SANDING TOOL WITH INTERMEDIATE ADAPTER PAD
20240359295 ยท 2024-10-31
Inventors
Cpc classification
International classification
Abstract
Example implementations relate to a sanding tool having an intermediate adapter pad. The sanding tool includes a rigid base plate configured for releasable attachment to a number of sanding handles. The sanding tool also includes an adapter pad that comprises: an upper portion configured to receive the rigid base plate, the upper portion including a perimeter portion that extends above an upper surface of the rigid base plate; and a lower surface configured for releasable attachment to a lower pad, wherein a lower surface of the lower pad is configured for releasable attachment to a working material. The perimeter portion includes a channel configured for releasable attachment to a suction ring, or a bristle ring, or both.
Claims
1. A hand sanding tool adapter pad, comprising: an upper portion configured to receive a rigid base plate, the upper portion including a perimeter portion that extends above an upper surface of the rigid base plate; and a lower surface configured for releasable attachment to a lower pad, wherein a lower surface of the lower pad is configured for releasable attachment to a working material; and wherein the perimeter portion includes a channel configured for releasable attachment to a suction ring.
2. The hand sanding tool adapter pad of claim 1, wherein the suction ring comprises a rubber material.
3. The hand sanding tool adapter pad of claim 1, wherein the suction ring comprises ethylene propylene diene monomer (EPDM).
4. The hand sanding tool adapter pad of claim 1, wherein the channel is configured releasable attachment to the suction ring in a first configurations and for releasable attachment to a bristle ring in a second configuration, the releasable attachment occurring via friction.
5. The hand sanding tool adapter pad of claim 1, wherein the adapter pad is configured for releasable attachment to the rigid base plate.
6. The hand sanding tool adapter pad of claim 1, wherein the rigid base plate is configured for releasable attachment to a number of different sanding handles.
7. The hand sanding tool adapter pad of claim 6, wherein the number of sanding handles includes an elongate pole.
8. The hand sanding tool adapter pad of claim 6, wherein at least one of the number of sanding handles comprises a vacuum attachment handle.
9. The hand sanding tool adapter pad of claim 1, wherein the adapter pad is made of a closed cell foam material and the lower pad is made of an open cell foam material.
10. The hand sanding tool adapter pad of claim 9, wherein the closed cell foam material is an elastomeric polymer.
11. The hand sanding tool adapter pad of claim 10, wherein the elastomeric polymer is ethylene-vinyl acetate (EVA).
12. The hand sanding tool adapter pad of claim 1, wherein the adapter pad has a circular shaped periphery.
13. A hand sanding tool system, comprising: a base plate configured for releasable attachment to a number of sanding handles; wherein the hand sanding tool is configured for conversion between at least a first tool configuration that includes an adapter pad releasably attached to a bristle ring, and a second tool configuration that includes the adapter pad releasably attached to a suction ring, wherein the first tool configuration and the second tool configuration includes the base plate being coupled to the adapter pad, the adapter pad, comprising: an upper portion configured to receive the base plate, a lower surface configured for releasable attachment to a lower pad, wherein a lower surface of the lower pad is configured for releasable attachment to a working material; wherein a perimeter portion of the upper portion of the adapter pad includes a groove configured to receive the bristle ring in the first configuration and to receive the suction ring in the second configuration.
14. The hand sanding tool system of claim 13, wherein the perimeter portion extends above an upper surface of the base plate.
15. The hand sanding tool system of claim 13, wherein the hand sanding tool is configured for conversion between the first configuration, the second configuration, and a third configuration that does not include the adapter pad.
16. The hand sanding tool system of claim 15, wherein the third tool configuration includes an upper surface of the lower pad being releasably attached to a lower surface of the base plate.
17. The hand sanding tool system of claim 15, wherein the first configuration and the second configuration provides increased dustless sanding operation as compared to the third configuration.
18. The hand sanding tool system of claim 15, wherein at least one of the first configuration and the second configuration includes at least one additional pad located between the adapter pad and the lower pad.
19. A hand sanding tool, comprising: a rigid base plate; a vacuum attachment handle releasably attached to the rigid base plate; and an adapter pad, comprising: an upper portion configured to receive the rigid base plate, the upper portion including a perimeter portion that extends above an upper surface of the rigid base plate; and a lower surface configured for releasable attachment to a lower pad, wherein a lower surface of the lower pad is configured for releasable attachment to a working material; and wherein the perimeter portion includes a circumferential groove configured for releasable attachment to a suction ring.
20. The hand sanding tool of claim 19, wherein the circumferential groove is configured for releasable attachment to a bristle ring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0012] Various types of sanding tools exist for abrading different surfaces. Many sanding tools, such as belt sanders, random orbit sanders, rotary sanders, etc. are motorized (e.g., electrically powered). While being effective for quickly removing large amounts of surface material, such motorized sanders often have a reduced ability of the operator to precisely control the movement of the tool and/or pressure applied to the working surface, which can lead to a reduced uniformity of the target surface.
[0013] Therefore, various non-motorized sanding tools can be more effective for certain applications such as drywall sanding (e.g., wall and/or ceiling sanding), for example. The use of non-motorized sanding tools can provide benefits such as allowing an operator to precisely adjust the force applied, the direction of an abrading action, the amount of material abraded away, and the uniformity of abrasion based on feel.
[0014] Some non-motorized hand sanding tools are attached to an elongate pole used to maneuver the tool, while others may include a handle (e.g., knob) located closer to the working surface. Some non-motorized sanding tools include a port (e.g., an air intake) for coupling to a vacuum, which can be used to create a more dust free operating environment. Various non-motorized vacuum sanders may not work well with multiple different types of working materials. For instance, the dust free operation of some vacuum sanders may vary depending on whether a non-porous abrasive sheet or a more porous (e.g., mesh) sanding sheet is used.
[0015] Various embodiments of the present disclosure provide a sanding tool that can be configured to operate both with and without vacuum attachment. For example, various embodiments include a base plate that can be releasably attached to various different handles, which may or may not include a vacuum port. Embodiments of the present disclosure also include an intermediate adapter pad that can releasably engage with a rigid base plate in order to provide improved dust free operation for multiple different types of sanding abrasive sheets.
[0016]
[0017] The rigid base plate 102 includes a connection portion 101 that provides the ability for the base plate 102 to be releasably attached to various different sanding handles. One example sanding handle 230 is shown in
[0018] The intermediate adapter pad 104 is configured for releasable attachment to the rigid base plate 102. The pad 104 can be formed of an elastomeric polymer (e.g., a closed cell foam material such as ethylene-vinyl acetate (EVA)). As illustrated in
[0019] A lower surface of the adapter pad 104 is configured for releasable attachment to a lower pad 110, which is configured for releasable attachment to a working material 115, which can be a non-porous sanding sheet or a porous sanding sheet such as a mesh sanding disc. The releasable attachment can be via a fastening system such as hook and loop; although, embodiments are not so limited.
[0020] In various embodiments, the adapter pad 104 includes a bristle ring 108 attached thereto. In this example, the adapter pad 104 includes a channel (e.g., groove) 105 configured to receive an upper portion of the bristle ring 108. The bristle ring 108 can be releasably attached to the pad 104 via friction such that it can be removed and replaced without having to remove or replace the pad 104. A more detailed view of the attachment of the bristle ring 108 to the intermediate adapter pad 104 is shown in
[0021] The lower pad 110 includes a number of channels therethrough to facilitate dust removal from the working surface. The lower pad 110 includes a closed periphery, which can improve the dust free operation of the sanding tool. For instance, during vacuum operation, the suction at the perimeter region (e.g., between the outer edge of the pad 110 and the inner edge of the ring 108 can be improved as compared to instances in which channels through pad 110 extended to its periphery. In this example, the lower pad 110 includes an open center portion and a plurality of fingers 111 extending radially from the closed outer perimeter toward the center portion. Embodiments are not limited to the example pad 110 shown in
[0022] In various embodiments, the sanding tool shown in
[0023] Accordingly, the adapter pad 104 can be a standalone component that can be added to the sanding tool to provide an improved sanding capability with improved dust free operation. As one example, without the adapter pad 104, the sanding tool 100 may provide an acceptable level of dust free operation when the sanding material 115 is a non-porous sanding sheet/disc, but an unacceptable level of dust free operation when a porous mesh sanding disc 115 is used. Adding the adapter pad 104 to the sanding tool 100 can provide an acceptable and improved level of dust free operation for both a porous sanding disc (e.g., mesh) and a non-porous sanding disc.
[0024] In various embodiments, the sanding tool 100 is configured for being converted between at least a first configuration that includes the adapter pad 104 and a second tool configuration that does not include the adapter pad 104. For example, a first tool configuration can include the rigid base plate 102 being coupled to the adapter pad 104, and a second tool configuration can include an upper surface of the lower pad 110 being releasably attached to a lower surface of the rigid base plate 102; however, embodiments are not so limited.
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[0030] Similar to the bristle ring 108, the suction ring 109 can be releasably attached to the pad 104 via friction such that it can be removed and replaced without having to remove or replace the pad 104. The suction ring 109 can be formed of, for example, a material such as EPDM (i.e., a rubber material); although, embodiments are not so limited. The suction ring 109 can serve to improve suction of the tool 100 by sealing a perimeter of the one or more lower pads (e.g., 110) and/or of the working material 115. That is, when the tool 100 is in use with the suction ring 109, the ring 109 can be suctioned to the perimeter, which can force improved dust removal through holes within the lower pad 110 and/or working material 115 as opposed to dust removal at the tool perimeter. Use of the tool 100 with the suction ring 109 can be particularly beneficial for use with mesh working materials or disc abrasives having holes and/or slits therein.
[0031] As illustrated in
[0032] In various embodiments, the tool 100 shown in
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[0034] In the present disclosure, reference is made to the accompanying drawings that form a part hereof, and in which is shown by way of illustration how a number of examples of the disclosure can be practiced. These examples are described in sufficient detail to enable those of ordinary skill in the art to practice the examples of this disclosure, and it is to be understood that other examples can be used and that process, electrical, and/or structural changes can be made without departing from the scope of the present disclosure.
[0035] The figures herein follow a numbering convention in which the first digit corresponds to the drawing figure number and the remaining digits identify an element or component in the drawing. Elements shown in the various figures herein can be added, exchanged, and/or eliminated so as to provide a number of additional examples of the present disclosure. In addition, the proportion and the relative scale of the elements provided in the figures are intended to illustrate the examples of the present disclosure and should not be taken in a limiting sense. As used herein, the designator N, particularly with respect to reference numerals in the drawings, indicate that a number of the particular feature and/or component so designated can be included with a number of examples of the present disclosure. The designator N can refer to a same feature and/or component, or different features and/or components.
[0036] As used herein, a or a number of something can refer to one or more such things. For example, a number of widgets can refer to one or more widgets. Also, as used herein, a plurality of something can refer to more than one of such things.
[0037] The above specification, examples and data provide a description of the device, method, and use of the device and method of the present disclosure. Since many examples can be made without departing from the spirit and scope of the system and method of the present disclosure, this specification merely sets forth some of the many possible embodiment configurations and implementations.