The present disclosure relates to a furniture system comprising, in particular, an electrically adjustable piece of furniture.
Adjustable furniture is known both in the office furniture sector and in the home sector. The most common designs in the office furniture sector are, for example, electrically adjustable tables or chairs, while in the home sector electrically adjustable beds, seating furniture or reclining furniture are known.
Adjustable pieces of furniture are often part of a furniture system, which in addition to the piece of furniture also has one or more other system components, such as a manual operating device. Such system components regularly have rechargeable batteries or accumulators to make them independent of a mains voltage. However, the latter must be charged regularly to enable operation. For this purpose, suitable charging stations are usually available for the system components into which the system component has to be introduced for charging.
The present disclosure provides an improved charging concept that makes it easier to charge an energy store of a system component of a furniture system.
The improved charging concept is based on the idea of charging an electrical energy store of a system component that is connected to an electrically adjustable piece of furniture via a wireless or contactless process. For this purpose, a furniture system with the electrically adjustable piece of furniture and an energy transmission device arranged on or in the piece of furniture is proposed, which can provide the necessary energy for charging the energy store without physical contact with the system component. The system component further comprises a charging circuit for charging the energy store which is arranged to at least partially receive the energy delivered by the energy transmission device and to use it for charging the energy store.
Preferably, the energy transmission device is adapted to deliver the energy based on a radio wave based method, in particular a radio frequency, RF, method. Thus, respective energy stores can be charged by one or more system components without special effort of a user in order to ensure a continuous use of the system component.
In an exemplary implementation of the improved charging concept, a furniture system with an electrically adjustable piece of furniture, a system component and an energy transmission device is proposed. The piece of furniture comprises at least one actuator for adjusting the piece of furniture and a controller for controlling the actuator. The energy transmission device is arranged on or in the piece of furniture and is adapted to receive energy from a supply network and to emit it wirelessly. The system component has an electrical energy store for supplying a voltage to the system component and a charging circuit for charging the energy store. The charging circuit is arranged to at least partially receive the energy delivered by the energy transmission device without physical contact with the energy transmission device and to use it to charge the energy store. The energy store is designed, for example, as an accumulator or rechargeable battery.
The supply network is, for example, a direct current network or an alternating current network, i.e. in particular a 230 V or 115 V power network. The energy transmission device can be supplied with direct current, for example via the control unit or directly from a power supply unit, and is thus at least indirectly connected to the AC mains.
Preferably, the system component is configured for a communication connection with the controller and/or with another system element of the furniture system. In general, such system elements may be formed by a furniture controller, any other system component with a wireless chargeable energy store, a data collector, data node or communication hub, or other components of the furniture system. For example, a data collector, data node or communication hub can be implemented by the LOGIClink product from Logicdata.
In principle, inductive methods can also be used for energy transmission between the energy transmission device and the charging circuit of the system component. However, these regularly require that an energy receiving device of the charging circuit and the energy transmission device for charging the energy store are brought in close proximity to each other, especially with small maximum distances of less than 5 cm. Therefore, it seems more advantageous to transmit the energy based on a radio wave-based method, in particular an RF method. An RF-based charging technique has the advantage that not only can longer distances be bridged, but also that the energy receiving device does not have to be aligned excessively precisely with respect to the energy transmission device.
For example, the energy transmission device and the energy receiving device are designed to transmit sufficient energy to charge the energy storage device up to a distance of 50 cm to 150 cm, in particular up to a distance of 60 cm to 90 cm, between the energy transmission device and the energy receiving device. The maximum distance sufficient for the energy transfer is thus, for example, within the specified distance ranges. Such distances can be achieved, for example, with the described radio wave-based or RF method.
For example, the charging circuit has an energy receiving device and a charging controller which is configured to control the charging of the energy store with the energy received by the energy receiving device.
For example, the energy transmission device may be located in a housing of the controller or another furniture component attached to the piece of furniture. Preferably the controller or the other furniture component has a direct or indirect connection to the mains connection of the piece of furniture. Alternatively, it is also possible to arrange the energy transmission device in its own housing. There are various possibilities for arranging the energy transmission device in relation to the piece of furniture.
For example, the piece of furniture is designed as a height-adjustable table, in particular as an office table, with the energy transmission device arranged under a table top of the table. In such a configuration, the system component can be formed by an office chair, the energy storage device being designed to supply a sensor and/or a chair actuator of the office chair. The chair actuator can be used, for example, to adjust the height of the office chair. One or more sensors in the office chair can measure different measured values in connection with the office chair, for example a weight load, a weight distribution, an inclination, a height adjustment or the like. For example, such sensors are arranged in or on a gas spring of an office chair.
In an alternative configuration, the piece of furniture is implemented as a bed with adjustable head part and/or an adjustable foot part, in particular for a bedroom. The energy transmission device is arranged in or on a longitudinal frame of the bed.
In another alternative, the piece of furniture is implemented as an adjustable reclining chair, wherein the energy transmission device is arranged in a frame of the reclining chair, in particular under a cover of the reclining chair.
When the piece of furniture is designed as a bed or recliner, the system component is formed, for example, by a side table, wherein the energy store is designed to supply an electrically operated component of the side table. In various configurations of the piece of furniture, the system component or a further system component is formed, for example, by a manual operating device which is configured for a wireless communication connection with the controller. The electrical energy store is designed in particular to supply the manual operating device during an operating action.
The system component or a further system component can also be formed by one of the following:
a lighting component;
an electrically height-adjustable armchair or chair;
an electrically adjustable backrest, in particular an armchair or chair;
an electrically adjustable monitor holder;
a sensor component which is in communication with the controller during an adjustment of the piece of furniture.
The listed pieces of furniture do not represent a conclusive selection of possible adjustable pieces of furniture. Other pieces of furniture and system components can also be equipped with the improved charging concept. Such pieces of furniture and system components are preferably used in the home or living area or in the office.
If the range of the energy transmission is not too limited, as for example with a radio wave-based or RF method, the system component or system components can also be charged at will during operation of the furniture system without the system components having to be brought into a special charging position. For example, if the energy transmission device is mounted underneath a tabletop, both a manual control unit for adjusting the table and an office chair with corresponding charging circuits can be charged at almost any position in the work area.
Also with an adjustable bed, it is almost irrelevant where a manual operating device is placed for charging. For example, the energy transmission device is mounted in the bed frame in such a way that charging is possible in the area of a bedside table or a side table.
Since no exact alignment of the energy transmitter or energy transmission device and the energy receiver or energy receiving device is required, handling is made easier for the user. Similarly, with the improved charging concept, it is no longer necessary to provide special mechanisms to ensure that a component to be charged is correctly aligned with the energy transmitter, such as mechanical arms, locks or optical feedback to detect that a component is correctly aligned. There is also no need for docking stations or charging stations with which a user would need to connect the system component.
It is also possible for several system components to simultaneously receive energy from the energy transmission device to charge their respective energy stores.
In radio wave-based or RF processes, the maximum transmittable power can be set to a certain level, for example to limit the electromagnetic radiation density and also to keep the losses in the energy transmitter, i.e. the energy transmission device, low. This usually results in a slow charging process. However, this is of secondary importance, especially for the above-mentioned application for charging batteries or accumulators which supply one or more system components of a furniture system with energy and which do not have to be operated continuously. For example, the system components in the office area can remain in their traditional places as long as they are within reach of one or more energy transmission devices. The energy store(s) can thus be continuously recharged and always provide sufficient energy for the use of the system component. For example, in this way the energy stores collect enough energy overnight to allow sufficient use during the day.
Although wireless energy transmission is designed to comply with safety regulations, some people find that electromagnetic radiation, especially in radio wave-based or RF processes, is harmful to their health. For this purpose, the furniture system may contain mechanisms that allow the user to temporarily prevent charging. In the simplest case, the charging process can be activated or deactivated via the system's remote control. However, it is also possible to use a time control or a presence detection integrated in the furniture system. It is also possible to make activation or deactivation dependent on a charge level of the energy store.
Such a switch-off can, for example, be used in a bed system. In this case, the user can, for example, switch off charging during the night or the switch-off is automatically time-dependent. The energy store can then be charged during the day or when the user is not using the bed. A similar scheme can also be transferred to an office desk, which is then preferably charged at night or when the user is absent from the desk.
In the following, the invention will be explained in detail with reference to the drawings using exemplary embodiments. Components that are functionally identical or have an identical effect can be provided with identical reference signs. Identical components or components with identical functions may only be explained with reference to the figure in which they appear first. The explanation is not necessarily repeated in subsequent figures.
In the drawings:
Via a manual operating device 150, which is shown lying on the table top 115 as an example, a user can transmit corresponding operating commands to the controller 140 in order to effect a height adjustment via the actuator 110.
The furniture system also includes an energy transmission device 200, which is installed in the present illustration in the controller 140. The energy transmission device 200 is designed to receive energy from a supply network, such as a direct current network or an alternating current network, in particular a 230 V or 115 V power network, and to deliver it wirelessly. The energy transmission device 200 can also be supplied with direct current via the controller 140 or from an not shown power supply unit and is therefore at least indirectly connected to the AC mains.
The manual operating device 150 as an example of a system component is configured for a communication connection with the controller 140. In addition, the manual operating device 150 has an electrical energy store for supplying a voltage to the system component, which is not shown for reasons of clarity, and a charging circuit for charging the energy store, which is also not shown for reasons of clarity. The charging circuit is arranged to at least partially receive the energy delivered by the energy transmission device 200 without physical contact with the energy transmission device and to use it to charge the energy store. This is symbolically represented in
Although
The improved charging concept is not only applicable to furniture systems with tables, but can also be applied to other pieces of furniture. For example,
In the illustration of
In other configurations, the side table 190 has a USB charging interface which is fed from the energy store of the side table to enable charging of a mobile phone, for example. It is also possible to supply other lighting elements or sensors with power from the energy store.
With regard to the energy transfer procedures in the implementations according to
Number | Date | Country | Kind |
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102018103066.5 | Feb 2018 | DE | national |