The present invention relates to a hand-held power tool transmission closure, which includes a base body for closing a transmission housing opening of a transmission housing of a hand-held power tool, in particular a hammer drill or a combi hammer. The present invention also relates to a hand-held power tool which includes a hand-held power tool transmission closure.
A hammer mechanism, including a piston, a connecting rod as well as a striker, may be situated within the transmission housing of a typical hand-held power tool. These are lubricated by a lubricant present in the transmission housing, for example a transmission oil, for the purpose of interacting preferably with little friction. The lubricant is typically introduced into the transmission housing via the transmission housing opening. To prevent the lubricant from exiting the transmission housing, the transmission housing opening is closed by a base body of a hand-held power tool transmission closure. The base body may be designed as a plug.
It is an object of the present invention to provide an improved hand-held power tool transmission closure, which promotes a longer service life of a hand-held power tool. Another alternate or additional object of the present invention is to provide a hand-held power tool, which includes a hand-held power tool transmission closure improved in this manner.
With regard to the hand-held power tool transmission closure, the present invention provides that the hand-held power tool transmission closure includes a tube protruding from the base body, which extends in the transmission housing when the base body closes the transmission housing opening. The hand-held power tool transmission closure has an air channel, which extends through the base body in a first air channel section and extends through the tube in a second air channel section, so that an air mass is able to flow through the air channel into and out of the transmission housing.
An air mass, which is expanded due to the power tool operation and, in particular, by heating the lubricant present in the transmission housing, is now advantageously able to escape from the transmission housing. Due to the tube according to the present invention protruding from the base body, an undesirable exit of the lubricant from the transmission housing is avoided.
The present invention includes the finding that a lubricant, in particular oil, may not escape from a transmission housing, since the lubricating capacity decreases, on the one hand, and the surface of the power tool visible to the user becomes dirty, on the other hand. The present invention also includes the finding that, due to the closed design of a transmission housing and its closure with the aid of a base body, without an air channel the internal pressure of a transmission housing increases to an undesirably high pressure level during the operation of the power tool. A high pressure level is detrimental to the service life and, in particular, to the performance data, for example the impact energy output by the hand-held power tool. The hand-held power tool transmission closure according to the present invention contributes to the elimination of these disadvantages.
In one preferred embodiment, the tube has an inner diameter between 0.2 mm and 0.8 mm. The inner diameter may be between 0.4 mm and 0.6 mm. It has proven to be particularly advantageous if the inner diameter of the tube is 0.5 mm. Due to an inner diameter selected in this way, a pressure pulsation occurring in the transmission housing during the course of operating the power tool is advantageously effectively attenuated.
For the purpose of improving the temperature stability, it has proven to be advantageous if the tube is made from metal. Alternatively, the tube may be made from a temperature-resistant plastic or similar.
To facilitate an additional safety reserve for a lubricant-free air exchange through the hand-held power tool transmission closure according to the present invention, it has proven to be advantageous if the tube protrudes from the base body in such a way that it ends in the vicinity of a hammer mechanism situated in the transmission housing when the base body closes the transmission housing opening. The tube preferably ends in the vicinity of a connecting rod of the hammer mechanism. The tube may protrude from the base body in such a way that it extends up to the movement axis of the connecting rod without engaging with the range of motion of the connecting rod, i.e., in particular without coming into contact with the connecting rod.
It has proven to be advantageous if the tube is dimensioned, in particular with regard to length, inner diameter and/or angle of protrusion from the base body, in such a way that a capillary rise of lubricant within the tube is avoided. For example, if a typical transmission oil is present within the transmission housing, which has a viscosity of 5 to 20 mm2/s at 100° C., a density between 850 kg/m3 and 900 kg/m3 at 20° C. as well as a surface tension of 20 to 30 N/m at 100° C., the preferred inner diameter of the tube of 0.5 mm is already sufficiently large to prevent a disadvantageous capillary rise of the transmission oil in the tube.
In one particularly preferred embodiment, the hand-held power tool transmission closure includes a pressure valve situated in the first air channel section. An overpressure occurring in the transmission housing may be decreased via the pressure valve. An underpressure occurring in the transmission housing may preferably be compensated for via the pressure valve.
The pressure valve may be designed as a plate-shaped diaphragm having a central opening, which is preferably situated on a journal, in particular on a centrally situated journal of the base body. This results in a particularly robust and also easily mountable pressure valve. The plate-shaped diaphragm may be made from an elastomer material, a rubber or another elastically deformable material, or it may at least include a material of this type.
The pressure valve may be designed in such a way that it opens only upon exceeding a predetermined pressure difference, for example 2 bar, between the ambient pressure and the transmission pressure. This is advantageous, for example, if the power tool includes an electro-pneumatic hammer mechanism, for which a setpoint overpressure is desirable.
The base body also preferably includes an annular pressure distribution chamber, which is closed by the pressure valve designed as a plate-shaped diaphragm, in particular when the transmission internal pressure and the ambient pressure (air pressure outside the transmission housing) are essentially the same.
In one preferred embodiment, the base body includes a sealing ring, which is situated to seal the base body circumferentially with respect to the transmission housing opening.
The base body is preferably designed as a plug. A plug function of the base body may be implemented, for example, by a sealing ring provided on the base body. Alternatively or additionally, the base body may include ribs which are designed to hold the base body in a transmission housing opening in a force-fitting manner.
With regard to the hand-held power tool the object is achieved in that the hand-held power tool includes a hand-held power tool transmission closure described above.
Further advantages result from the following description of the figures. The figures illustrate different exemplary embodiments of the present invention. The figures, the description and the claims contain numerous features in combination. Those skilled in the art will advantageously also consider the features individually and combine them to form other reasonable combinations.
In the figures, identical and equivalent components are provided with identical reference numerals.
A hand-held power tool transmission closure 10 in
In the present case, tube 2 has an inner diameter D of 0.5 mm. Since tube 2 protrudes from the underside of base body 1, tube 2 extends within the transmission housing when base body 1 closes a transmission housing opening. A sealing ring 6, which in the present case is made from an elastically deformable rubber, is situated circumferentially on base body 1.
As illustrated in
Due to pressure valve 3, an air mass LM may escape from the transmission housing, which is illustrated by the dashed line with arrow pointing away from base body 1. Moreover, an air mass LM is able to enter the transmission housing, from the transmission surroundings via pressure valve 3, which is indicated by the dashed line with arrow pointing in the direction of tube 2. The pressure regulating function of pressure valve 3 is explained in greater detail farther below with reference to
As is also apparent from
Section A-A illustrated in
A hand-held power tool 100 is illustrated in
Number | Date | Country | Kind |
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14194224 | Nov 2014 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2015/077192 | 11/20/2015 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2016/079284 | 5/26/2016 | WO | A |
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Number | Date | Country | |
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20170334057 A1 | Nov 2017 | US |