Selectable, configurable and interchangeable massage tool head system for percussion massage devices

Information

  • Patent Grant
  • 11672728
  • Patent Number
    11,672,728
  • Date Filed
    Tuesday, April 5, 2022
    2 years ago
  • Date Issued
    Tuesday, June 13, 2023
    a year ago
Abstract
A selectable impact tip system for use with a percussion massager includes multiple flexible and interchangeable massage tips having variable internal geometries. The variable internal geometries of the flexible and interchangeable tips cause different impact forces during use when used with the reciprocating piston and the removable and hollow shaft of the percussion massager.
Description
BACKGROUND
Technical Field

The embodiments herein are generally directed to tips used with percussion massage tools and more specifically to tips and tool designs which enable customization of a massage experience by controlling impact force.


Description of Related Art

Massage devices are known in the art and present uses include, but are not limited to, pre-work out warm-up or post-activity recovery to increase range of motion and flexibility when administered before sports activity and muscle pliability where massage techniques are applied with a thumb, palm and elbow, used to reduce stress, increase relaxation, reduce pain and muscle soreness and tension. Improving circulation, energy and alertness. Massage devices have also been known to help prevent sore muscles after exercise known as “delayed onset muscle soreness or DOMS. Such massage devices are used in, for example, athletic, physiotherapeutic and chiropractic environments and to a much larger extent now in the home environment. Current tool heads, including massage tips, for percussion massage devices are somewhat inflexible in their design and rely on the body tissue to act as the primary shock absorber. Current tool head tips are composed of hard plastic or closed cell foam and do not offer users various measured tool heads based on impact and do not take into account the users body, needs and use application.


Further, prior art designs may be causing damage to the fascia, i.e., a thin casing of connective tissue that surrounds and holds every organ, blood vessel, bone, nerve fiber and muscle in place. When hammering into this area with a high intensity motor, blood vessels can rupture, creating inflammation, and ultimately cause bruising. This counter to the goal of massage therapy, which is to increase blood flow that transports beneficial oxygen and nutrients to our muscles. When we shatter these pathways, we counteract the potential gains.


Accordingly, there is a need in the art for tip and/or tool designs that allow a user to customize the impact based on comfort, body part impacted, medical needs.


SUMMARY OF THE EMBODIMENTS

A selectable impact tip system for percussion massagers that allows users to select and interchange tips based on user preference and targeted customization for comfort, muscle density, muscle soreness, body part and clinical application.


To impose greater mechanical control on applied force and impact control on percussion massage tool head impact the embodiments exemplified herein use various mechanical absorption and reverberation methods including fixed and non-fixed methods such as springs, pneumatics, tip design and elastomeric durometer scales. Greater control of reverberation, spring back and absorption is achieved through one or more of the following:

    • Tool heads may use various compression force values.
    • Tips may use a pneumatic bladder that may be inflated or deflated. Pneumatic tips may have valve on outside and/or from within the shaft to control inflation/deflation.
    • Tip material durometer and density may be changed to reduce/increase impact forces as desired.
    • Tip design that features air transfer capability and air visibility chamber. Tip is a mechanical damper device designed to absorb and damp shock impulses created for the percussion massager device. It does this by converting the kinetic energy of the shock into another form of energy which is then dissipated by the geometrical shape of the attachment by having an air chamber that allows the tip of the attachment to flex in a controlled distance, represented by the “air chamber.”
    • Tip shafts may use fixed shafts, with adjustability to reduce the gap between tip head and “bottom out” point. This distance becomes variable when adjusted with a device (screw) that attaches firmly to the shaft of the attachment and having the property of modifying the space of the “air chamber”, changing as a result the shock dampening properties of the flexible tip.
    • Tips maybe visibly coded to give users can easily identifiable way and progressive system to quickly locate appropriate tip for use in applications.


Example embodiments in general relate to an attachment system for a percussive massager device, wherein users may select the attachment heads in a percussive massager device based on the desired impact energy of the collision force. A color coding, alphanumeric coding, graphics coding or other visual indication system may be implemented to provide a user with an indication of the level of impact that is to be expected for each massage tip in a set.


One object of the embodiments is to provide tool head attachments primarily designed to be used in massage instruments which include shock attenuation and impact absorbing functions.


One object is to provide an attachment system for a percussive massager device to facilitate user selection of a specific attachment based on the impact energy of the collision force as indicated through a coding system.


Other objects and advantages of the various embodiments of the present invention will become obvious to the reader and it is intended that these objects and advantages are within the scope of the present invention. To the accomplishment of the above and related objects, this invention may be embodied in the form illustrated in the accompanying drawings, attention being called to the fact, however, that the drawings are illustrative only, and that changes may be made in the specific construction illustrated and described within the scope of this application.


In a first embodiment herein, a percussion massager attachment tool includes: an enclosure including a reciprocating piston and a hollow shaft; a first flexible tip having an outer dome shape securely connected to a first end of the enclosure, wherein when secured to the first end of the enclosure, a first inner geometry of the flexible tip forms an air gap having a first height, H1, between an inside of the flexible tip and the first end of the enclosure when the reciprocating piston is in a first state of operation; and further wherein when the reciprocating piston is in a second state of operation the air gap has a second height, H2, where H2<H1 and air is transferred from the air gap through the hollow shaft and is discharged from the percussion massager attachment tool via one or more channels in the shaft capable of discharging air at a second end of the enclosure, the percussion massager attachment tool with the first flexible tip providing a first impact force range.


In a second embodiment herein, a percussion massager attachment tool includes: an enclosure including a reciprocating piston, a shaft, at least one adjustable spring and at least one adjustment means for compressing and decompressing coils of the at least one adjustable spring; a first flexible tip connected to a first end of the enclosure, wherein when the at least one adjustable spring is in a first configuration, the percussion massager attachment tool with the first flexible tip provides a first impact force range and when the at least one adjustable spring is in a second configuration, the percussion massager attachment tool with the first flexible tip provides a second impact force range.


In a third embodiment herein, a percussion massager attachment tool includes: an enclosure including a reciprocating piston and a shaft; a first inflatable tip secured to a first end of the enclosure, means for inflating the first inflatable tip and means for deflating the first inflatable tip, wherein when the first inflatable tip is inflatable to a first level, the percussion massager attachment tool provides a first impact force range and when the first inflatable tip is inflatable to a second level, the percussion massager attachment tool provides a second impact force range.


In a fourth embodiment herein, a percussion massage attachment tool includes: an enclosure including a reciprocating piston and a hollow shaft; a first flexible tip securely connected to a first end of the enclosure, wherein when secured to the first end of the enclosure, the flexible tip forms an air gap having height H between an inner wall of the flexible tip and the first end of the enclosure when the reciprocating piston is in a first state of operation; and further comprising an adjustable screw passing through the hollow shaft, wherein a user can vary a space S between an end of the screw the inner wall of the first flexible tip by turning the screw, wherein S can be adjusted from 0≤S≤H.





BRIEF DESCRIPTION OF THE DRAWINGS

Example embodiments will become more fully understood from the detailed description given herein below and the accompanying drawings, wherein like elements are represented by like reference characters, which are given by way of illustration only and thus are not limitative of the example embodiments herein.



FIGS. 1a and 1b illustrate a first low impact tool configuration in accordance with a first embodiment described herein;



FIGS. 1c, 1d and 1e illustrate impact stages of the tip and tissue for the tool configuration of FIGS. 1a and 1b in accordance with a first embodiment described herein;



FIGS. 2a and 2b illustrate a second low impact tool configuration in accordance with a first embodiment described herein;



FIGS. 3a, 3b and 3c illustrate a third low impact tool configuration in accordance with a first embodiment described herein;



FIGS. 3d and 3e illustrate the third low impact tool configuration in a first open spring state (FIG. 3b) and a second closed spring state (FIG. 3c);



FIGS. 4a, 4b and 4c illustrate a third low impact tool configuration having a roller tip in accordance with a first embodiment described herein;



FIGS. 4d and 4e illustrate the third low impact tool configuration having a roller tip in a first open spring state (FIG. 4b) and a second closed spring state (FIG. 4c);



FIGS. 5a, 5b, 5c, 5d illustrate an exemplary tool set for use with a percussion massage device, wherein each individual tool is marked to identify impact range to the user;



FIGS. 6a and 6b illustrate a first low impact tool configuration in accordance with a first embodiment described herein having an alternative tool tip;



FIGS. 7a and 7b illustrate a third embodiment tool head wherein a first low impact tool configuration in accordance with a first embodiment described herein has an alternative tool tip;



FIGS. 8a and 8b illustrate a fourth embodiment tool head wherein a first low impact tool configuration in accordance with a first embodiment described herein has an alternative tool head;



FIGS. 8c, 8d and 8e illustrate a fifth embodiment tool head wherein a second low impact tool configuration in accordance with a first embodiment described herein has the alternative tool head of FIGS. 8a and 8b;



FIGS. 9a, 9b and 9c illustrate a fifth embodiment tool head wherein a tool head is inflatable;



FIGS. 10a, 10b, 10c and 10d illustrate the tool head of the fifth embodiment at various PSI of inflation;



FIG. 11 is an exemplary graph illustrating impact force (Joules) required to achieve tool tip compression (mm) for different tip designs during use with a percussion massage device. wherein the tip durometer is the same across;



FIGS. 12a, 12b, 12c and 12d illustrate different tool configurations with a cone tip; and



FIGS. 13a, 13b, 13c and 13d illustrate different tool configurations with a paddle tip.





DETAILED DESCRIPTION

A dynamic response analysis in an elastic collision teaches us that objects involved remain separate, where the total kinetic energy and momentum are conserved. This means that the colliding objects bounce off one another with no energy loss as a result of the collision. In the case of percussion massage tips, the interaction with the body is a “nearly elastic collision” because some kinetic energy is lost in heat, sound, and internal energy allowing the body tissue to wave as a result. In the present embodiments, total momentum is conserved and the total kinetic energy is not conserved. The collision is considered to be elastic because the tip, which is deformed during collision, and the body tissue, also deformed during collision, both return to their original state after the collision. Also relevant is the concept of shock loading which refers to a sudden and drastic increase of load similar to a hammering effect. The net force is equal to the derivative of momentum as a function of time defining impact as a change in momentum, represented by the change in the response velocity of the tool head tip of the absorbing device and human tissue.


The typical percussion massager attachment tip uses one or more materials or components which affect the force of impact in two important ways, i.e. through shock absorption and energy absorption. Shock absorption involves the attenuation of harmful impact forces. A percussion massager attachment tip with high shock absorbing and reverberation characteristics thus can provide a more beneficial massager therapy experience, assuming other mechanical aspects are not compromised. Absorption of energy may be considered the general soaking up of both impact and useful propulsive forces. Thus, a percussion massager attachment tip with high energy absorbing and reverberation characteristics has relatively lower resiliency, which generally does not return as much of the energy placed into the tip at soft tissue impact. Furthermore, high absorbing and reverberation tips can also produce a continuation or extended massage stroke length creating a secondary impact. This results in a continuing effect or repercussion. Conversely, a percussion massage tip with low energy absorbing characteristics has relatively higher resiliency, and generally returns more of the energy placed into a tip at soft tissue impact.


Rubber or elastomeric materials are widely used for shock absorbers having elastic and viscous properties such as high inherent damping, deflection capacity, and energy storage. By definition damping properties of rubber is fulfilled for a system with kinematic excitation based on two approaches: using Maxwell and Burgers mechanical models combining of elastic and viscous elements and using Rabotnov's kernel of relaxation for analytical representation of visco-elastic properties of rubber.


The following embodiments illustrate just a few of the different ways that a user can customize their percussion massage experience by either selecting a specific predetermined tip design with set force expectation and/or adjusting force using one or more customization controls available with the tool tip.


A. Low Level Impact


In a first embodiment, an exemplary tool head for use with a percussion massager is intended to provide a user with the lowest impact level experience, or levels, as compared to other tool head configurations in a set of tool heads. Impact level can vary based on a number of factors including tool configuration, tip shape (external and internal) and material, as well as user selectable changes to the tool configuration as will be discussed herein. Use of the terms low, medium and high herein are relative.


A first low impact tool configuration is represented by a tool configuration which includes a tip shape as shown in FIGS. 1a and 1b and which includes an air chamber or gap 10 as shown in FIG. 1a. The tip 5A material is formed of a rubber material having a predetermined durometer value, such as 60, on the Shore A durometer scale. The air chamber may be for example, on the order of 0-10 mm. In one particular embodiment, wherein the tip includes a transparent portion, wherein the air chamber is visible during use of the percussion massage attachment tool. In an exemplary configuration, a 5 mm tip deformation results from an impact force of approximately 6.52 Joules.



FIGS. 1c, 1d, 1e show a second exemplary massage tip with air transfer from the air gap as the tip compresses during a stroke of the percussion massager as the tip encounters tissue of the user. As shown in FIG. 1c, the stroke has not closed the air gap 10 and thus there is no compression yet. Whereas in FIG. 1d the air gap narrows and in FIG. 1e there is essentially no gap. In FIG. 1c, a flexible rubber tip 5A in a normal (or resting) state includes an air gap of approximately 4 mm and a dome peak to flat (horizontal) plane measurement of 6.53 mm. Next, during a percussion stroke, as the dome peak of the rubber tip contacts the tissue of the user, the air gap narrows to 2 mm and the dome peak to flat (horizontal) plane measurement reduces to 2.42 mm (FIG. 1d). Finally, at the point of full stroke, the air gap goes to 0 and the dome peak to flat (horizontal) plane measurement reduces to 0.79 mm (FIG. 1e). Air from the air gap may be released during the stroke through one or more channels in the core 14 and out of the tool via one or more vents in the piston 16.


Percussion massager attachment tip system of FIGS. 1c, 1d, 1e show more controlled impact and reverberation. The tips' shape and geometry of the inner cavity is engineered to absorb impact and transfer gas while the lower aspect is designed to partially encapsulate the shaft creating a seal. Furthermore the tip is designed to create reverberation that generates secondary impact as the tip collapses and expands. The gap inside the head tip and the shaft could vary, adding differences in space inside that change reverberation distance. The creation of the space inside the tip allows the tip to collapse and expand, conforming to the tissue of the user and generating a secondary impact. The shaft has one or more channels which allow the tip to discharge gas through the shaft to the piston. The piston has one or more vents to allow air to discharge. Piston encapsulates the shaft and attaches via the elastomeric joint.


On skilled in the art appreciates that in accordance with the teachings herein, the air gap size and shape, dome material (e.g., rubber or elastomeric) and shape, the shaft channels and number of piston vents can all be varied to vary the overall impact experience to the user. In this first low impact configuration, the features of the tool and tip are set and static, i.e., there is no ability for a user to change one or more features of the tool out of the box.


For a user seeking a higher impact level, a different tip could be selected to replace tip 5A on tool shaft 25. Other tips with differing shapes and/or durometer values can be selected to replace tip 5A and with the same internal geometry of the tool will result in a higher (or lower) impact level (see, for example, the tips described in commonly owned U.S. patent application Ser. No. 17/508,954 which is incorporated herein by reference in its entirety). The cone and paddle tips shown in FIGS. 12a, 12b (cone) and FIGS. 13a, 13b (paddle) with the tool configuration described above with respect to FIGS. 1c, 1d, 1e provide for additional examples.


In a second low impact tool configuration shown in FIGS. 2a and 2b, the user is able to increase the impact level by narrowing the air gap 10 using screw 15. In this configuration, all other features of the tool such as tip shape and durometer value are the same, but by decreasing the air gap 10, less impact is absorbed by the tool, resulting in more impact being felt by the user.


In yet a third low impact tool configuration, an additional impact selection mechanism is included which allows a user to adjust impact, in addition to changing the air gap 10 width. FIGS. 3a-3c illustrate a tool geometry which includes dual compression spring coils (springs) 20a and 20b, which can be adjusted between a fully open configuration (low impact, shown) and a compressed configuration (higher impact). Control screw 15a is used to adjust the air gap 10, while control screw 15b is used to compress/open the springs 20a and 20b. As you squeeze a compression spring, it pushes back to return to its original length. Rate is the amount of force required for every inch of compression or, for metric springs, millimeter of compression. The higher the rate, the harder it is to compress the spring. Springs 20a and 20b handle higher loads than standard fastener-mount compression springs. Springs 20a and 20b are secured by inserting an adjustable fastener 15B through the hole at the base. Recommended springs are a polyester/rubber blend that is wear, oil, and fuel resistant.


The internal geometry of the part directly controls the spring and the deformation of the rubber head to achieve specific results during a massage session. We obtain an s-curve when representing this deformation combined with forces through time.



FIGS. 3d and 3e illustrate the third low impact tool configuration in a first open spring state (FIG. 3d) and a second closed spring state (FIG. 3e). Impact force will be higher when the percussion massager is operating with the tool in the closed spring state.


One skilled in the art will appreciate that when the tip deformation distance changes, the force required changes too. The larger the deformation desired, the larger the required applied force. The nominal case described above was calculated based on 5 mm deformation. To establish a comparison, to deform the rubber tip 5A in the first low impact tool configuration to 7 mm, the force required is 20.84 Joules. This result is not a constant. The main deformation factors in the low level configurations discussed herein are the internal geometry, the mass, tip shape, tip material (durometer level) and the speed.


Additionally, one or more exemplary tips, including the roller tips described in commonly owned U.S. patent application Ser. No. 17/508,954 which is incorporated herein by reference in its entirety may be used in conjunction with a tool having the spring internal geometry described herein. Referring to FIGS. 4a, 4b and 4c, and exemplary roller tip 5B includes a wheel tire 50, wheel reem 52, strut 54, cup 56, axis elbow 58, spring seat 30, o-ring seal 35, along with dual compression spring coils (springs) 20a and 20b, which can be adjusted between a fully open configuration (low impact) and a compressed configuration (higher impact). Control screw 15 is used to compress/open the springs 20a and 20b. As you squeeze a compression spring, it pushes back to return to its original length. Rate is the amount of force required for every inch of compression or, for metric springs, millimeter of compression. The higher the rate, the harder it is to compress the spring. Springs 20a and 20b handle higher loads than standard fastener-mount compression springs. Springs 20a and 20b are secured by inserting an adjustable fastener 15B through the hole at the base. FIGS. 4d and 4e illustrate the third low impact tool configuration with roller tip 5B in a first open spring state (FIG. 4d) and a second closed spring state (FIG. 4e).


Additionally, the tool having the spring internal geometry described above may also be used with the cone and paddle tips shown in FIGS. 12c, 12d (cone) and FIGS. 13c, 13d (paddle).



FIGS. 5a, 5b, 5c and 5d illustrate an exemplary tool set for use with a percussion massage device, wherein each individual tool is marked to identify impact range to the user. In the present example, stars represent impact level ranges available for each tool. In FIG. 5a, a single star (*) represents the tool providing the lowest level impact range for the set, e.g., 0-30 lbs/inch. In FIG. 5b, two stars (**) represent the tool providing the medium/low level impact range for the set, e.g., 0-40 lbs/inch. In FIG. 5c, three stars (***) represent the tool providing the medium/high level impact range for the set, e.g., 0-50 lbs/inch. And in FIG. 5d, a four stars (****) represent the tool providing the highest level impact range for the set, e.g., 0-60 lbs/inch. The changes in impact level range can be adjusted from tool to tool by, for example, using springs having different spring rates (K). One skilled in the art recognizes that the impact level indicators need not be limited to stars and could be colors, alphanumeric or other characters that would allow a user to easily distinguish the tools. Further, for embodiments herein where there is a single tool with multiple selectable tips having different impact level ranges, the tips will include the indicator for ease of selection.


B. Medium/Low Level Impact


In a second embodiment, an exemplary tool head for use with a percussion massager is intended to provide a user with a medium/low impact level experience, or levels, as compared to other tool head configurations in a set of tool heads. Impact level can vary based on a number of factors including tool configuration, tip shape and material, as well as user selectable changes to the tool configuration as will be discussed herein. Use of the terms low, medium and high herein are relative.


Referring to FIGS. 6a and 6b, the tip 5B of durometer value 60 as shown will deform 5 mm with an impact force of 16.74 Joules. By way of comparison, to deform tip 5B 7 mm, the force required is 73 Joules. Similar to the first low impact tool configuration of the first embodiment discussed above, this tool of FIGS. 6a and 6b is static, in that there are no adjustable features. But one skilled in the art will recognize that the variations introduced above with respect internal geometries of the second and third low impact tool configurations may also be applied hereto, by simply replacing tip 5A with tip 5B, thus providing a user with additional levels of impact to customize their massage experience.


C. Medium High Level Impact


In a third embodiment, an exemplary tool head for use with a percussion massager is intended to provide a user with a medium/high impact level experience, or levels, as compared to other tool head configurations in a set of tool heads. Impact level can vary based on a number of factors including tool configuration, tip shape and material, as well as user selectable changes to the tool configuration as will be discussed herein. Use of the terms low, medium and high herein are relative.


Referring to FIGS. 7a and 7b, the tip 5C of durometer value 60 as shown will deform 5 mm with an impact force of 31.12 Joules. By way of comparison, to deform tip 5C 7 mm, the force required is 62.5 Joules. Similar to the first low impact tool configuration of the first embodiment discussed above, this tool of FIGS. 7a and 7b is static, in that there are no adjustable features. Note that in comparing the tip configuration between tip 5B and 5C, merely changing the size and shape of the internal air chamber within the tip results in nearly doubling the required force to compress the tip 5 mm. But one skilled in the art will recognize that the variations introduced above with respect internal geometries of the second and third low impact tool configurations may also be applied hereto, by simply replacing tip 5A with tip 5C, thus providing a user with additional levels of impact to customize their massage experience.


D. High Level Impact


In a fourth embodiment, an exemplary tool head for use with a percussion massager is intended to provide a user with a high impact level experience, or levels, as compared to other tool head configurations in a set of tool heads. Impact level can vary based on a number of factors including tool configuration, tip shape and material, as well as user selectable changes to the tool configuration as will be discussed herein. Use of the terms low, medium and high herein are relative.


Referring to FIGS. 8a and 8b, the tip 5D of durometer value 60 as shown will deform 5 mm with an impact force of 127.26 Joules. By way of comparison, to deform tip 5D 7 mm, the force required is 224.99 Joules. Similar to the first low impact tool configuration of the first embodiment discussed above, this tool of FIGS. 8a and 8b is static, in that there are no adjustable features. But one skilled in the art will recognize that the variations introduced above with respect internal geometries of the second and third low impact tool configurations may also be applied hereto, by simply replacing tip 5A with tip 5D, thus providing a user with additional levels of impact to customize their massage experience. FIGS. 8c, 8d and 8e illustrate adjustable variations to the tool of FIGS. 8a and 8b, wherein impact can be adjusted by changing the width of an air gap 10 in the tip. In comparing these three configurations to one another, FIG. 8c with gap at 7 mm would be lowest impact, FIG. 8d with gap at 3 mm would be higher impact than FIG. 8c and FIG. 8e with essentially 0 mm gap would have highest impact.



FIGS. 9a, 9b, and 9c illustrate yet another tool configuration which includes primary components of a shaft 25, nut 40, an inflatable/deflatable tip 5E and valves 12A and 12B. The inflatable/deflatable tip 5E can be inflated/deflated to achieve a predetermined PSI, which correlates with varying levels of impact force when used with a percussion massager. A user controls inflation and deflation of tip 5E through valves, 12A and 12B. The valves may be needle valves or other appropriate valves as would be recognized by one skilled in the art. In FIGS. 10a, 10b, 10c and 10d, the same tool is shown at different levels of inflation (PSI). One skilled in the art will appreciate that other tip configurations may be provided with the ability to inflate and deflate to adjust impact force during massaging. For example, one or more exemplary tips, including the roller tips described in commonly owned U.S. patent application Ser. No. 17/508,954 which is incorporated herein by reference in its entirety may include an inner tube or bladder which may be inflated.



FIG. 11 is an exemplary graph illustrating impact force (Joules) required to achieve tool tip compression (mm) for different tip designs during use with a percussion massage device. In this graph, the only difference between the tested tools is the design of the tip. That is, the tool configuration itself is static and identical and the durometer of each tip is the same. The tip design alone produces the differences in required force illustrated in FIG. 11.


With respect to all embodiments described above, changing the rubber durometer or the attachment tip shape, e.g., dome, cone, spade shaped, paddle shaped, spherical, circular, etc., could expand the impact range that is available to a user. Further, multiple adjustment mechanisms may be included in a single tool configuration, i.e., a single configuration could include an inflatable tip as well as the spring mechanism discussed above with respect to the third low impact tool configuration described with respect to FIGS. 3a, 3b and 3c.


For those embodiments wherein multiple, exchangeable tips and/or tools are provided with the massager or otherwise available to the user (e.g., for individual purchase), the individual tips and/or tools may be marked by color, alphanumeric or other pictorial indicator which may be used to differentiate the anticipated level of impact force that a user might expect to receive from a particular tip and/or tool combination. For example, the color green may indicate low impact, the color yellow may indicate medium impact, the color orange may indicate medium/high impact and the color red may indicate high impact.


The following applications are incorporated herein by reference in their entireties: U.S. patent application Ser. No. 17/223,840 entitled Percussive Massager Rotational Accessory, filed Apr. 6, 2021; U.S. patent application Ser. No. 17/229,860 entitled Variable Stroke Percussive Massage Device, filed Apr. 13, 2021; U.S. patent application Ser. No. 17/508,954 entitled Constrained and Repositionable Percussive Massage Device Tool and Tool Receiver, filed Oct. 22, 2021; and U.S. patent application Ser. No. 17/524,732 entitled Percussion Massager Having Variable and Selectable Stroke Length filed Nov. 11, 2021, each of which is commonly owned and list overlapping inventors.


The tools, tips and attachment systems for a percussive massager device described herein may be embodied in other specific forms without departing from the spirit or essential attributes thereof, and it is therefore desired that the present embodiment be considered in all respects as illustrative and not restrictive. Any headings utilized within the description are for convenience only and have no legal or limiting effect. Also, it is to be understood that the phraseology and terminology employed herein are for the purpose of the description and should not be regarded as limiting.

Claims
  • 1. A percussion massager attachment tool comprising: an enclosure including a reciprocating piston; anda removable and hollow shaft;a first flexible tip having an outer dome shape securely, but removably, connected to a first end of the removable and hollow shaft, wherein when secured to the first end of the removable and hollow shaft, a first inner geometry of the flexible tip forms an air gap having a first height, H1, between an inside of the flexible tip and the first end of the removable and hollow shaft when a second end of the removable and hollow shaft is secured to the enclosure and the reciprocating piston is in a first state of operation; andfurther wherein when the reciprocating piston is in a second state of operation the air gap has a second height, H2, resulting from flexure of the first flexible tip, where H2<H1 and air is transferred from the air gap through the removable and hollow shaft and is discharged from the percussion massager attachment tool via one or more channels in the removable and hollow shaft capable of discharging air at a second end of the enclosure,the percussion massager attachment tool with the first flexible tip providing a first impact force range.
  • 2. The percussion massager attachment tool of claim 1, wherein the flexible tip is formed of rubber or an elastomeric material.
  • 3. The percussion massager attachment tool of claim 1, wherein when the reciprocating piston is in a third state of operation the air gap has a third height, H3=0 and air is transferred from the air gap through the removable and hollow shaft and is discharged from the percussion massager attachment tool via one or more vents at a second end of the enclosure.
  • 4. The percussion massager attachment tool of claim 1, wherein the outer dome shape of the flexible tip flattens during the second and third states of operation responsive to impacting tissue of a user.
  • 5. The percussion massager attachment tool of claim 1, wherein the first flexible tip is removable and replaceable.
  • 6. The percussion massager attachment tool of claim 5, wherein a second flexible tip is secured to the first end of the removable and hollow shaft, the second flexible tip having a predetermined shape and a second inner geometry, and wherein the percussion massager attachment tool with the second flexible tip provides a second impact force range.
  • 7. The percussion massage attachment tool of claim 6, wherein the first flexible tip has a first durometer value and second flexible tip is secured to the first end of the removable and hollow shaft, the second flexible tip having a same predetermined shape and a same first inner geometry as the first flexible tip, but the second flexible tip has a second durometer value wherein the percussion massager attachment tool with the second flexible tip provides a second impact force range.
  • 8. The percussion massage attachment tool of claim 1, wherein the first flexible tip includes a transparent portion, wherein the air gap is visible during use of the percussion massage attachment tool.
  • 9. A percussion massager attachment tool comprising: an enclosure including a reciprocating piston;a removable and hollow shaft;a first flexible tip securely, but removably, connected to a first end of the removable and hollow shaft, wherein when secured to the first end of the removable and hollow shaft, the flexible tip forms an air gap having height H between an inner wall of the flexible tip and the first end of the removable and hollow shaft when a second end of the removable and hollow shaft is secured to the enclosure and the reciprocating piston is in a first state of operation, wherein air is transferred from the air gap through the removable and hollow shaft and is discharged from the percussion massager attachment tool via one or more channels in the removable and hollow shaft capable of discharging air at a second end of the enclosure; andfurther comprising an adjustable screw passing through the removable and hollow shaft, wherein a user can vary a space S between an end of the screw and the inner wall of the first flexible tip by turning the screw, wherein S can be adjusted from 0≤S≤H.
US Referenced Citations (175)
Number Name Date Kind
859424 Aschburner Jul 1907 A
890822 Tourtel et al. Jun 1908 A
1368782 Beach Feb 1921 A
2122556 Buffalow Jul 1938 A
2156839 Buffalow May 1939 A
4088128 Mabuchi May 1978 A
4513737 Mabuchi Apr 1985 A
4549535 Wing Oct 1985 A
D284553 Collister Jul 1986 S
4726430 Hendrikx et al. Feb 1988 A
4790296 Segal Dec 1988 A
4841955 Evans et al. Jun 1989 A
5085207 Fiore Feb 1992 A
5134777 Meyer Aug 1992 A
D373571 Zambelli Sep 1996 S
5656017 Keller et al. Aug 1997 A
5690608 Watanabe et al. Nov 1997 A
6228042 Dungan May 2001 B1
6357125 Feldmann et al. Mar 2002 B1
6616621 Kohr Sep 2003 B1
6682496 Pivaroff Jan 2004 B1
6758826 Luettgen et al. Jul 2004 B2
D525115 Harwanko Jul 2006 S
7122013 Liu Oct 2006 B2
7144417 Colloca et al. Dec 2006 B2
D544102 Pivaroff Jun 2007 S
D578080 Whang Oct 2008 S
7503923 Miller Mar 2009 B2
D607852 Riede Jan 2010 S
D632265 Choi Feb 2011 S
D639784 Murayama Jun 2011 S
D649657 Petersen et al. Nov 2011 S
8083699 Colloca et al. Dec 2011 B2
D662398 Jahnke Jun 2012 S
D679576 Paul Apr 2013 S
8826547 Oberheim Sep 2014 B2
8968221 Pryor Mar 2015 B2
D738355 Smith Sep 2015 S
D751538 Koehler Mar 2016 S
D756333 Smith May 2016 S
9526671 Week Dec 2016 B2
D781674 Bullard Mar 2017 S
9889066 Danby et al. Feb 2018 B2
D826205 Langhammer Aug 2018 S
D837395 Gan Jan 2019 S
D840355 Simon Feb 2019 S
D848398 Huang May 2019 S
D849260 Wersland May 2019 S
D850639 Wersland Jun 2019 S
D850640 Wersland Jun 2019 S
10314762 Marton et al. Jun 2019 B1
10357425 Wersland et al. Jul 2019 B2
D855822 Marton Aug 2019 S
D857650 Hardi Aug 2019 S
D859680 Wersland Sep 2019 S
D867342 Afshar Bakooshli Nov 2019 S
10485731 Babiuk Nov 2019 B2
10492984 Marton et al. Dec 2019 B2
D873432 Duan Jan 2020 S
D874015 Marton Jan 2020 S
10561574 Marton et al. Feb 2020 B1
D886317 Marton Jun 2020 S
D890353 Nazarian Jul 2020 S
D890942 Wersland Jul 2020 S
D890943 Wersland Jul 2020 S
10702448 Wersland et al. Jul 2020 B2
D893738 Zhuang Aug 2020 S
D895133 Xu Sep 2020 S
D895135 Xu Sep 2020 S
D895402 Hung Sep 2020 S
D895828 Marshall Sep 2020 S
D895831 Chen Sep 2020 S
D896393 Wersland Sep 2020 S
D898933 Xu Oct 2020 S
D905863 Lin Dec 2020 S
D906533 Xu Dec 2020 S
D907792 Marton et al. Jan 2021 S
D908235 Marton et al. Jan 2021 S
D910870 Marton Feb 2021 S
D917060 Hu Apr 2021 S
D918404 Wersland May 2021 S
D918405 Wersland May 2021 S
D918408 Huang May 2021 S
10993874 Marton et al. May 2021 B1
D920944 Paterson Jun 2021 S
D924422 Huang Jul 2021 S
D927716 Wersland Aug 2021 S
D927717 Wersland Aug 2021 S
D931492 Li Sep 2021 S
D935403 Wu Nov 2021 S
D935404 Wu Nov 2021 S
D938056 Wu Dec 2021 S
D940892 Shen Jan 2022 S
D941145 Wang Jan 2022 S
11253423 Williams Feb 2022 B1
D949365 Li Apr 2022 S
D949366 Li Apr 2022 S
D949384 Liang Apr 2022 S
D949417 Khubani Apr 2022 S
D949418 Khubani Apr 2022 S
D952878 Lin May 2022 S
D958654 Lupberger Jul 2022 S
D959268 Hume Aug 2022 S
D961107 Tian Aug 2022 S
D961795 Zhao Aug 2022 S
D967971 Jinfeng Oct 2022 S
11478400 Marton Oct 2022 B1
20020082532 Tucek et al. Jun 2002 A1
20020107459 Chang Aug 2002 A1
20030009116 Luettgen et al. Jan 2003 A1
20030009118 Sabo Jan 2003 A1
20030028134 Lev Feb 2003 A1
20030040689 Chan et al. Feb 2003 A1
20030101847 Harimoto Jun 2003 A1
20030195443 Miller Oct 2003 A1
20050109137 Hartmann May 2005 A1
20050113870 Miller May 2005 A1
20050131461 Tucek et al. Jun 2005 A1
20060025710 Schulz Feb 2006 A1
20060293711 Keller et al. Dec 2006 A1
20080014011 Rossen Jan 2008 A1
20080183252 Khen Jul 2008 A1
20090270915 Tsai et al. Oct 2009 A1
20100137907 Tsai Jun 2010 A1
20140031866 Fuhr et al. Jan 2014 A1
20150005682 Danby et al. Jan 2015 A1
20150107383 Duesselberg et al. Apr 2015 A1
20150182415 Olkowski et al. Jul 2015 A1
20160354277 Fima Dec 2016 A1
20160367425 Wersland Dec 2016 A1
20170304145 Pepe Oct 2017 A1
20180008512 Goldstein Jan 2018 A1
20180168913 Sedic Jun 2018 A1
20180200141 Wersland et al. Jul 2018 A1
20180263845 Wersland et al. Sep 2018 A1
20180320732 Kim Nov 2018 A1
20180353369 Newns et al. Dec 2018 A1
20190015294 Nazarian et al. Jan 2019 A1
20190175434 Zhang Jun 2019 A1
20190209424 Wersland et al. Jul 2019 A1
20190232403 Candelaria Aug 2019 A1
20190254921 Marton et al. Aug 2019 A1
20190350793 Wersland et al. Nov 2019 A1
20200046604 Danby et al. Feb 2020 A1
20200085675 Lee et al. Mar 2020 A1
20200110526 Ano et al. Apr 2020 A1
20200170871 Lukinuk et al. Jun 2020 A1
20200214930 Wersland et al. Jul 2020 A1
20200261307 Wersland et al. Aug 2020 A1
20200261310 Wersland et al. Aug 2020 A1
20200268594 Pepe Aug 2020 A1
20200276079 Cheng Sep 2020 A1
20200289365 Wersland et al. Sep 2020 A1
20200330321 Wersland et al. Oct 2020 A1
20200352820 Nazarian et al. Nov 2020 A1
20200352821 Wersland et al. Nov 2020 A1
20200390644 Yang Dec 2020 A1
20200393026 Chang Dec 2020 A1
20200405574 Wersland et al. Dec 2020 A1
20210003168 Cong Jan 2021 A1
20210022951 Hu Jan 2021 A1
20210022955 Wersland Jan 2021 A1
20210059898 Wersland et al. Mar 2021 A1
20210113421 Chuang Apr 2021 A1
20210128402 Dai et al. May 2021 A1
20210137779 Ayu et al. May 2021 A1
20210196562 Zhao Jul 2021 A1
20210244610 Wersland et al. Aug 2021 A1
20210322257 Lee et al. Oct 2021 A1
20210369549 Almodovar Dec 2021 A1
20220096320 Lu Mar 2022 A1
20220154764 Yamashita May 2022 A1
20220168175 Tang Jun 2022 A1
20220168177 Vierheller Jun 2022 A1
20220211575 Wersland Jul 2022 A1
Foreign Referenced Citations (15)
Number Date Country
388531 Feb 1965 CH
205268525 Jun 1916 CN
206381369 Aug 1917 CN
208130157 Nov 1918 CN
2694966 Apr 2005 CN
202536467 Nov 2012 CN
306178047 Nov 2020 CN
212749648 Mar 2021 CN
2020305792978 Mar 2021 CN
2021302494257 Aug 2021 CN
102249761 May 2021 KR
M543692 Jun 1917 TW
M511855 Nov 2015 TW
D207405 Sep 2020 TW
WO 2022149067 Jul 2022 WO
Non-Patent Literature Citations (13)
Entry
English translation for CH388531, espacenet.com, translated on Jul. 8, 2021.
Youtube,, “ShoDuo Absorption & Reverberation Massage Head”, Published Date: Sep. 26, 2022. https://www.youtube.com/ watch?v=OW6z6eYNo4o (Year: 2022).
amazon.com; Massage Gun Massage Gun—Massage Pulse Mini Muscle Massage Gun; Apr. 28, 2022; 2 pgs.
AliExpress.com; Portable Massage Gun Deep Tissue Percussion Muscle Massager for Pain; retrieved on Nov. 22, 2022; 1 pg.
amazon.com; Mebak 3 Massage Gun Muscle Massager Electric Hand Massager, May 22, 2020; 3 pgs.
Flyby—Massage gun. Date: Aug. 11, 2020. [online]. [Site visited Dec. 1, 2022]. Available from Internet URL: www.youtube.com/watch?v =GYvuNuif8Bc (Year: 2020).
Massage guns. (Design—© Questel) orbit.com. [Online PDF compilation of references selected by examiner] 50 pgs. Print Dates Range Apr. 28, 2020-Mar. 11, 2022 [Retrieved Dec. 2, 2022] https://www.orbit.com/export/UCZAH96B/pdf4/e6b9a3b3-195c-4fbe-87b2- 0eaaf315609e-165234.pdf (Year: 2022).
HP Race Development—Titanium connecting rods. Date: Apr. 30, 2021. [online]. [Site visited Dec. 15, 2022]. Available from Intemet URL: https://www.hpracedevelopment.com/news/titanium-connecting-rods-now-available-all-current-250f-models#/ (Year: 2021).
English translation for CN 212749648 from Espacenet on Jul. 18, 2022 (year 2021).
Massage Gun Deep Tissue, Percussion Muscle Massager Gun for Atnletes—Flyby F1 Pro—Handheld Neck & Back Massager for Pain Relief—Therapy and Relaxation Body Massager Gun—Lightweight (Black), [retrieved on Oct. 28, 2021], 9 pp., Retrieved from the Internet: https://www.amazon.com/massage-Gun-Deep-Tissue-Lightweight/dp/B07Y8SRYL3/ref=sr_1_1_sspa?crid=2WYI8SO0AT230&dchild=1&keywords=flyby%2Bmassage%2Bgun&qid=1635265651&s=hpc&sprefix=Flyby%2B%2Chpc%2C179&sr=1-1-.
Toloco Massage Gun, upgrade Percussion Muscle Massage Gun tor Athletes, Handheld Deep Tissue Massager Black), [retrieved on Oct. 29, 2021], 10 pp., Retrieved from the Internet: https://www.amazon.com/TOLOCO-massage-Gun-Upgraded-Brushless/dp/B083L8RNJR/ref=sr_1_1 sspa?dchild=1&keywords=Massage%2Bgun&qid=1635272886&sr=8-1 -spons&spLa=ZW5jcnlwdGVkUXVhbGImaWVyPUFETDEwSENOVDg4SzgmZW5jcnlwdGVkSWQ9QTAyOTUzNTMxN.
Massage Gun Deep Tissue, Muscle Percussion Back Neck Head Handheld Hammer Massager for Athletes, 30 speed Level, LED Touch Screen, Long Battery Life with 10 Heads, [retrieved on Oct. 29, 2021], 9 pp., Retrieved from the Internet: https://www.amazon.com/Massage-Percussion-Handheld-massager-Athletes/dp/B08QJNVP6F/ref=sr_1_4_sspa?dchild=1&keywords=Massage+gun&qid=1635272918&sr=8-4-spons&psc=1&spLa=ZW5jcnlwdGVkUXVhbGImaWVyPUFKT1dTTDBISUU5TEsmZW5jcnlwdGVkSWQ9QTA3MTI5MN.
English translation for KR 102249761, translated by espacenet.com, translated on Oct. 31, 2022.