The invention relates to a nozzle arrangement for supplying at least one fluid additive into a storing compartment of a textiles treatment apparatus, to a fluid supply arrangement for supplying the additive, and to a textiles treatment apparatus having a nozzle arrangement and/or a fluid supply arrangement.
EP 1 441 060 A1 discloses a tumble dryer having one or two injection units arranged in proximity of the loading door of the dryer to inject an additive like water steam, a cleaning detergent, a fragrance or a disinfectant into a rotatable drum. It is proposed to reduce, stop or reverse the airflow through the drum to optimize the efficiency of the injected additive. The amount of additive to be supplied by the injection units into the drum is adjusted by a dosing unit.
It is an object of the invention to provide a nozzle arrangement, an additive supply arrangement and a textiles treatment apparatus having a nozzle arrangement and/or an additive supply arrangement, which are adapted to remove or trap liquids or particles which may form during the supply of an additive.
Inventive aspects are defined in the claims.
Particular embodiments are set out in the dependent claims.
When using a steam injector directly injecting the steam into a drum of a dryer, the steam may condensate and form droplets, for example in the pipe passage from the steam generator to the nozzle, in the nozzle or close to the exit of the nozzle. In particular in the starting phase, when the walls of the supply pipe and the nozzle are cold, the likelihood of condensation is high. Due to the steam flow coming from the steam generator, condensed droplets may be taken along through the pipe and nozzle, and may be sprayed onto the textiles to be treated with the steam-phase additive. Such droplets are inefficient in the textiles treatment and may also result in an inhomogeneous treatment result at the textiles.
The invention relates to measures to avoid droplets or particles, which can condensate or form from the supplied fluid additive, to come into contact with the laundry or with other parts of the textiles treatment apparatus or with the user's hands during loading or unloading the textiles treatment apparatus.
In the following the term “fluid” includes gas-phase, liquid-phase and suspension-phase. “Gas-phase” includes steam-phase, fog-phase, aerosol-phase of a substance, or a mixture of substances or states of substances, or mixtures of substances in different states (e.g. fog or aerosol). Most preferably, the fluid additive transported by a channel (upstream), sprayed by a nozzle or sprayed into a storing compartment is a gas-phase additive as mentioned. The gas-phase can be generated in or at the nozzle, by spraying from the nozzle or downstream from the nozzle. The (sprayed or injected) additive is preferably steam, more preferably water steam or water steam comprising another additive. Additives generally may be perfumes, disinfectants, softener, detergents, dry cleaners, water, or any mixture thereof. “Particles” may be lime residues, precipitations of the additives, or the like. “Trapping” also includes collecting or catching the liquid, droplets and/or particles.
According to an aspect of the invention, a nozzle arrangement is provided which is used to supply at least one fluid-phase additive into a storing compartment of a textiles treatment apparatus. The nozzle arrangement comprises at least one nozzle, wherein each of the nozzles is adapted to feed a fluid. Preferably, the nozzle arrangement is adapted to be arranged at or close to an inner wall of the storing compartment. If, for example, the storing compartment comprises a rotatable drum, a loading door and a frame surrounding the loading door, then the nozzle arrangement is preferably arranged at the door frame or the door or is provided partially at the door and the door frame. Optionally or additionally one of the nozzles or the nozzle arrangement is provided at a back wall of the rotatable drum, for example stationary arranged at a center of the back wall (axial arrangement).
Further, the nozzle arrangement comprises at least one trapping device, which is or wherein each is adapted to trap and/or remove liquid and/or particles leaving the at least one nozzle or forming at or close to the nozzle. If, for example, fluid is transported through a supply channel to the nozzle, then the fluid is for example trapped within the nozzle or at the exit of the nozzle, such that no liquid droplets are sprayed out of the nozzle. Alternatively or additionally, the trapping device is arranged below or around the nozzle's exit such that droplets exiting the nozzle orifice are caught at the trapping device and guided away from the steam or gas injection path of the nozzle. For example, a mesh or grid can be provided, which the gas-phase additive has to pass from the nozzle, and where bigger droplets (bigger than aerosol droplets) are stopped and drained away from the nozzle jet path.
As another or additional example a porous material, like a sponge element, traps droplets formed in the fluid path in its porous structure, while the gasphase flow can pass the pores.
According to a preferred embodiment, the at least one trapping device comprises a draining channel which assists in draining away the droplets and small particles from the spraying or injecting path of the nozzle. This avoids an accumulation of liquids or particles close to the nozzle, and minimizes the risk of carrying them along in the injection path. In a preferred embodiment the draining away of liquids is enhanced by providing capillary elements, which decreases the surface tension and improves the draining off and sucking away of liquid accumulations and droplets.
Preferably the nozzle arrangement is formed of one piece, for example as an injection molding or cast part.
In a further embodiment the at least one trapping device and/or the at least one nozzle comprises at least in some surface areas (e.g. nozzle orifice or surrounding area) an anti-adhesive surface layer, or a surface tension reducing surface layer or material, or a combination thereof. The anti-adhesive layer or material results in smaller droplets and a higher mobility of the droplets improving the removal. For example the orifice and/or trapping device are at least partially formed of Teflon, PTFE, material having a Lotus-effect or are coated therewith. The surface reducing surface layer or material from which the element is formed results in a higher wetting of the surface and enhances thereby the draining of condensed liquid as in the capillary effect. Such coatings and/or material selections are also fully applicable to at least one fluid channel as mentioned below.
In a preferred embodiment the at least one draining channel is in fluid communication with a container adapted to collect the discharged fluid and/or particles. The container can be emptied by a user from time to time or the collected liquid can for example be reused in a fluid generator to generate the gas-phase additive. Or the liquid from the container can be transferred to another container, for example by pumping it to the another container.
To improve the user comfort or the controllability of the gas-phase injection of the at least one additive by the nozzle arrangement, the at least one trapping device and/or the at least one nozzle or a position thereof is moveably arranged. If, for example, the spraying angle of the nozzle can be adapted, it can be adjusted to spray the additive to the most efficient position within the storing compartment. Also the moveable trapping device or a portion thereof can be adjusted, such that in nearly all directions of the injected gas-phase additive the droplets, particles and residues are efficiently collected at the at least one trapping device or the moveable portion thereof.
In a preferred embodiment the movement of the at least one nozzle and/or the trapping device is effected during or by the opening and closing of a loading door for loading the articles to be treated into the storing compartment. In this case, for example, the gas-phase liquid injection path is deflected away from the loaded textiles and/or from the loading path for loading and unloading the articles to the storing compartment by the user. The injection path may be deflected, for example by moving the nozzle or by moving the trapping device or position thereof or both. In one embodiment the deflection is made by moving the nozzle or the moveable trapping device position, such that the steam exiting the orifice of the nozzle is deflected into a draining channel, such that for example the deflected gas-phase additive is discharged into a container or to the circulation channel of a dryer. For example, the injected additive is deflected into the direction of a condenser of the dryer.
In an embodiment the movement of the at least one trapping device, of the nozzle or a portion thereof is made by an actuation or agitating device. For example, the agitating device may be controlled by a control unit of the textile treating apparatus like an electromagnetic switch or a valve. Further, the agitating device may comprise one or more of: a motor, an elastic element, a spring, and a bimetal. Or it may be mechanically actuated, for example when moving the loading door or when the user moves the opening handle for opening the loading door. Also a security circuitry may be provided which stops the steam generation and actuates the moveable nozzle, trapping device or portion thereof as soon as the textiles treatment process is interrupted. For example, when switching the textile treatment apparatus off or when opening the loading door.
By providing condensation elements at the at least one trapping device the condensation there is enhanced or catalyzed, such that some liquid may condensate from an oversaturated steam to avoid droplet formation in some distance from the nozzle orifice.
In a further embodiment the at least one trapping device is adapted to restrict the articles to be treated to come into contact with the nozzle or with position close to the nozzle where liquid may condensate. Thereby, a direct contact between the articles to be treated with condensed liquid is avoided and also the propagation path of the injected additive can not be completely blocked by the articles to be treated. If, for example, the gas-phase additive is to be injected into a rotating drum and the articles are textiles which tumble in the drum, then the at least one trapping device prevents a temporary blocking of the injection path.
According to another aspect of the invention, a fluid supply arrangement is provided which comprises at least one nozzle, each being adapted to supply a gas-phase additive, at least one fluid supply source which generates or provides a gas-phase additive to be injected by the nozzle, for example to be injected into a storing compartment of a textiles treatment apparatus, and also which comprises at least one fluid channel connecting the at least one additive supply source to the at least one nozzle. As mentioned above, the gas-phase additive supplied by the supply source may condense on its path in the fluid channel from the supply source to the at least one nozzle, which would result in blocking or partially blocking the fluid channel. To improve the draining of the liquid or small particles which can be transported by the draining liquid, at least one capillary element is provided or formed in the fluid channel. This means that the at least one capillary element may be part of the fluid channel, i.e. the at least one capillary element is formed at an inner wall or at the interior of the channel, and/or an additional element is placed within the fluid channel to be active as at least one capillary element.
Preferably, the capillary element extends along the complete length of the fluid channel, however, one or more capillary elements may be distributed over positions of the fluid channel, for example a plurality of capillary elements interacting with each other, such that the draining of condensed liquid and particles to the end of the fluid channel is steady and improved. For example the cross-section of the fluid channel is not round, but has an angle smaller than 140°, preferably smaller than 120°, more preferably smaller than 90°. Alternatively or additionally, a wire or fiber or the like is inserted into the channel, which at least partially touches the inner surface of the channel and forms capillary elements thereby. Preferably, the wire or fiber is spirally or helically formed at the inside of the channel, such that in addition to the draining function a mechanical support is provided, which for example avoids a bending or folding of the channel.
In a further additional or alternative embodiment at least two channels are connected at least over a portion of their length, which means that they can be connected over the complete length, punctually over the length or intermittently over the length. At least one capillary fluid connection is provided between the insides or interiors of the at least two fluid channels, such that liquid can drain from one of the channels to the other channel. For example, one of the channels is used as an upstream channel providing the gas-phase additive from the additive supply source to the at least one nozzle, and the other one is a downstream channel draining condensed liquid and particles from the direction of the nozzle into the direction of the supply source. If, for example, the at least one nozzle is part of a nozzle arrangement as mentioned above, the downstream channel is not only used to drain condensed liquid from the upstream channel, but also to drain liquid and small particles caught or trapped at or close to the nozzle.
Preferably and as mentioned above, the downstream channel is in communication with a liquid collector or container which may be emptied by a user from time to time or from where the liquid is fed to the supply source and/or another liquid container and/or to the outside of the textiles treatment apparatus.
A textiles treatment apparatus according to another aspect comprises at least one nozzle arrangement as described above and/or at least one fluid supply arrangement as described above. Preferably, it comprises a storing compartment for storing articles to be treated and a loading opening to load and unload the articles. In a preferred embodiment and as described above, the nozzle arrangement is arranged at or close to the loading opening, e.g. at the frame of the loading opening or a loading door. In a further embodiment, the nozzle arrangement is partially formed at the door, and partially at the frame for the loading door.
In a further embodiment the fluid supply arrangement is also at least partially formed at or close to the loading door, for example at the loading door, at the frame of the loading door or partially at the frame of the loading door, and partially at the loading door.
The embodiments mentioned above can be combined in any form without restrictions. The fluid supply arrangement can for example be provided as an integrated or at least partially integrated unit. Further, the nozzle arrangement can be provided as an upgrade kit to an existing nozzle arrangement, for example to provide the draining function for draining off condensed liquids. Also the supply unit and/or the draining unit can be integrated in the loading door or in the frame of the loading door to simplify the maintenance and also the upgrading.
Reference is made in detail to preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings, which show:
The sink/condensate reservoir 22 may be used at the same time as a condensate sink in a condenser of the condenser dryer. If, on the other hand, the steam treatment apparatus is for example a washing machine having a drying function, then the liquid from the drip collector 10 can also be drained into the tub of the washing machine, and from there via a tub drainage into the condensate reservoir 22 as indicated by the dashed arrow 24.
From the condensate reservoir 22 the condensed liquid may be passed through a filter 26 and supplied to the pump 16 for feeding the steam generator 14. Alternatively, a pump 28 can pump the liquid through a condensate line 30 into a condensate drawer 34 which can be taken out of the dryer to discharge the condensate from drying circles and from the steam condensate collection. Alternatively or additionally, the pump 28 pumps the condensate out of the dryer 2 to outlet 32. In the case that the textiles treatment apparatus is a washing machine, pump 28 may be a draining pump connected to the sink of a washing tub, such that the additive condensate is pumped through the conventional draining hose.
When the condensate is collected in the condensate drawer 34, the condensate is passed through a filter 36 and then supplied via an additive line 40 to pump 16. Alternatively or additionally, the additive to be supplied via pump 16 to the steam generator 14 may be provided from a separate additive tank 38 as indicated by the dashed line, wherein the additive to be used during the steam supply is filled in by the user. Preferably, tank 38 is integrated in the drawer 34. Alternatively or additionally, freshwater is supplied to the steam generator 14, wherein the dryer or the washing machine having drying and steam treatment function is connected to a freshwater tap 42. A valve or dosing unit 44 is opened and closed or activated to pass freshwater through an optional decalcifier or softener 46 either to pump 16 or directly into steam generator 14 via water line 48.
Optionally, a second additive reservoir 50 is provided, wherein a pump 52 pumps the additional additive into the steam generator 14. The additional additive can be mixed to the condensate or water supplied via pump 16 (lines 48, 40 or 27), or the additional additive is supplied to the steam generator 14 without water or condensate, such that in the supply phases only the additional additive is injected into the drum 4.
It is to be noted that not all elements shown in
Number | Date | Country | Kind |
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06023712 | Nov 2006 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2007/009548 | 11/5/2007 | WO | 00 | 8/24/2009 |
Publishing Document | Publishing Date | Country | Kind |
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WO2008/058645 | 5/22/2008 | WO | A |
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Entry |
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International Search Report Issued Feb. 15, 2008 for PCT/EP2007/009548 (WO 2008/058645 A1). |
Number | Date | Country | |
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20100083532 A1 | Apr 2010 | US |