Laundry treatment cabinet having a device for treating the process air
Patent Information
- Application Number
- EP2024718169
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-04-26
- Filing Date
- 2024-04-09
- Publication Date
- 2026-01-21
AI Technical Summary
Existing laundry treatment cabinets lack an efficient and needs-based method for treating laundry, particularly in terms of drying and applying treatment agents evenly without requiring additional time.
A laundry treatment cabinet with a device for treating process air, featuring a reactor area with ionizing capabilities to generate plasma, integrated with a heat exchanger arrangement and a control device for optimized air circulation and treatment agent application, ensuring effective drying and conditioning of laundry without additional treatment time.
The solution allows for reliable and efficient drying and conditioning of laundry items by ionizing process air, enhancing the removal of odors and reducing creases, while minimizing energy consumption through controlled activation of plasma and steam generation.
Smart Images

Figure EP2024059540_31102024_PF_FP_ABST
Abstract
Description
[0001] Description
[0002] Laundry treatment cabinet with a device for treating the process air
[0003] The invention relates to a laundry treatment cabinet comprising
[0004] - a housing;
[0005] - at least one interior space for accommodating laundry with an access opening closable by a door and an inlet opening for admitting process air and an outlet opening for discharging process air;
[0006] - a unit for generating process air or conveying process air through the interior, which is mounted in the floor area of the cabinet, below the interior, with
[0007] - a module housing comprising a channel section in which a heat exchanger arrangement with a condenser as a heating device and an evaporator as a condensing device is arranged;
[0008] - a compressor with connecting lines to the heat exchanger arrangement;
[0009] - a fan for conveying process air through the duct section with the heat exchanger arrangement, further comprising
[0010] - a first pipe for connecting the duct section to the air inlet and a second pipe for connecting the duct section to the air outlet of the interior;
[0011] - a control device for activating and deactivating the unit for generating the process air.
[0012] EP 2267213 A1 discloses a laundry treatment cabinet with a device for treating process air. The device comprises a treatment chamber and a flow generator for conveying the air through the treatment chamber, where the air is photocatalytically treated. This treatment is carried out continuously using an excitation light, i.e., continuously during operation of the process air blower.
[0013] The invention is therefore based on the object of providing a laundry treatment cabinet which provides improved and needs-based treatment of the laundry in a simple manner.
[0014] According to the invention, at least this object is achieved by a storage cabinet having the features of claim 1. Advantageous embodiments and further developments of the invention emerge from the dependent claims. The advantages achievable with the invention are that the process air can be conditioned as needed in a simple manner. In particular, the treatment cabinet proposed here can be used to reliably and effectively dry, iron and evenly apply a treatment agent to the laundry items to be treated. The particular advantage here is that the laundry items are conditioned during treatment with the process air, so that the conditioning does not require any additional treatment time. For this purpose, the laundry treatment cabinet comprises a device for treating the process air, wherein the device has a reactor area with a means arranged therein for ionizing the air molecules orThis includes particles contained in the air. The process air and the particles it contains become more aggressive, allowing them to react more intensively with the textiles, for example, removing odors or allowing water molecules from residual moisture to penetrate the textiles to reduce wrinkles or refresh them.
[0015] The unit is located in the floor area of the cabinet, below the interior. This means that the process air is drawn into the interior from below and extracted, while a circulation of process air is provided within the interior, flowing through the entire interior or at least reaching almost the entire interior. This allows the process air to reach the laundry located inside and dry or condition it accordingly, for example, with steam or a treatment agent.
[0016] The treatment cabinet is equipped with a device for treating the process air to ionize a portion of the process air flowing through the first pipe, or to generate plasma, and then feed this plasma into the process air within the first pipe. The plasma can be distributed or mixed within the first pipe and is conveyed into the interior by the process air flowing through the first pipe. Because the treatment device is located downstream of the unit's heat exchangers, it is ensured that the plasma achieves its optimal effect because there are no resistances in the flow path for the air molecules that would reduce the plasma activity due to discharge.
[0017] In a preferred embodiment, the air treatment device is configured such that it comprises a cylindrical body as the outer electrode with a coaxially arranged inner electrode located therein. A gap exists between the inner electrode and the outer electrode, which forms the reactor area along the axial extent of the hollow cylinder, allowing process air to flow through the reactor area. Upon activation of the device, the process air located between the electrodes is ionized. Process air can also be considered a fluid that is gaseous or mist-like.
[0018] For all embodiments of the device, it is expedient that the cylindrical body preferably has a diameter in the range of 1 cm to 3 cm and a length in the range of 4 cm to 20 cm and the distance between the outer electrode and the inner electrode has a value in the range of 0.5 mm to 2 mm.
[0019] In a practical refinement, the outer electrode cylinder shell is designed as a grid. This allows the fluid to diffuse into the reactor area and out again as plasma.
[0020] In an overall practical design, the cylindrical hollow body with the internal electrode located therein is mounted axially along the flow direction in the first tube. This minimizes the impact on the flow of process air within the first tube, while providing a sufficiently large reactor area for ionization.
[0021] Furthermore, a steam generator can be provided in the cabinet to introduce steam into the interior, which in turn can act on the laundry. The activity of the steam generator is preferably controlled by the control device. The steam can be introduced into the first pipe via a steam pipe, where it is mixed with the process air. Alternatively, the steam can be introduced directly into the interior via the steam pipe and a nozzle. In a preferred embodiment, the steam generator is shaped such that the steam pipe opens downstream of the process air treatment device in the direction of flow. The steam pipe can comprise a nozzle at its outlet end or can be shaped as a nozzle.
[0022] In an overall expedient embodiment, the control device is further configured to activate and deactivate the air treatment device, also referred to as a plasma generator, dependently or independently of the control of the unit. For this purpose, the control device can be designed and programmed to activate and deactivate the plasma generator based on a predetermined time sequence. This means that the activation times for the plasma generator are specified based on a predetermined schedule, so that the plasma generator is only active at specific times. This saves energy because the device is always inactive when no conditioning or no plasma is required in the process air.
[0023] Preferably, the control device is further configured to activate and deactivate the steam generator. For this purpose, the control device can be configured and programmed to activate and deactivate the steam generator based on a predetermined time sequence. This means that the activation times for the steam generator are specified based on a predetermined schedule, so that the
[0024] Steam generator is only active at certain times.
[0025] In a practical embodiment, the first pipe is designed and arranged such that it extends from the underside of the interior space approximately vertically along the rear of the interior space to a height of one-quarter to seven-eighths of the full height of the interior space, with the inlet to the interior space or treatment chamber located in the upper area of the first pipe. This allows the process air to be admitted at a mid-height of the interior space, ensuring a rapid and even exposure of the laundry items to the conditioned process air.
[0026] In another, generally practical design, the first pipe has a roughly rectangular cross-section in its vertical section and lies flat behind the rear wall of the interior. This provides a space-saving arrangement for the first pipe because it is located flat between the rear wall of the interior and the outer edge of the device housing.
[0027] In a preferred embodiment, the first tube is designed such that the rectangular cross-section extends with its longitudinal side into an area of the interior space that corresponds approximately 50% to 100% of the interior space's width. Thus, a large portion of the interior space's width is utilized to provide the cross-section for the first tube.
[0028] In a further embodiment, the first tube is designed such that the short side of the rectangular cross-section has a length in the range of 2 cm to 12 cm, preferably 3 cm to 8 cm.
[0029] In an overall practical embodiment, the air inlet is arranged at a vertical and horizontal distance from the air outlet, preferably in the rear area of the interior, with the air outlet being arranged in the front area or in the central area on the underside of the interior. Due to the aforementioned spaced arrangement of the openings for the process air, it is ensured that the process air flow reaches the interior and the textiles located therein completely and at least almost homogeneously. A so-called fluidic short circuit, in which the process air flow entering the interior is diverted directly to a nearby outlet without reaching the laundry items, is avoided or prevented.
[0030] Overall, all position and direction specifications refer to the normal operating position of the laundry treatment cabinet. An embodiment of the invention is shown purely schematically in the drawings and is described in more detail below.
[0031] Fig. 1 : a laundry treatment cabinet with a view into the interior in a perspective front view;
[0032] Fig. 2: example of a sketched, sectioned side view of the
[0033] laundry treatment cabinet;
[0034] Fig. 3: the module with control in a schematic view and
[0035] Fig. 4: the plasma module sketched in a preferred embodiment.
[0036] Fig. 1 shows a laundry treatment cabinet 1 with the door 5 open, viewed diagonally from above, in which the interior 3 is visible. The laundry treatment cabinet 1 in this example is a drying cabinet, comprising a housing 2, in the interior 3 of which there are means 91 for hanging laundry 9. The laundry treatment cabinet 1 comprises, inside the housing 2, a heat pump unit 8 for providing and conveying the process air, which is admitted into the interior 3 through the inlet opening 81 and conveyed from the interior 3 to the unit 8 through the outlet opening 82. The unit 8 is arranged in the lower region 22 of the housing 2 in this example. The front side of the door 5 is opaque in this illustration, but it can be transparent so that it can be seen in the closed position.The laundry treatment cabinet further comprises a control device 18, which preferably comprises a microcontroller uC with an associated memory MEM in order to control or activate and deactivate the unit 8 according to the program stored in the memory MEM (FIG. 3).
[0037] The channel 95 or the first tube 95 is flat and has an approximately rectangular cross-section SQ.
[0038] In a preferred embodiment, the laundry treatment cabinet 1 further comprises, in the upper region of the appliance 1, a device 40 for air circulation in the interior 3.
[0039] Fig. 2 shows the laundry treatment cabinet 1 in a schematic sectional view with the door 5 closed during operation. The heat pump unit 8 for generating the process air P is located in the base area 22 of the housing 2. The unit 8 comprises a heat pump circuit with a cooling heat exchanger 86 (evaporator), a heating heat exchanger 84 (condenser), and a compressor 85 to pump the refrigerant contained in the heat pump circuit through the individual components. The process air blower 87 generates the air flow of the process air P, which passes through the outlet 82 to the cooling heat exchanger 86 and is dehumidified there. The dry, cool air then reaches the heating heat exchanger 84, from which it leaves again heated. Further downstream is the process air blower 87, which pumps the now dried and heated process air through the inlet 81 into the interior 3.It can also be seen that the inlet 81 is arranged in the rear wall 32 of the interior space 3. The outlet 82 is located away from the inlet 81 and in the floor 31 close to the door 5 or the access opening 4. This creates an air flow P that reaches the entire interior space 3.
[0040] In an advantageous further development, the laundry treatment cabinet 1 comprises a steam generator 88. This can also be activated and deactivated by means of the control device 18 in order to supply steam to the interior 3 or to the process air P. In the outlined embodiment, a steam pipe 89 is provided, which conducts the steam from the steam generator 88 into the first pipe 95 and terminates therein. The steam admitted into the first pipe 95 is mixed with the process air stream P in the pipe 95, so that the steam-containing process air P passes from the inlet 81 into the treatment chamber 3.
[0041] In the upper area of the housing 2, above the interior space 3, there is an air circulation device 40. This device comprises a duct 44 and a fan 45 for conveying the air F from the interior space 3 through the duct 44. The fan 45 is switched on and off by the control device 18, depending on programmed or user-set specifications. The air F passes through the outlet 42 to the duct 44, with the treated air F being blown through the inlet 41 from the duct 44 into the interior space 3. In the example outlined, the air F is blown into or through the clothes hangers 91 to the laundry items 9 hung thereon. A filter element 43 is arranged at the outlet 42 to separate lint from the air flow F of the circulation.
[0042] In the rear, lower area of the interior 3, the first pipe 95 extends, which is arranged flat behind the rear wall 32. This pipe 95 is provided with a device 50 for process air treatment to discharge ionized fluid or plasma in a metered manner within the first pipe 95. The first pipe 95 provides the connecting channel between the base channel 80 containing the heat exchangers 84, 86 and the inlet 81.
[0043] Fig. 3 shows, by way of example, in detail the installation location for the plasma generator 50 designed as a module. The module 50 comprises a reactor region 51 in which means are arranged to generate plasma by ionizing the fluid P flowing through it or the particles and molecules contained in the fluid or the molecules forming the fluid. The module 50 has an outer electrode designed as a hollow body 54 and an inner electrode 62 arranged within the hollow body 54. The hollow body 54 is designed as a grid so that the hollow body 54 is permeable to the fluid F flowing past. The fluid F located between the inner electrode 62 and the grid 62 is ionized when the plasma generator 50 is activated. For this purpose, a direct voltage is applied between the electrodes 54, 62, preferably a low voltage to medium voltage, optionally up to high voltage.
[0044] Fig. 3 also shows the steam generator 88, in which steam S can be generated or is generated from stored or supplied water. The steam is introduced into the interior of the first tube 95 via the steam pipe 89. The end or outlet nozzle 90 is arranged above the outlet openings 52 for the plasma.
[0045] The arrangement of the cold plasma generator 50 in the aforementioned position below the steam outlet 90 ensures that it is not directly vaporized. Ideally, the plasma is generated and then transported with the steam S into the treatment chamber 3. This creates "activated steam." The highly reactive OH groups are encapsulated in the water droplets of the steam, survive longer, and can thus act more effectively on the laundry 9.
[0046] Fig. 3 also schematically shows the control device 18. The control device 8 has a microcontroller μC and a memory MEM that interacts with the microcontroller and stores the programs and parameters for controlling the actuators, such as the fans 51, 87 and / or heat pump 85 in the laundry treatment cabinet 1. Furthermore, the control device is configured to activate and deactivate the plasma module 50 and, if applicable, the steam generator 88. The operating device 19 is connected to the control device 18 or the microcontroller μC via the data line 17. Using the operating device, the user can make inputs for parameterizing and setting the treatment sequence, including the activation times for the plasma module and, if applicable, the steam generator 88.
[0047] Fig. 4 schematically shows the device 50 for process air treatment, also called a plasma generator, in a schematic, perspective individual view. The outer casing 54 forms the outer electrode, with the coaxially arranged, cylindrical body 62 serving as the inner electrode. Both electrodes 54, 62 are made of electrically conductive material, for example a metal or graphite. The coaxial arrangement of the electrodes 54, 62 ensures an at least virtually uniform electric field between the electrodes 62 when the electrodes are subjected to an electrical voltage. Fig. 4 also shows the voltage source 64, which provides a suitable voltage for plasma generation. The switch 66 symbolizes that, for example, the voltage is switched on to the electrodes by means of the control device 18.The process air P located or flowing between the electrodes 54, 62 in the reactor area 51 is converted into cold plasma due to the ionization of the atoms contained therein. In the illustrated situation, the switch 66 is closed, so that the voltage source 64 is connected to the electrodes 54, 62. The plasma generator 50 is therefore activated.
Claims
Patent claims 1. Laundry treatment cabinet (1), comprising - a housing (2); - at least one interior space (3) for receiving laundry (9) with an access opening (4) that can be closed by means of a door (5) and an inlet opening (81) for admitting process air (P) and an outlet opening (82) for discharging process air (P); - an aggregate (8) for generating process air (P) or conveying process air (P) through the interior (3), which is mounted in the floor area of the cabinet (1), below the interior (3), with - a module housing (80) comprising a channel section (83) in which a heat exchanger arrangement with a condenser (84) as a heating device and an evaporator (86) as a condensing device is arranged; - a compressor (85) with connecting lines to the heat exchanger arrangement (84, 86); - a fan (87) for conveying process air (P) through the duct section (83) with the heat exchanger arrangement (84, 86), further comprising - a first pipe (95) for connecting the duct section (83) to the air inlet (81) and a second pipe (96) for connecting the duct section (83) to the air outlet (82) of the interior space (3); - a control device (18, uC) for activating and deactivating the unit (8) for generating the process air (P), characterized by a device (50) for treating the process air (P), wherein the device (50) comprises a reactor region (51) with a means (54, 62) mounted therein for ionizing the air or the particles contained in the air (P).
2. Laundry treatment cabinet (1) according to claim 1, wherein the device (50) is arranged in the first tube (95) between the heat exchanger (84) and the inlet opening (81).
3. Laundry treatment cabinet (1) according to claim 1 or 2, wherein the device (50) comprises a cylindrical body (54) as an outer electrode with a coaxially arranged inner electrode (62) located therein, wherein there is a distance between the inner electrode (62) and the outer electrode (54), which distance forms the reactor area (51) in order to allow process air (P) to flow through the reactor area (51), wherein upon activation of the device (50) an ionization of the process air (P) located between the electrodes (54, 62) is effected.
4. Laundry treatment cabinet (1) according to claim 3, wherein the cylindrical body (54) has a diameter in the range of 1 cm to 3 cm and a length in the range of 4 cm to 20 cm and the distance between the outer electrode (54) and the inner electrode (62) has a value in the range of 0.5 mm to 2 mm.
5. Laundry treatment cabinet (1) according to claim 3 or 4, wherein the jacket of the cylinder (54) or the outer electrode (54) is designed as a grid network.
6. Laundry treatment cabinet (1) according to one of claims 2 to 5, wherein the cylindrical hollow body (54) with the inner electrode (62) located therein is mounted axially longitudinally in flow in the first tube (95).
7. Laundry treatment cabinet (1) according to one of claims 1 to 6, further comprising a steam generator (88) which is designed to admit steam (S) into the first pipe (95) or directly into the interior (3).
8. Laundry treatment cabinet (1) according to claim 7, wherein the steam generator (88) comprises a steam pipe (89) whose opening (90) for discharging steam (S) is arranged behind the device (50) for treating the process air (P), with respect to the flow direction of the process air (P).
9. Laundry treatment cabinet (1) according to one of claims 1 to 8, wherein the control device (18, µC) is further configured to activate and deactivate the air treatment device (50).
10. Laundry treatment cabinet (1) according to one of claims 1 to 8, wherein the control device (18, uC) is further configured to activate and deactivate the steam generator (88).
11. Laundry treatment cabinet (1) according to one of claims 1 to 10, wherein the first tube (95) has an approximately rectangular cross-section (SQ) in the vertical section and lies flat behind the rear wall of the (32) interior space (3).
12. Laundry treatment cabinet (1) according to claim 11, wherein the first tube (95) is designed such that the rectangular cross-section (SQ) extends with its long side in a region of the interior (3) which corresponds approximately to 50% to 100% of the width of the interior (3).
13. Laundry treatment cabinet (1) according to claim 11 or 12, wherein the first tube (95) is designed such that the short side of the rectangular cross-section (SQ) has a length with a dimension in the range of 2 cm to 12 cm, preferably 3 cm to 8 cm.
14. Laundry treatment cabinet (1) according to one of claims 1 to 13, wherein the air inlet (81) is arranged at a vertical and horizontal distance from the air outlet (82), preferably in the rear region of the interior space (3), wherein the air outlet (82) is arranged in the front region or in the central region in the floor (31) of the interior space (3).