The present invention relates to a hand-held power tool gearbox closure including a base body for closing a gearbox housing opening of a gearbox housing of a hand-held power tool, in particular of a hammer drill or a combi-hammer. The present invention also relates to a hand-held power tool including a hand-held power tool gearbox closure.
A striking mechanism including a piston, a connecting rod and a snap-die may be situated inside the gearbox housing of a typical hand-held power tool. These are lubricated by a lubricant, such as a gearbox oil, present in the gearbox housing in order to work together in a preferably low-friction manner. The lubricant is typically introduced into the gearbox housing via the gearbox housing opening. To prevent the lubricant from exiting the gearbox housing, the gearbox housing opening is closed by a base body of a hand-held power tool gearbox 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 gearbox closure which favors an increased service life of a hand-held power tool. It is also the object of the present invention to provide a hand-held power tool including a thus improved hand-held power tool gearbox closure.
With respect to the hand-held power tool gearbox closure, the object is achieved in that the hand-held power tool gearbox closure includes an air channel through which air is able to flow into and out of the gearbox channel, and the hand-held power tool gearbox closure includes a pressure valve situated in the air channel, via which an overpressure occurring in the gearbox housing may be relieved. Preferably, an underpressure occurring in the gearbox housing may be compensated via the pressure valve.
Air, which due to the power tool operation, and specifically due to heating of the lubricant present in the gearbox housing, may now advantageously escape from the gearbox housing.
The present invention includes the finding that, due to the closed design of a gearbox housing and its closing with the aid of a base body having no air channel, the internal pressure of a gearbox housing rises to an undesirably high pressure level during the operation of the power tool. A high pressure level is disadvantageous for the service life, and in particular also for the operating performance data, for example the delivered striking energy of the hand-held power tool. The hand-held power tool closure according to the present invention helps to eliminate these disadvantages in that a gearbox internal pressure is regulatable.
In one preferred embodiment, the pressure valve is situated inside the hand-held power tool gearbox closure and may be designed as an elastic hose element. A relief of an overpressure occurring in the gearbox housing is preferably accompanied by an elastic deformation of the elastic hose element. The pressure valve designed as an elastic hose element may be installed into the hand-held power tool gearbox closure in a pretensioned state. Advantageously, the pressure valve designed as an elastic hose element is made of silicone.
The pressure valve may be designed in such a way that it does not open until a predetermined pressure difference, for example 2 bar, between the ambient pressure and the gearbox pressure is exceeded. This is advantageous, for example, when the power tool includes an electropneumatic striking mechanism for which a setpoint overpressure is desirable.
It has proven advantageous that the hand-held power tool gearbox closure have a cover part including ventilation openings. The cover part preferably projects into the base body, the pressure valve designed as an elastic hose element in particular being supported both against the base body and against the cover.
In one particularly preferred embodiment, the hand-held power tool gearbox closure includes an air-permeable, and in particular essentially gearbox oil-tight, sealing element. The sealing element is preferably situated in the air channel. The inventor recognized in this regard that a lubricant, in particular oil, must not leak from a gearbox housing since otherwise the lubricating performance decreases on the one hand, and the surface of the power tool visible to the user becomes soiled on the other hand. An air-permeable and gearbox oil-tight sealing element ensures pressure equalization on the one hand, and prevents oil from exiting the gearbox housing on the other hand.
It has proven to be advantageous that the sealing element be made up of felt or at least include felt. The sealing element may be made of up a dense textile fibrous material. It has furthermore proven to be advantageous that the sealing element be situated beneath the pressure valve at least in sections when the hand-held power tool gearbox closure is in its intended installation situation.
The base body and/or the cover part preferably has a rotation-symmetrical design. In this way, cost-effective production on a lathe is possible. In order to enable a uniformly distributed flow of air through the ventilation openings, the ventilation openings are preferably annularly situated on a surface of the cover part.
In one further preferred embodiment, the base body includes a trough-shaped section, which is preferably situated opposite the cover part, and further preferably projects into the gearbox housing, when the base body closes the gearbox housing opening. The trough-shaped section of the base body may include an opening borehole, via which an air volume may enter or exit the air channel. The trough-shaped section of the base body may have a rotation-symmetrical design. The opening borehole is preferably designed as a through-hole along a secant of the rotation-symmetrically designed trough-shaped section of the base body.
In one preferred embodiment, the base body includes a sealing ring, which is situated to seal the base body circumferentially with respect to the gearbox housing opening. The base body is preferably designed as a plug. A plug function of the base body may be effectuated, for example, by a sealing ring provided on the base body. As an alternative or in addition, the base body may include lamellae, which are designed to hold the base body in a gearbox housing opening in a force-fit manner.
With respect to the hand-held power tool, the object is achieved in that the hand-held power tool includes an above-described hand-held power tool gearbox closure.
Further advantages are derived from the following description of the drawings. The drawings show one exemplary embodiment of the present invention, and the drawing, the description and the claims include numerous features and combinations. Those skilled in the art will advantageously also consider the features individually and combine them into useful further combinations.
Hand-held power tool gearbox closure 10 in
In the present example, pressure valve 3 is situated inside hand-held power tool gearbox closure 10 and designed as an elastic hose element made of silicone. Pressure valve 3 designed as an elastic hose element is situated coaxially with respect to rotation-symmetrically designed base body 1 of hand-held power tool gearbox closure 10.
Furthermore, hand-held power tool gearbox closure 10 has a cover part 2, which includes a ventilation opening 2′ on its surface. Ventilation opening 2′ is not apparent in the sectional illustration of
As is apparent from
A sealing element 8, which in the present example is made of felt and has a rotation-symmetrical design, is situated coaxially with respect to pressure valve 3. Air-permeable and essentially gearbox oil-tight sealing element 8 is situated on its bottom side flush with pressure valve 3. Air-permeable and gearbox oil-tight sealing element 8 ensures pressure equalization on the one hand, and prevents oil from exiting gearbox housing 80, for example in the form of oil vapor, on the other hand.
Hand-held power tool gearbox closure 10 includes a sealing ring 6, which is situated to seal base body 1 circumferentially with respect to shown gearbox housing opening 70.
Base body 1 includes a trough-shaped section 1′ in which an opening borehole 1″ is situated. This opening borehole 1″ similarly forms an inlet for air channel L of the hand-held power tool gearbox closure, air channel L extending through hand-held power tool gearbox closure 10 up to ventilation opening 2′ in cover part 2.
Pressure valve 3, which is installed into hand-held power tool gearbox closure 10 in a pretensioned manner and designed as an elastic hose element, is pressed against a valve seat 3′, which forms part of cover part 2 as well as part of base body 1.
Based on the sectional illustration of hand-held power tool gearbox closure 10 selected in
Hereafter, air channel L, which extends through hand-held power tool gearbox closure 10, is described in greater detail with reference to
As is also apparent from
A hand-held power tool 100 according to the present invention including a hand-held power tool gearbox closure 10 is shown in
Number | Date | Country | Kind |
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14194231.8 | Nov 2014 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2015/077204 | 11/20/2015 | WO | 00 |