ROTARY IMPACT TOOLS WITH NOISE REDUCTION MECHANISM
20200189086 ยท 2020-06-18
Inventors
Cpc classification
B25B21/02
PERFORMING OPERATIONS; TRANSPORTING
B25F5/001
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A power tool including a housing, a motor accommodated in the housing; and an output member connected to the motor via a transmission module. The transmission module is received in a substantially vacuum chamber in the housing. The vacuum chamber effectively reduces the propagation of noises generated by the transmission module to the outside of the power tool, thus improving the user experience.
Claims
1-9. (canceled)
10. A power tool comprising: a power tool housing; a motor having a motor housing supported within the power tool housing; a transmission housing coupled to the motor housing, the transmission housing supported within the power tool housing; a vacuum chamber defined at least partially by the motor housing and the transmission housing; a transmission positioned within the vacuum chamber, the transmission coupled to the motor for the motor to drive the transmission; and an output member coupled to the transmission for the transmission to drive the output member.
11. The power tool of claim 10, further comprising a valve configured to allow air to exit the vacuum chamber through the valve.
12. The power tool of claim 11, wherein the valve is coupled to the transmission housing.
13. The power tool of claim 12, wherein the valve is a check valve configured to inhibit air from entering the vacuum chamber through the check valve.
14. The power tool of claim 10, further comprising a first seal positioned between the motor housing and a shaft of the motor, wherein the first seal is configured to inhibit air from exiting the vacuum chamber between the shaft of the motor and the motor housing.
15. The power tool of claim 14, wherein the vacuum chamber is also defined by the output member, wherein a second seal is positioned between the transmission housing and the output member, and wherein the second seal is configured to inhibit air from exiting the vacuum chamber between the output member and the transmission housing.
16. The power tool of claim 15, wherein the output member is an anvil that interacts with an impact block.
17. A power tool comprising: a power tool housing; a motor supported within the power tool housing; a transmission coupled to the motor for the motor to drive the transmission; a chamber positioned within the power tool housing, the chamber sized to receive at least a portion of the transmission, the chamber including a first pressure, the first pressure configured to be less than a second pressure that is exterior of the power tool housing; and an output member coupled to the transmission for the transmission to drive the output member.
18. The power tool of claim 17, further comprising a transmission housing supported within the power tool housing, wherein the chamber is at least partially defined by the transmission housing.
19. The power tool of claim 18, wherein the motor includes a motor housing supported within the power tool housing, and wherein the chamber is at least partially defined by the motor housing.
20. The power tool of claim 17, further comprising a valve configured to allow air to exit the chamber through the valve.
21. The power tool of claim 20, wherein the valve is coupled to the transmission housing.
22. The power tool of claim 21, wherein the valve is a check valve configured to inhibit air from entering the chamber through the check valve.
23. The power tool of claim 18, wherein the chamber is also at least partially defined by a motor housing of the motor, wherein a first seal is positioned between the motor housing and a shaft of the motor, and wherein the first seal is configured to inhibit air from exiting the chamber between the shaft of the motor and the motor housing.
24. The power tool of claim 23, wherein the chamber is also at least partially defined by the output member, wherein a second seal is positioned between the transmission housing and the output member, and wherein the second seal is configured to inhibit air from exiting the chamber between the output member and the transmission housing.
25. The power tool of claim 24, wherein a third seal is positioned between the transmission housing and the motor housing, and wherein the third seal is configured to inhibit air from exiting the chamber between the transmission housing and the motor housing.
26. A method of manufacturing a power tool, the method comprising: positioning a transmission within a chamber of the power tool; coupling a motor to the transmission for the motor to drive the transmission; coupling an output member to the transmission for the transmission to drive the output member; and removing air from the chamber to form a first pressure within the chamber less than a second pressure that is exterior of the power tool.
27. The method of claim 26, wherein removing the air from the chamber includes removing the air from the chamber through a check valve.
28. The method of claim 26, further comprising inhibiting air from exiting the chamber by a first seal positioned between a motor housing that partially defines the chamber and a shaft of the motor.
29. The method of claim 28, further comprising inhibiting air from exiting the chamber by a second seal positioned between a transmission housing that partially defines the chamber and the output member.
Description
BRIEF DESCRIPTION OF FIGURES
[0017] The foregoing and further features of the present invention will be apparent from the following description of preferred embodiments which are provided by way of example only in connection with the accompanying figures, of which:
[0018]
[0019]
[0020]
[0021]
[0022] In the drawings, like numerals indicate like parts throughout the several embodiments described herein.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0023] In the claims which follow and in the preceding description of the invention, except where the context requires otherwise due to express language or necessary implication, the word comprise or variations such as comprises or comprising is used in an inclusive sense, i.e. to specify the presence of the stated features but not to preclude the presence or addition of further features in various embodiments of the invention.
[0024] Terms such as horizontal, vertical, upwards, downwards, above, below and similar terms as used herein are for the purpose of describing the invention in its normal in-use orientation and are not intended to limit the invention to any particular orientation.
[0025] Referring now to
[0026] The gear casing 20 is connected to the motor and the anvil 24 at two ends of the gear casing 20 since the transmission module in the gear casing 20 is intended to transform the raw motor output to a desired form of movement of the anvil 24. For example, the anvil 24 as an output member is adapted to rotate at a speed lower than that of the motor shaft 22 but with a much larger torque than that of the motor shaft 22. Alternatively or additionally, the anvil 24 is adapted to perform complex movements relative to the gear casing 20 such as forward rotation, reverse rotation, reciprocating axial movement, small-amplitude reciprocating swing, and instant start and stop. An output end of the gear casing 20, the anvil 24 is coupled to the gear casing 20 through washers 28 and bushings 26. The anvil 24 is adapted to rotate through the bushings 26 and the frictions between the anvil 24 and the gear casing 20 are reduced due to the washers 28. A dynamic seal 32 is present between the anvil 24 and the gear casing 20 as this type of seal could ensure its tightness under complex movements such as those mentioned between the anvil 24 and the gear casing 20, and the dynamic seal 32 is also necessary to be able to form an oil film (not shown) of sufficient thickness and to prevent excessive loss of lubricating oil (not shown).
[0027] On an input end of the gear casing 20, there is coupled a motor casing 36 and a static seal 38 between the gear casing 20 and the motor casing 36. The static seal 38 is simpler than the dynamic seal 32 since the relative movement between the motor casing 36 and the gear casing 20 is small. A motor pinion 34 which is connected to an end of the motor shaft 22 protrudes from the motor casing 36 into the gear casing 20. The motor pinion 34 is movable relative to the gear casing 20, for example the motor pinion 34 is capable of rotating continuously in either forward or reverse direction. Bushings 26 are present between the motor shaft 22 and the motor casing 36 to form a groove (not shown) for a dynamic seal 32 between the motor casing 36 and the motor pinion 34 to be received. The dynamic seal 32 between the motor casing 36 and the motor pinion 34 have similar design requirements as those of the dynamic seal 32 between the anvil 24 and the gear casing 20.
[0028] On the gear casing 20 there is also an air valve 30 which connects the vacuum chamber 21 to the atmosphere. The air valve 30 is preferably a check valve which is supposed to extract air from the vacuum chamber 21 when the air valve 30 is opened and which can seal the vacuum chamber 21 for a long time when it is closed, and which would resist vibration.
[0029]
[0030] Now turning to the operation of the rotary impact tool described above, during the operation noises may be generated from various sources including includes teeth-to-teeth meshing within the gear box, the impact between the anvil 24 and an impact block (not shown) in the vacuum chamber which is driven by the motor pinion 34. The vacuum chamber 21 could isolate impact noises along most of the directions, and noise is only transmitted from two components which are the motor pinion 34 and anvil 24 to the air, which greatly reduces the number of sound propagation paths and reduces the impact noise of the tool.
[0031] Turning now to
[0032] The exemplary embodiments of the present invention are thus fully described. Although the description referred to particular embodiments, it will be clear to one skilled in the art that the present invention may be practiced with variation of these specific details. Hence this invention should not be construed as limited to the embodiments set forth herein.
[0033] While the invention has been illustrated and described in detail in the drawings and foregoing description, the same is to be considered as illustrative and not restrictive in character, it being understood that only exemplary embodiments have been shown and described and do not limit the scope of the invention in any manner. It can be appreciated that any of the features described herein may be used with any embodiment. The illustrative embodiments are not exclusive of each other or of other embodiments not recited herein. Accordingly, the invention also provides embodiments that comprise combinations of one or more of the illustrative embodiments described above. Modifications and variations of the invention as herein set forth can be made without departing from the spirit and scope thereof, and, therefore, only such limitations should be imposed as are indicated by the appended claims.
[0034] It is to be understood that, if any prior art publication is referred to herein, such reference does not constitute an admission that the publication forms a part of the common general knowledge in the art, in Australia or any other country.
[0035] The detailed descriptions made to the preferred embodiments are by reference to a rotary impact tool. However, one skilled in the art should realize that the invention may also be applied to any other type of power tools, either electric or non-electric, as long as noises from an internal chamber of a component needs to be eliminated or reduced.
[0036] In addition, to better reduce the impact noise, in some variations of the invention the anvil can be split into two or more blocks with intermediate damper(s) connecting these blocks. Additionally or alternatively, the central bore of the anvil can be made larger so as to reduce the area of the cross-section of the anvil which otherwise facilitates transmission of the noise, provided that the strength of the anvil is guaranteed. The surfaces of the bushings) and washer(s) can be wrapped with a wear-resistant, sound-proof polymer material that prevents vibrational noise on the anvil from being transmitted to the atmosphere directly through the gear casing.