BACKGROUND OF THE INVENTION
Field of the Invention
[0001] The present invention relates to a rotary polishing tool which is driven by an electric
motor for polishing a workpiece.
Description of the Prior Art
[0002] Such rotary polishing tools conventionally used include one comprising a disk-shaped
polishing portion corresponding to a workpiece and a disk-shaped substrate made of
resin for supporting the polishing portion with the polishing portion being bonded
thereto. The polishing work using such a rotary polishing tool is performed by mounting
this tool on a driving shaft of an electric motor and rotating the same to press the
above polishing portion against the workpiece.
[0003] Meanwhile, during the above described work, the tool is rotated at high peripheral
speed of, for example, a maximum of approximately 80 m/s. Consequently, a substantially
large centrifugal force is developed in this tool. In addition, a large reaction force
is applied to this tool from the workpiece. Accordingly, it is particularly desired
that the above substrate has sufficient strength.
[0004] Therefore, it is considered that the above substrate is made of metal to improve
the strength thereof. If this substrate is merely a metal plate, however, such problems
arise that the tool becomes heavy and the centrifugal force becomes the larger.
[0005] Furthermore, if the above metal plate is merely flat, there is a possibility that
a part of the polishing portion is stripped off from the substrate by an impact force
applied to the polishing portion from the workpiece during the work, resulting in
insufficient strength to support the polishing portion by the substrate.
SUMMARY OF THE INVENTION
[0006] A first object of the present invention is for a tool to have sufficient strength
to oppose a centrifugal force and a reaction force which is applied from a workpiece.
[0007] A second object of the present invention is to prevent a tool from being heavy even
if the tool has the above described strength.
[0008] A third object of the present invention is for a polishing portion constituting a
tool to be supported by a substrate while holding sufficient strength.
[0009] According to the present invention, a rotary polishing tool comprises a disk-shaped
polishing portion corresponding to a workpiece and a disk-shaped substrate which is
positioned on the rotary center of the polishing portion for supporting the polishing
portion. The substrate is provided with a mounting hole through which a driving shaft
is passed on this rotary center. The above substrate is made of metal and is provided
with a lot of holes, and there is provided a rubber layer which is interposed between
the polishing portion and the substrate and vulcanized and bonded to the polishing
portion and the substrate to fix the polishing portion and the substrate to each other.
[0010] The foregoing and other objects, features, aspects and advantages of the present
invention will become more apparent from the following detailed description of the
present invention when taken in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
Figs. 1 and 2 are diagrams showing a first embodiment, where Fig. 1 is a plan view
and Fig. 2 is a sectional side elevation view;
Fig. 3 is a sectional side elevation view showing a second embodiment;
Fig. 4 is a sectional side elevation view showing a third embodiment;
Fig. 5 is a sectional side elevation view showing a fourth embodiment; and
Fig. 6 is a sectional side elevation view showing a fifth embodiment.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0012] Figs. 1 and 2 show a first embodiment.
[0013] In Figs. 1 and 2, reference numeral 1 denotes a rotary polishing tool. This rotary
polishing tool 1 has a disk-shaped polishing portion 3 corresponding to a workpiece
2 and a substrate for supporting the polishing portion 3. This substrate 4 is positioned
on a rotary center 3a of the above polishing portion 3, and has a disk shape and an
approximately circular truncated conical shape.
[0014] The above polishing portion 3 is made of a rubber material having abrasive grains
included therein. On the other hand, the above substrate 4 is a metal plate made of
iron and is provided with a lot of circular holes 5. Although the holes 5 are formed
almost uniformly throughout the substrate 4, they are illustrated only in a part of
the substrate 4 in Fig. 1.
[0015] A rubber layer 6 is interposed between the polishing portion 3 and the substrate
4. This rubber layer 6 is vulcanized and bonded to the polishing portion 3 and the
substrate 4, to fix the polishing portion 3 and the substrate 4 to each other.
[0016] In Figs. 1 and 2, reference numeral 6a denotes a boundary surface of the above rubber
layer 6 and the above polishing portion 3. Since the above polishing portion 3 is
also made of a rubber material as described above, however, the polishing portion
3 and the rubber layer 6 are simultaneously vulcanized and bonded to the substrate
4, to be integrated with each other. Therefore, the above boundary surface 6a does
not, in fact, clearly exist.
[0017] A glass fiber 7 is embedded in the above rubber layer 6 so that they are integrated
with each other, thereby to strengthen the rubber layer 6.
[0018] The above substrate 4 is provided with a circular mounting hole 8 on the above rotary
center 3a. In addition, the polishing portion 3 is also provided with another mounting
hole 8a connected to the above mounting hole 8. The above described holes 5 are formed
in a portion other than the outer periphery of the substrate 4 and the periphery of
the mounting hole 8. More specifically, both the outer and inner peripheries of the
substrate 4 have a continuously circular shape, so that the decrease in strength of
the substrate 4 due to the formation of the holes 5 is effectively restrained.
[0019] At the time of the polishing work, a driving shaft 10 of a handy electric motor 9
is first passed through the above mounting hole 8 and the other mounting hole 8a and
a flanged nut 11 is screwed into the driving shaft 10, thereby to mount the rotary
polishing tool 1 on the above driving shaft 10. The rotary polishing tool 1 is then
rotated by driving of the electric motor 9. If the polishing portion 3 is pressed
against the above workpiece 2, this workpiece 2 is polished.
[0020] Meanwhile, for convenience of forming, the above rubber layer 6 may be made of exactly
the same material as that of the polishing portion 3, that is, the polishing portion
3 and the rubber layer 6 may be integrally formed using a rubber material having abrasive
grains included therein. In this case, the above boundary surface 6a does not exist.
[0021] In the above described construction, the substrate 4 for supporting the polishing
portion 3 is made of metal and is further formed in an approximately circular truncated
conical shape. Accordingly, the strength of the rotary polishing tool 1 can be considerably
improved, as compared with the conventional case where the substrate 4 is made of
resin. Consequently, this rotary polishing tool 1 has sufficient strength to oppose
a centrifugal force and a reaction force which is applied from the workpiece 2.
[0022] Furthermore, since the holes 5 are formed in the above substrate 4, the substrate
4 can be prevented from being heavy uselessly. Accordingly, the rotary polishing tool
1 can be lightweight while sufficiently holding the strength.
[0023] Additionally, there is provided the rubber layer 6 which is interposed between the
polishing portion 3 and the substrate 4 and vulcanized and bonded to the polishing
portion 3 and the substrate 4 to fix the polishing portion 3 and the substrate 4 to
each other. Accordingly, when the polishing portion 3 is brought into contact with
the workpiece 2 so that an impact force is applied to the polishing portion 3 from
the workpiece 2, this impact force is absorbed by the above rubber layer 6. Consequently,
a part of the polishing portion 3 can be prevented from being stripped off from the
substrate 4 by the above impact force. That is, the polishing portion 3 is supported
by the substrate 4 while holding sufficient strength.
[0024] Moreover, the above polishing portion 3 is firmly bonded to the lower surface of
the substrate 4 through the rubber layer 6 strengthened by the glass fiber 7. In addition,
the rubber layer 6 enters the above holes 5 at the time of vulcanization, thereby
to sufficiently strength the above bonding. Consequently, also in this point, the
polishing portion 3 is supported by the substrate 4 while holding sufficient strength.
[0025] Meanwhile, it is not necessary that the glass fiber 7 is provided and the nut 11
is flanged.
[0026] The following drawings show the other embodiments. Common reference numerals are
assigned to constituent elements which are common to the embodiments and the above
described first embodiment. The description of the common constituent elements and
the functions concerning the constituent elements are omitted and hence, only different
constituent elements and functions will be described.
[0027] Fig. 3 shows a second embodiment.
[0028] According to the second embodiment, a substrate 4 is embedded in a rubber layer 6
so that they are integrated with each other. By doing so, the adhesive strength of
a polishing portion 3 to the substrate 4 is further improved.
[0029] Fig. 4 shows a third embodiment.
[0030] According to the third embodiment, a reinforcing pipe 13 made of metal is fitted
in the inner peripheral surface of another mounting hole 8a. This pipe 13 is formed
by squeezing a substrate 4 using a press. This pipe 13 may be welded to the substrate
4. In addition, a nut 14 is welded to the lower end of the above pipe 13.
[0031] The nut 14 is screwed into a driving shaft 10 of an electric motor 9 to screw the
pipe 13 on the driving shaft 10, thereby to mount a rotary polishing tool 1 on the
electric motor 9. In this case, the above pipe 13 prevents a polishing portion 3 and
a rubber layer 6 from being deformed. In addition, the tool 1 is firmly mounted on
the electric motor 9 by screwing the above pipe 13 on the driving shaft 10, to reliably
prevent the vibration caused when a centrifugal force is developed.
[0032] Furthermore, the polishing portion 3 and the rubber layer 6 are sandwiched between
the substrate 4 and the nut 14 in the periphery of the other mounting hole 8a. Consequently,
the polishing portion 3 is supported by the substrate 4 more reliably. Meanwhile,
the nut 14 and the pipe 13 may be separately formed.
[0033] Fig. 5 shows a fourth embodiment.
[0034] According to the fourth embodiment, annulus ring portions 15 are respectively formed
in opening edges of holes 5 and a mounting hole 8 by press working of the opening
edges. The annulus ring portions 15 are respectively projected into a rubber layer
6 from a substrate 4. Consequently, the strength of the substrate 4 is improved, and
bonding of the rubber layer 6 to the substrate 4 is further strengthened. Meanwhile,
the amount of projection of each of the above annulus ring portions 15 is approximately
0.5 to 1 mm.
[0035] Fig. 6 shows a fifth embodiment,
According to the fifth embodiment, a nut 17 is fitted in the inner peripheral surface
of each of a mounting hole 8 and another mounting hole 8a and is welded to a substrate
4, to reinforce a rotary polishing tool 1.
[0036] Furthermore, a polishing portion 3 is constituted by a lot of pieces of abrasive
paper or abrasive felt which are radially disposed around a rotary center 3a. A part
of the polishing portion 3 is embedded in a rubber layer 6 so that the polishing portion
3 is bonded to the rubber layer 6.
[0037] Although the present invention has been described and illustrated in detail, it is
clearly understood that the same is by way of illustration and example only and is
not to be taken by way of limitation, the spirit and scope of the present invention
being limited only by the terms of the appended claims.
1. A rotary polishing tool (1) comprising a disk-shaped polishing portion (3) corresponding
to a workpiece (2) and a disk-shaped substrate (4) which is positioned on the rotary
center (3a) of the polishing portion (3) for supporting the polishing portion (3),
the substrate (4) being provided with a mounting hole (8) through which a driving
shaft (10) is passed on the rotary center (3a),
the rotary polishing tool (19 being characterized in that said substrate (4) is
made of metal and is provided with a lot of holes (5), and there is provided a rubber
layer (6) which is interposed between said polishing portion (3) and said substrate
(4) and vulcanized and bonded to the polishing portion (3) and the substrate (4) to
fix the polishing portion (3) and the substrate (4) to each other.
2. A rotary polishing tool (1) according to claim 1, wherein the polishing portion (3)
is made of a rubber material having abrasive grains included therein so that the polishing
portion (3) and the rubber layer (6) are made of the same material.
3. A rotary polishing tool (1) according to claim 1, wherein said substrate (4) is formed
in an approximately circular truncated conical shape.
4. A rotary polishing tool (1) according to any one of claims 1, 2 or 3, wherein the
holes (5) are formed in a circular shape.
5. A rotary polishing tool (1) according to claim 1, wherein a glass fiber (7) is embedded
in said rubber layer (6) to strengthen the rubber layer (6).
6. A rotary polishing tool (1) according to claim 1, wherein the substrate (4) is embedded
in the rubber layer (6).
7. A rotary polishing tool (1) according to claim 1, wherein the polishing portion (3)
is provided with another mounting hole (8a) so as to be connected to the mounting
hole (8), and a reinforcing pipe (13) is fitted in the inner peripheral surface of
said another mounting hole (8a) (Fig. 4).
8. A rotary polishing tool (1) according to claim 1, wherein each of opening edges of
the mounting hole (8) and the holes (5) is projected into the rubber layer (6).
9. A rotary polishing tool (1) according to claim 2, wherein the polishing portion (3)
is made of an abrasive paper.
10. A rotary polishing tool (1) according to claim 1, wherein the polishing portion (3)
is made of abrasive felt.