The present invention relates to a charging set for an accumulator with a housing, which has a charging receptacle for the accumulator, and with a power cable for connecting the charging set to a power grid.
Such charging sets are designed for recharging electrochemical energy storages, so called accumulators, which consist as a rule of individual storage cells connected together into packs or modules. They are therefore denoted as accumulator packs or accumulator modules. The charging sets can be connected as a rule to power grids, which usually are operated in the AC voltage range of 115-240 V.
The startup of a commensurate charging set initially entails connecting said set to the power grid via the power cable. The actual charging process is then activated by inserting an accumulator into a charging receptacle associated with the charging set. After the accumulator has been charged, said accumulator is removed from the charging receptacle, whereupon the connection of the charging set to the power grid can be broken. The charging set can alternatively stay connected to the power grid under open circuit voltage conditions.
A disadvantage of the technical field is that conventional charging sets do not only consume energy when recharging accumulators but also if they are connected to the power grid under open circuit voltage conditions when the accumulator is not being recharged. This is especially the case when the power grid is continually connected to the charging sets and leads to an undesirable energy consumption and consequently to preventable energy consumption costs. The extent of the undesirable energy consumption and the thereby associated preventable energy consumption costs is dependent on the number and the capacity of the charging sets and becomes correspondingly greater, the greater the number is of high-capacity charging sets continually connected to the power grid. For example, conventional charging sets used for recharging accumulators with a capacity of 2 Ah require approximately 1.5 W of energy under open circuit voltage conditions.
A task of the invention is therefore to provide a new charging set, whose energy consumption is at least reduced under open circuit voltage conditions.
This problem is solved by a charging set for an accumulator with a housing, which has a charging receptacle for the accumulator and with a power cable for connecting the charging set to a power grid. A first switching element is provided on the housing, which can be actuated in order to activate the connection of the charging set to the power grid for the supply of power to said charging set via the power cable.
The invention consequently makes it possible to deenergize the charging set, which is connected to the power grid, under open circuit voltage conditions. In so doing, the power supply to the charging set can according to the invention only be activated by means of an actuation of the first switching element. In this way, an undesirable energy consumption under open circuit voltage conditions is prevented, and for this reason unnecessary associated energy consumption costs are consequently avoided.
According to one embodiment, the first switching element is a rocker switch or a pressure switch.
The charging set according to the invention can consequently be implemented by using a cost effective switching element in a simple manner.
The first switching element is preferably disposed in the region of the charging receptacle. The first switching element can preferably be actuated by inserting the accumulator into the charging receptacle.
Hence, the invention allows for a simple configuration as well as an uncomplicated handling of the charging set.
The charging receptacle can be configured as a receiving slot. In so doing, the first switching element is preferably disposed in the receiving slot. As an alternative to this, the charging receptacle can be configured as a receiving recess. In so doing, the first switching element is preferably disposed in the receiving recess.
The invention consequently allows for a simple and uncomplicated configuration of charging sets, which are diversely implemented and in which an arrangement of the first switching element can result in each case as a function of an associated embodiment of the charging receptacle.
According to one embodiment, a second switching element is provided on the housing, which can be actuated in order to activate a charging process for recharging the accumulator.
The charging process can consequently be activated independent of the connection between the charging set and the power grid.
The first switching element can have a mechanical, optical, inductive and/or capacitive switch.
The invention consequently allows for a simple and efficient configuration of the first switching element.
The invention is explained in detail in the following description using one example of embodiment depicted in the drawings.
According to one embodiment, the accumulator comprises a plurality of storage cells, which are interconnected in an accumulator pack or module, wherein the accumulator cells can be from an arbitrary type of accumulator, as, for example, NiCd, NiMh and Li-ion. The construction of the accumulator 30 as well as a possible configuration of the rod-shaped interface element 32 is, however, not a constituent of the present invention, so that a more detailed description of them is avoided here for the sake of brevity. The accumulator 30 in particular can be configured according to one embodiment of the invention as a conventional accumulator.
The accumulator 30 preferably serves to supply power to an electric motor designed to drive a power tool and is used, for example, in a cordless drill and/or a cordless screwdriver (50 in
The charging set 10 has a housing 18, upon which a charging receptacle 20 for receiving the accumulator 30 is provided as well as a power cable 12 for providing a connection to a power grid 40, which is schematically depicted. The power grid 40 is preferably operated in the AC voltage range of 115-240V. It is, however, to be noted that the charging set 10 can also be configured in an application specific and accumulator specific fashion for power grids, which are operated in other voltage ranges, for example in the DC voltage range of 12V. Modifications of this kind and additional ones as well as variations are possible within the scope of the present invention.
Furthermore the charging set 10 can optionally have a function display 14. Said display is configured by way of example as a LED lamp in
According to one embodiment, provision is made for a switching element 22 in the region of the charging set 20, said element 22 serving as stated below to activate, respectively deactivate, the connection between the charging set 10 and the power grid 40 of
As is shown in
It is to be noted that the configuration of the switching element 22 is described as a rocker or a pressure switch, respectively as a mechanical switch, merely by way of example, and this is not to be understood as a limitation of the invention. In fact, a mechanical switch as well as another switch, for example an optical, inductive and/or capacitive switch, can be used when implementing the switching element. Such modifications and additional ones as well as variations are possible within the scope of the present invention.
During operation, the charging set 10 of
Upon completion of the charging process, the LED lamp 14 is preferably switched off. The accumulator 30 can then be removed from the charging set 10 in order, for example, to be connected to drive an associated power tool, the charging set 10, respectively an associated section of the power grid, being deenergized by a reactuation, respectively an enabling, of the switching element 22.
As can be seen in
The charging set 70 has a housing 80, upon which a charging receptacle 74 for receiving the accumulator 60 is provided, as well as a power cable 72 for the connection to a suitable power grid, for example power grid 40 of
According to one embodiment, a first switching element 76 is provided in the region of the charging receptacle 74, said switching element 76 serving to activate, respectively deactivate, the connection between the charging set 70 and a power grid, respectively a section of the power grid associated with the charging set 70. A second switching element 76, which serves to activate a corresponding charging process of the accumulator 60, is furthermore provided in the region of the charging receptacle 74. As can be seen in
The operation of the charging set 70 essentially corresponds to the operation of the charging set 10 of
Number | Date | Country | Kind |
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102008042267.3 | Sep 2008 | DE | national |