according to one implementation. The lower support plate 112 is formed with an integral clip structure 112A formed concentrically with an opening in the lower support plate 112 and sized to receive both the radial guide bushing 140 and the axial suspension ring magnet 150. As shown in the example of FIG. 8F, the radial guide bushing 140 is positioned within the lower support plate 112 around the opening, and the axial suspension ring magnet 150 is positioned above the radial guide bushing 140. The clip structure 112A clips the axial suspension ring magnet 150 into place using pretension to couple the radial guide bushing 140 and the axial suspension ring magnet 150 to the lower support plate 112. Due to the stacked arrangement of the axial suspension ring magnet 150 and the radial guide bushing 140 when coupled to the lower support plate 112, the radial guide bushing 140 is not visible in FIG. 8F. However, the radial guide bushing 140 is shown prior to assembly in FIG. 8G.
[0062] 8F shows the assembly of the lower support plate 112, in some implementations, a similar clip structure 112A is also incorporated into the upper support plate 114 and / or housing 202 of the impact hammer attachment component 200 to engage and retain corresponding radial guide bushings and / or axial suspension ring magnets. The support plates 112, 114 are 3D printed using carbon fiber reinforced plastic to avoid deformation in the areas of the radial guide bushings 140 and axial suspension ring magnets 150 and to increase the stiffness of these high load areas of the shaker apparatus.
[0063] FIG. 8H shows an example of a housing 202 of the impact hammer attachment component 200. The housing 202 may be 3D printed using carbon fiber PLA and / or stainless steel material. In this example, the composition of the housing 202 may be varied based on the target weight of the specification test application (i.e., a heavier housing 202 can provide a greater impact force). FIG. 81 shows an example of a set screw 210 and a hammer tip 212 of the impact hammer attachment component 200. In some implementations, the set screw 210 and the hammer tip 212 are 3D printed using carbon fiber PLA and / or stainless steel material. In various implementations, the set screw 210 and the hammer tip 212 may be formed of the same material or different types of materials. In some implementations, the hammer tip 212 is coupled to the set screw 210 as a separate assembly step, while in other implementations, the hammer tip 212 is 3D printed directly onto the set screw 210. In this example, the set screw 210 is formed with a helical outer surface configured to engage a corresponding helical structure within the top opening of the housing 202 of the impact hammer attachment component 200, thereby allowing the set screw 210 and hammer tip 212 to be selectively coupled to the housing 202. However, in other implementations, the set screw 210 and hammer tip 212 may be integrally formed as part of the housing 202 of the impact hammer attachment component 200.
[0064] 8J shows a perspective view of the key 410. In some implementations, the key 410 is 3D printed using a carbon fiber reinforced plastic material and formed to correspond to the unique shape of the impact hammer attachment component 200, the lower support plate 112, and / or the upper support plate 114. Thus, the key-lock design of the support plates prevents disassembly of the components without specific tools (i.e., only authorized users can modify the shaker device).
[0065] FIG. 9 illustrates an example method for assembling the exciter apparatus 100. First, the cylindrical body 116, bobbin 160, mode indicator 118, upper support plate 114, and lower support plate 112 are formed using 3D printing (described above) (step 901). The bobbin 160 is wound with a coil 165 (step 903), and the wound bobbin is pressed into the cylindrical body 116 (step 905). The mode indicator 118 is then placed in place on the cylindrical body 116 (step 907), as shown in FIG. 8C. The radial guide bushing 140 and axial suspension magnet 150 are coupled to the upper support plate 114 and lower support plate 112 (step 909), as shown in FIG. 8F. Next, the table assembly of FIG. 8E is assembled (step 911) and placed inside the bobbin assembly (step 913). The lower support plate 112 and the upper support plate 114 are then locked into place using the key 410 (step 915).
[0066] In the example of FIG. 9, the various components of exciter device 100 are manufactured separately and then assembled. However, as described above, in some implementations, the various components are formed in place by 3D printing components directly onto one another. FIG. 10 shows another example of a method for assembling exciter device 100 by 3D printing components directly onto one another. First, as shown in FIG. 8B, bobbin 160 is 3D printed (step 1001), and coil 165 is wound onto bobbin 160 (step 1003). Then, cylindrical body 116 is 3D printed directly onto the bobbin assembly (step 1005), and mode indicator 118 is 3D printed directly onto cylindrical body 116 (step 1007). Next, as shown in FIG. 8F, the upper support plate 114 and the lower support plate 112 are formed using 3D printing (step 1009), and the radial guide bushing 140 and the axial suspension magnet 150 are bonded to the upper support plate 114 and the lower support plate 112 (step 1011). Next, the table assembly of FIG. 8E is assembled (step 1013) and placed inside the bobbin assembly (step 1015). The lower support plate 112 and the upper support plate 114 are then secured in place using a key 410 (step 1017).
[0067] In some implementations of the above-described systems and methods, different materials can be combined in a single printed part by switching between different printing materials (e.g., using plastic with ferromagnetic iron particles where special magnetic properties are required and carbon fiber reinforced plastic for increased structural strength). The different materials are combined as a whole through a related printing process. In this way, it is possible to achieve high-strength parts with specific "local" properties. Similar variations in materials within a single "solid" part cannot be achieved with conventional machining techniques. For example, in some implementations, the central portion of the cylindrical body 116 (closest to the magnetic field generated through the bobbin 160 and coil 165) is formed to include a magnetic material, while the rest of the body (and support plate) is formed of a non-magnetic material or a carbon fiber reinforced material. Additionally, conductive filaments can be used to realize low-cost wire terminals printed directly onto the non-conductive housing (e.g., the cylindrical body 116) of the exciter device 100. Similarly, in some implementations, the set screw 210 of the impact hammer attachment component is 3D printed from a hard carbon fiber plastic, and the hammer tip 212 is 3D printed directly onto the set screw 210 using a plastic material with a different elasticity.
[0068] In some implementations, the cylindrical body 116 may be 3D printed to include angled through-holes for wire routing, notches necessary for wire guidance during assembly, or other types of channels, which are difficult (or impossible) to machine with conventional processes and would be prohibitively expensive.
[0069] In various implementations, the size (and therefore output force) of the exciter apparatus 100 is scalable. For example, to print a larger exciter apparatus 100 to provide sufficient excitation for testing on commercial vehicles, trucks, and marine vessels (i.e., application-specific “shakers”), all parts can be printed with a scaling factor of 2x. In some implementations, most of the components of the exciter apparatus 100 (except for the ring magnet, radial guide bushing, and coil) can be 3D printed. Larger shakers with more coil windings, larger (more powerful) magnets, and higher dynamic mass of the cylindrical body 116 can provide higher-force excitation. Similarly, smaller shakers (scaling factor <1) can be 3D printed, for example, for durability testing of electronic components with limited access. Furthermore, 3D-printed parts are customizable. For example, the base 170 can be 3D printed in a form factor designed to connect to curved surfaces and / or other complex geometries.
[0070] Thus, the examples described herein above provide, among other things, an exciter device for inducing vibrational and / or impact forces in a device / structure under test, and a mechanism for manufacturing the exciter device using 3D printing. Additional features and advantages of these systems and methods are set forth in the following claims.
[0071] As used herein, relational terms such as first and second, upper and lower, etc., may be used solely to distinguish one entity or operation from another, without necessarily requiring or implying any actual relationship or order between such entities or operations. The terms "comprises," "comprising," "has," "having," "includes," "including," "contains," "containing," or any other variation thereof, are intended to cover a non-exclusive inclusion, whereby a process, method, article, or apparatus that comprises, has, includes, or contains a list of elements does not include only those elements, but may include other elements not expressly listed or inherent to such process, method, article, or apparatus. An element preceded by "comprises...a," "has...a," "includes...a," or "contains...a" does not, without further constraints, exclude the presence of additional identical elements in the process, method, article, or apparatus that comprises, has, includes, or contains that element. The terms "a" and "an" are defined herein as one or more, unless otherwise specified. The terms "substantially," "essentially," "approximately," "about," or any other version thereof, are defined as approximating what would be understood by one of ordinary skill in the art. The term "coupled," as used herein, is defined as connected, but not necessarily directly, and not necessarily mechanically. A device or structure that is "configured" in a particular way is configured in at least that way, but may also be configured in unrecited ways.
Claims
1. 1. An exciter device comprising: a piston, a first end of the piston being coupleable to a surface of a device under test; a permanent ring magnet fixedly coupled to the piston; a movable housing disposed around the piston, the movable housing being linearly movable relative to the piston; an electromagnet coupled to the movable housing and configured to receive an electrical signal input for generating a magnetic field that impinges on the permanent ring magnet; the exciter device is configured to apply a vibration force to the device under test when the electrical signal input causes the electromagnet to generate an alternating magnetic field, the alternating magnetic field applied to the permanent ring magnet causing linear reciprocating motion of the movable housing relative to the piston; the exciter device is an electromagnet configured to apply an impulse force to the device under test when the electrical signal input causes the electromagnet to generate a magnetic field that, when applied to the permanent ring magnet, causes linear movement of the movable housing sufficient to cause contact between a first position fixed relative to the piston and a second position fixed relative to the movable housing; Equipped with a lower support plate having a lower opening aligned with the axis of linear motion of the piston, the first end of the piston passing through the lower opening; an axial suspension magnet coupled to the movable housing adjacent the lower opening and positioned to have a magnetic polarity opposite that of the permanent ring magnet, wherein opposing magnetic forces between the axial suspension magnet and the permanent ring magnet damp movement of the movable housing relative to the piston as the axial suspension magnet approaches the permanent ring magnet; a radial guide bushing disposed adjacent the lower opening and surrounding the piston, the radial guide bushing being formed of a flexible and compressible material and limiting radial movement of the movable housing relative to the piston; The exciter device further comprises:
2. 2. The exciter apparatus of claim 1, further comprising an attachment component selectively coupleable to the movable housing, the attachment component including an impact hammer tip positioned in alignment with the second end of the piston, and the impact force being applied by contacting the impact hammer tip with the second end of the piston.
3. The accessory components include: an accessory component housing having an opening positioned to align with the axis of linear motion of the piston when the accessory component is coupled to the movable housing; a set screw selectively connectable to the accessory component housing within the opening; a hammer tip secured to a first end of the set screw; 3. The exciter apparatus of claim 2, comprising:
4. 3. The exciter apparatus of claim 2, wherein the accessory component includes a helical structure, the movable housing includes a corresponding helical structure, and the accessory component is selectively coupleable to the movable housing by engaging the helical structure with the corresponding helical structure via a threading action.
5. 1. A force response testing system comprising: The exciter device according to claim 2; an electronic controller, sending a first control signal to the exciter device, the first control signal configured to cause the electromagnet of the exciter device to generate a first magnetic field that moves the impact hammer tip in a direction away from the second end of the piston; sending a second control signal to the exciter device after sending a first control signal to the exciter device, the second control signal configured to cause the electromagnet of the exciter device to generate a second magnetic field that drives the first location fixed relative to the piston into contact with the second location fixed relative to the movable housing. an electronic controller; A force response testing system comprising:
6. 6. The force response test system of claim 5, wherein the electronic controller is configured to transmit the first control signal and the second control signal by controllably adjusting a current applied to a coil of the electromagnet.
7. 7. The force response testing system of claim 6, wherein the electronic controller is further configured to apply an alternating current to the coil of the electromagnet, the alternating current causing the electromagnet to generate the alternating magnetic field and apply the vibration force to the device under test.
8. 8. The force response testing system of claim 7, wherein the electronic controller is configured to adjust the amplitude and frequency of the vibration force applied to the device under test by adjusting the amplitude and frequency of the alternating current applied to the coil of the electromagnet.
9. 6. The force-response testing system of claim 5, wherein the exciter device further includes a mode indicator including at least one light-emitting diode, and the electronic controller is further configured to send a mode indicator control signal to the at least one light-emitting diode of the mode indicator, the mode indicator control signal configured to operate the light-emitting diode to provide a visual indication of an operational mode of the exciter device.
Citation Information
Patent Citations
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Linear actuator
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