The invention relates to an accumulator for hand-held electromechanical tools; the accumulator has a plurality of accumulator cells that are electrically connected to one another. The invention also relates to an electromechanical tool equipped with an accumulator according to the invention.
The term “electromechanical tools” refers to all hand-held, portable, electrically operated hand tools in which a motor constitutes a usually inseparable component of the tool. It relates, for example, to power drills, cordless screwdrivers, circular saws, jigsaws, angle grinders, other grinding machines, and, depending on their design, various garden appliances such as electric hedge trimmers. Accumulators and batteries for these tools should have the highest possible capacity, the lowest possible weight, take up the least possible amount of space, and should also be inexpensive to manufacture.
In particular, accumulators or battery packs for electromechanical tools with high energy demands should be rechargeable in the shortest possible amount of time in order, when used in alternation with a second accumulator, to achieve a virtually continuous use of the tool. In order to achieve a sufficient service life of the accumulators, it is necessary to take into account specific limit values of the accumulator, in particular a charging and discharging temperature and a charging and discharging current. To this end, it is necessary to obtain correspondingly reliable measurement values from the accumulator.
In the prior art, electrical connections of accumulator cells and battery pack cells inside the accumulator are embodied in the form of separate cell connectors. Particularly in accumulators equipped with a plurality of accumulator cells, this results in a high level of assembly complexity, problems with positioning the cell connectors onto the poles of the accumulator cells, quality problems with the accumulators, and in subsequent use, an increased probability of accumulator failure. In addition, electrical connections of accumulator cells inside the accumulator are as a rule laid out so that the electrical cell connectors do not overlap. This sometimes requires additional cable connections inside the accumulator, which requires an unnecessarily large amount of space inside the accumulator. In this case, particularly short cables that are used to avoid or bypass overlapping of cell connectors are either almost impossible to implement from a technical standpoint or can only be implemented with a high degree of assembly complexity.
The object of the invention is to disclose an improved accumulator. In particular, one object of the invention is on the one hand to obtain measurement values from an interior of the accumulator and on the other hand, to achieve a space-saving electrical cell connection inside the accumulator in which an overlapping of the cell connectors can be allowed and to disclose a rugged and inexpensive accumulator that can be quickly manufactured without losses in quality. Another object of the invention is to achieve an electromechanical tool equipped with an accumulator according to the invention.
The object of the invention is attained by means of an accumulator according to claim 1 and an electromechanical tool according to claim 10.
A cell connector according to the invention for an accumulator according to the invention has an electrical insulation and the electrical insulation is equipped with an electronic component. By means of the electronic component, it is possible, for example, to obtain measurement values from an interior of the accumulator and/or to provide a set of accumulator-protecting electronics inside the accumulator.
In preferred embodiments of the invention, the electronic component is a resistive, inductive, capacitive, or piezoelectric sensor. Preferable examples include temperature sensors, pressure sensors, and magnetic field sensors.
In a preferred embodiment of the invention, the sensor is an NTC temperature sensor that monitors the temperature of a cell connector inside the accumulator by means of a temperature-dependent resistor embodied with a negative temperature coefficient. A temperature monitoring that can be implemented with it protects the accumulator from overloading, which extends the service life of the accumulator. In addition, the temperature monitoring can issue a warning if the accumulator becomes too hot or too cold, which can also be used during an operation of the tool.
The electronic component can be provided in an arbitrary location inside, partially inside, or on the electrical insulation of the cell connector. Particularly when embodied as a temperature sensor, the electronic component is preferably in direct contact with the electrical cell connector or an interior of the accumulator. In particular, this enables temperature information from the interior of the accumulator to be detected quickly, directly, and with very little time delay. In this case, it is preferable for the electronic component to be provided in the vicinity of or as close as possible to a pole of an accumulator cell of the accumulator since the accumulator cells give off the greatest amount of heat at their poles.
According to the invention, an electrical cell bridging, for example, in which a cell connector reaches across and bridges over another in an electrically insulating fashion, can be equipped with the electronic component. In addition, for example, an electrical cell connector frame that has a plurality of cell connectors can be equipped with the electronic component.
The cell connector according to the invention, which produces an electrical contact between accumulator cells or between an accumulator cell and another current-carrying element, preferably has plastic injection molded onto, around, or behind it. It is thus possible to implement cell connectors that are insulated in relation to one another in a very small amount of space. Furthermore, the plastic element on the cell connector can be used to achieve a heat transfer to adjacent housing parts or to the outside, without coming into conflict with norms and regulations regarding touchability of current-carrying parts. This simplifies an assembly of the cell connector on/in the accumulator in that a single component is produced, composed for example of a plurality of cell connectors together with a cell connector frame. According to the invention, the electronic component is provided on the electrical insulation of the cell connector
In addition to obtaining the most direct possible measurement values from an interior of the accumulator, another advantage of the invention is that it takes up no space, or as little space as possible, inside the accumulator.
Other embodiments of the invention ensue from the remaining dependent claims.
The invention will be explained in detail below in conjunction with exemplary embodiments and with reference to the accompanying drawings.
The invention will be described in greater detail below in conjunction with an accumulator for hand-held electromechanical tools. The invention is not, however, limited to such hand-held tools, but should apply to accumulators in general. For example, the invention can be used on accumulators for motor vehicles with internal combustion engines or drive units of electrically powered vehicles. It is also possible, for example, to use the invention on accumulators for portable electronic devices, drive units such as those used in model-building, mobile telephones, cameras, and the like.
When the term “cell connector” is used below, it should be understood to also include the term “cell connection” for a pole of the accumulator, i.e. the invention also relates to the section of an accumulator in which the cell connector is visible in the form of an accumulator pole on an outer surface of the accumulator. In addition, dashed lines in the drawing indicate edges that are not visible.
According to the invention, the electrical insulation 22 has an electronic component 200, e.g. a set of accumulator-protecting electronics 200 or a sensor 200. In the exemplary embodiment shown in
The electronic component 200 built into the interior of the accumulator 1 can be any component that is suitable for use in an accumulator 1. It is thus possible, for example, to provide a set of protective electronics 200 that takes care of the entire accumulator 1 or only part of the accumulator cells 10 of the accumulator 1. Other suitable components include sensors 200 that are able to determine certain measurement values such as a temperature, a pressure, or an electrical value. A preferred component in this context is a temperature sensor 200 that is embodied in the form of a contact thermometer. In principle, passive and active sensors 200 are suitable for this. In order to produce a signal, passive sensors require an auxiliary power source that is connected to the sensor 2 via the line 202.
The longitudinal end sections of the electrical cell bridging 30 according to the invention are provided with contact sections 102 that are used to produce an electrical contact. In this case, the contact sections 102 can contact two electrical poles 12, for example, of two different accumulator cells 10 (not shown). In the exemplary embodiment shown, a contact section 102 is embodied in the form of a tab 102 to which another contacting section 102 or an electrical cable (not shown) can be connected.
Preferably, the electrical cell bridging 30 has at least one fastening section 34 by means of which it is able to rest against a pole side of the accumulator cell 10. In this case, the fastening section 34, embodied as the negative form of an end section of an accumulator cell 10, is preferably formed into the electrical insulation 32 of the cell bridging 30. In this case, this formed-in section preferably contains a recess for the contact section 102 of the second cell connector 100, as shown in
The electrical cell bridging 30 can have recesses, particularly in its corner regions, in order to be able to provide a housing of the accumulator 1 that rests as intimately as possible against an accumulator cell 10.
In the other embodiments of the invention, it is likewise preferable if the relevant contact section 102 is connected to the accumulator cell 10 by means of one or two weld points.
For the welding of the contact sections 102 to the accumulator cells 10, the electrical insulation 42 of the cell connector frame 40 has through openings 46 through which a welding tool can access both of the connection partners. The cell connector frame 40 according to the invention makes it possible to avoid having to pre-mount individual cell connectors 100 onto the accumulator cells 12. The cell connector frame 40 is simply placed with its cell connectors 100 onto the accumulator cells 10. In this case, the cell connector frame 40 can have a fastening section 44 that has corresponding recesses and/or projections that secure the cell connector frame 40 to the accumulator cells 10.
According to the invention, the electrical insulation 42 of the cell connector frame 40 is now equipped with the electronic component 200.
It is also possible, as shown in
Number | Date | Country | Kind |
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102007031857.1 | Jul 2007 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP08/56112 | 5/19/2008 | WO | 00 | 3/31/2010 |