AIR-FLOW APPARATUS
20230371760 · 2023-11-23
Inventors
Cpc classification
International classification
Abstract
An air-flow apparatus for treating air and drying an object has a housing with an interior space, into which the object to be dried can be introduced via an opening of a partially opened lid of the housing, and with a bottom opposite the lid. A pump is connected on its inlet side to the interior space in such a way that, by means of a pumping action of the pump, a negative pressure is generated in the interior space and an air flow directed from the opening into the interior space is generated for drying the object. A flow arrangement has a controllable overpressure generating device, an inflow pipe and at least one nozzle, the overpressure generating device being connected on its outlet side to the interior space via the inflow pipe and the at least one nozzle and being adapted to form an overpressure in the inflow pipe and to generate a second air flow directed into the interior space via the at least one nozzle for drying the object.
Claims
1. An air-flow apparatus which is arranged for treating air and for drying an object, in particular a human hand, the air-flow apparatus comprising: a housing having an interior space into which the object to be dried is insertable via an opening of a partially opened lid of the housing, and having a base opposite the lid; a suction pump which is connected on an inlet side to the interior space in such a way that, by means of a pumping action of the pump, a negative pressure is generated in the interior space and a first air flow directed from the opening exclusively into the interior space, is generated for drying the object, the pump being designed for discharging on an outlet side an outlet air flow passing through the pump; and a flow arrangement which has a controllable overpressure generating device, an inflow pipe and at least one nozzle, the controllable overpressure generating device being connected on its outlet side via the inflow pipe and the at least one nozzle to the interior space and being adapted to form an overpressure in the inflow pipe and to generate via the at least one nozzle a second air flow directed into the interior space for drying the object.
2. The air-flow apparatus according to claim 1, further comprising a control element electrically connected to the pump and the controllable overpressure generating device for controlling operating modes of the air-flow apparatus, wherein the control element is adapted to, in a drying mode, activating the pump and the overpressure generating device to generate the first and second airflows; and in an air cleaning mode, to activate the pump and to deactivate the overpressure generating device to generate the first air flow and not to generate the second air flow.
3. The air-flow apparatus according to claim 2, further comprising at least one detection sensor adapted to detect the object in the interior space, wherein the control element is adapted to activate the drying mode upon detection of the object in the interior space and to deactivate the drying mode upon absence or termination of detection of the object in the interior space.
4. The air-flow apparatus according to claim 3, wherein the at least one detection sensor is arranged to detect at least one of the following: a type of the object; a size of the object; a position of the object in the interior space.
5. The air-flow apparatus according to claim 2, further comprising at least one sensor for germ detection and/or air quality measurement, which is mounted on an outside of the housing or in an outside space and is arranged to detect the germ load of air in the outside space, wherein the control element is adapted to activate the air cleaning mode upon detection of an exceeding of a predetermined threshold value of the germ load of air in the outside space using the at least one sensor for germ detection and/or measurement of the air quality.
6. The air-flow apparatus according to claim 5, further comprising a display for displaying germ load and/or air quality data measured with the at least one sensor for germ detection and/or measurement of air quality.
7. The air-flow apparatus according to claim 2, further comprising at least one pressure sensor in in the interior space and/or on an outside of the housing and/or in an outside space, wherein the control element is adapted to control the pump and/or the overpressure generating device on the basis of pressure values recorded with the at least one pressure sensor.
8. The air-flow apparatus according to claim 2, further comprising at least one injector mounted above the lid for introducing disinfectant onto the lid and into the first air flow, wherein the control element is adapted to activate the injector and the pump in a self-cleaning mode for generating the first air flow.
9. The air-flow apparatus according to claim 1, wherein the first air flow is greater than the second air flow and the negative pressure in the interior space generated by the pump is greater in amount than a positive pressure in the interior space generated by the overpressure generating device.
10. The air-flow apparatus according to claim 1, wherein a valve for preventing the backflow of the outlet air flow is attached to an outlet pipe of the pump.
11. The air-flow apparatus according to claim 1, wherein a unit for discharging and/or decontaminating the outlet air flow, in particular the outlet air flow contaminated with germs, is fitted to an inlet pipe and/or to an outlet pipe of the pump.
12. The air-flow apparatus according to claim 1, wherein the overpressure generating device is formed by a further pump.
13. The air-flow apparatus according to claim 12, further comprising a filter system for purifying ambient air drawn in by the further pump via an inlet.
14. The air-flow apparatus according to claim 11, wherein the overpressure generating device is formed by a further pump, which is connected on its inlet side via a valve, in particular a controllable valve, to an outlet of the unit for decontamination.
15. The air-flow apparatus according to claim 14, wherein the unit for decontamination has an inlet for the supply of ambient air.
16. The air-flow apparatus according to claim 1, wherein a unit for decontamination of the outlet air flow is attached to an outlet pipe of the pump, the overpressure generating device being formed by an electrically controllable valve, which is connected on its inlet side to an outlet of the unit for decontamination.
17. The air-flow apparatus according to claim 1, wherein a plurality of suction zones are provided in the base and/or on side walls of the interior space; the pump is additionally connected to the interior space on its inlet side via at least one suction line; and the at least one suction line opens into the interior space near the partially opened lid in such a way that an air flow parallel or substantially parallel to the lid is generated.
Description
[0048] In the drawings:
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[0061] In the following, various embodiments of an air-flow apparatus are described which illuminate individual aspects of the invention. Although individual figures show only partial aspects of the invention as defined in the claims, these aspects may each be combined with other aspects unless this is expressly excluded.
[0062]
[0063] A base 13 is provided in the interior 11′, which is opposite the lid 12 and contains perforations 14 through which the air stream 7 is directed as an outlet air stream 9 from the interior 11′ to the pump 15 via an or intake pipe an inlet pipe 15′. On its outlet side, the pump 15 is connected via an outlet pipe 15″ to a schematically shown unit 17 for collecting moisture particles 7′. The unit 17 can, for example, be connected to the pump via an optional valve 16 in order to prevent the outlet air flow 9 from flowing back into the pump. The liquid particles or moisture particles 7′ may be contaminated with germs during operation, which are extracted from the object 6 to be dried.
[0064]
[0065] With reference back to
[0066] The at least one sensor 21 is, for example, a distance sensor, such as a high frequency RADAR sensor or LIDAR sensor or other optical sensor suitable for detection. A drying process can thus be started by automatically switching on the pump as soon as the insertion of the object or objects to be dried, for example hands, is detected by the at least one sensor 21.
[0067] As can be seen from
[0068] Such a unit 17 may be, for example, a simple drain pipe, a UV disinfection unit (with or without connection to the drain pipe), a container partially filled with disinfectant (either periodically replaced or connected to the drain pipe), or any other suitable disinfection unit with a waste water tank to collect the germy humid air mixture or with connection to the drain pipe.
[0069] In the event that the unit for decontamination of the air flow effectively kills the germs and filters the air accordingly, the discharge pipe can be omitted if the condensed liquid particles are also collected in a container connected to the filter unit. The air thus purified can then be returned to the room through outlet openings. This is particularly convenient if the ambient air is appropriately contaminated with germs and the air-flow apparatus is also provided with an additional continuous operation mode for cleaning the ambient air.
[0070] From
[0071] With reference to
[0072] It should also be noted that the opening should still be large enough to prevent the object 6 to be cleaned (e.g. hands) from coming into contact with the edges of the lid 12, so as to also minimize the risk of smear infections via contamination of the hands to be dried.
[0073]
[0074] In
[0075] In
[0076]
[0077] A lid 12 with one or more movable elements can also be used in the embodiments of
[0078] In addition, the air-flow apparatus can still be provided with separate suction zones, which can optionally also be controlled separately, for example with perforations 14 on the side walls and in the floor 13 of the interior space 11′. Independent control of the suction zones can be implemented with separate pumps 15 in each case, or alternatively with valves 24, such as shown by way of example in
[0079] The pumps and/or valves can also be controlled on the basis of signals from the sensors 21 via the control element 23. The aim of using multiple suction zones is to control the air flow 7 even more precisely, thus enabling the optimum positioning of the objects 6 during the drying process.
[0080] To further increase effectiveness, the suction zones can also be additionally equipped with rapidly heatable heating elements, e.g. infrared lamps. However, it must be ensured that no excessive temperature gradients are created in the interior space 11′ in order to avoid disturbing the vertically downward air flow 7.
[0081] In the event that the air surrounding the air-flow apparatus is also already very heavily contaminated with germs, this problem can initially be solved by introducing dermatologically safe cleaning agent into the air flow 7 by means of one or more injectors 19, whereby in-situ sterilization takes place in the air flow.
[0082] As an additional or also alternative measure, as shown in
[0083] By means of one or more additional sensors 25 mounted in the outer shell of the apparatus or in the room for measuring the germ load of the breathing air, the air-cleaning mode of the apparatus can thereby be controlled so that it is switched on only when a critical threshold value of the room air load is exceeded, e.g. by activating the pump 15. In the case of sensors for determining the germ load mounted separately from the air-flow apparatus in the room, radio modules are provided in the sensors and in the air-flow apparatus, respectively, for transmitting and receiving the sensor data. Such sensors for measuring the germ load can be either biological sensors for measuring typical germs such as viruses or bacteria, or—similar to an air conditioning system—simple air quality sensors that detect the CO2 content of consumed breathing air and assume a corresponding correlation with the germ load caused by humans, e.g. multi-gas sensors for Volatile Organic Compounds, VoC, or CO2 sensors. Other sensors for complete detection of indoor air quality, such as for radon, CO, NOx, relative humidity, formaldehyde, etc., may also be optionally integrated on or in the air-flow apparatus.
[0084] In another embodiment, shown in
[0085] However, in order to achieve flow velocities of 50 to 100 m/s in the narrowest range, for example, the normal distance 6′ between the hands 6 to be dried and the insert 26 should be reduced to well below 10 mm. In practice, however, this requires cleaning by means of an injector 19 because the occasional contact of the hands 6 to be cleaned with the side walls of the insert 26 during the cleaning process can hardly be avoided. Similarly, the nozzle-shaped insert may also be designed with movable elements to allow even better adaptation to hands 6 of different sizes (not shown).
[0086] In the illustrations of
[0087] Thus, a global negative pressure can be generated in the air-flow apparatus via the pump, which can be used for manual cleaning as well as for air cleaning of the air from the environment 8. In addition, a local overpressure is generated, especially at the outlet of the nozzle 29, which enhances the local drying effect on the object 6. This increases the efficiency of cleaning the object, for example the human hand. The first and second air flows provide an independent control possibility of the maximum air flow speed at the surface of the hands in order to maximize the drying effect, in particular without having to make the distance 6′ between the walls of the interior space 11′ and the hands to be dried particularly narrow.
[0088] With reference to
[0089] The pump 27 compresses the air to generate an overpressure Opt which results in the second air flow dV.sub.2/dt 30 via the piping system 28 and the nozzle(s) 29. The vacuum pump(s) 15 and overpressure pump(s) 27 are preferably always dimensioned and controlled in such a way that a resulting negative pressure is created in the interior space 11′ in order to avoid contamination of the environment 8 by drying the hands 6. Therefore, for the resulting pressure change Δp in the interior space 11′ caused by the action of the vacuum pump 15, which generates a negative pressure Δp.sub.1, and the action of the overpressure pump 27, which generates the overpressure Δp.sub.2, always Δp<0. I.e. further Δp.sub.1+Δp.sub.2<0 where Δp.sub.1<0 (negative pressure) and Δp.sub.2>0 (positive pressure). Thus, |Δp.sub.1|>|Δp.sub.2| holds. I.e. further, a negative pressure prevails in the interior space 11′ during the drying process compared to the pressure p in the environment 8.
[0090] Assuming that a steady-state flow is quickly established after switching on the pumps 15, 27, it can be derived from Bernoulli's equation that the volume flow Q=dV/dt is directly proportional (with the constant c, and a constant density p) to the root of the pressure difference Δp generated by the pumps in the interior space 11′:
[0091] In the case of a steady flow, this also means that the amount of the volume flow dV.sub.1/dt generated by the vacuum pump 15 is always greater than the amount of the volume flow dV.sub.2/dt generated by the overpressure pump 27 in order to ensure that a vacuum always prevails in the interior space 11′.
[0092] As an example, in
[0093] The air-flow apparatus in
[0094] In these embodiments, the control element 23 is also arranged, for example, to control operating modes of the air-flow apparatus. For example, in a drying mode, the control element 23 activates the pump 15 and the positive pressure generating device 27 to generate the first and second air flows. Similarly, in an air purification mode, the control element 23 may activate the pump 15 while deactivating the positive pressure generating device 27 to generate the first air flow 7 and not generate the second air flow 30. Thus, as shown in
[0095] For example, the control element 23 will activate the drying mode when an object 6 is detected in the interior space 11′ via the at least one detection sensor 21. Furthermore, if the detection of the object 6 in the interior space 11′ is absent or terminated, the drying mode is deactivated. This can be done, for example, in a time-controlled manner after detection of the object 6 has ended.
[0096] Typically, the vacuum pump 15 is started earlier and continues to run after the positive pressure generating device 27 is turned off at the end of the drying process. If the air-flow apparatus is operated as an air cleaner, then the positive pressure generating device 27 remains turned off and only the negative pressure pump 15 is operated.
[0097] With reference to
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[0099] In both
[0100] With reference to
[0101] The nozzle 29 used in
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[0105] However, since the hands 6 to be dried come into contact with the deformable parts 36, it is advantageous to provide an additional cleaning process by means of the injector 19 and the cleaning agent 20 during and following the drying process. This is not mandatory in the previously described embodiments, particularly in connection with
[0106] Although not explicitly shown, it is also possible in the embodiment of
[0107] The lid in the embodiment of
[0108]
[0109] The air-flow apparatus according to the invention uses a number of sensors, including sensors 25 that measure air quality in the environment 8, for system control. With reference to
[0110] As described in connection with
LIST OF REFERENCE SIGNS
[0111] 6 object [0112] 7 air flow [0113] 7′ moisture particles and germs [0114] 7″ air cleaned from humidity and germs [0115] 8 outside space [0116] 9 outlet air flow [0117] 11 housing [0118] 11′ interior space [0119] 12 lid [0120] 13 bottom [0121] 14 perforations [0122] pump [0123] 15′ inlet pipe [0124] 15″ outlet pipe [0125] 16 valve [0126] 17 unit [0127] 17′ filter area [0128] 17″ air outlet [0129] 17′″ air supply [0130] 18 movable element [0131] 19 disinfection device [0132] particle of disinfectant [0133] 21 sensor [0134] 23 control element [0135] 24 valve [0136] sensor [0137] 26 insert [0138] 27 pump [0139] 28 inlet pipe [0140] 29 nozzle [0141] 29′, 29″ flat nozzle [0142] 30 air flow [0143] 31 inlet [0144] 31′ pipe [0145] 32 filter system [0146] 33 movable element [0147] 34 opening [0148] nozzle [0149] 36 deformable part [0150] 37, 38 pressure sensor [0151] 39 air cap [0152] 40-43 dimensions flat nozzle [0153] 44 controllable valve [0154] suction line [0155] 45′ horizontal air flow [0156] 46 display