METHOD AND DEVICE FOR GENERATING STEAM COMPRISING A SCALE CONTAINER AND STEAMER APPLIANCE WITH SUCH A DEVICE
20180003377 · 2018-01-04
Inventors
- Zhifeng XU (EINDHOVEN, NL)
- Mohankumar VALIYAMBATH KRISHNAN (EINDHOVEN, NL)
- Yen Leng PANG (EINDHOVEN, NL)
- Milind Vishwas DATE (EINDHOVEN, NL)
Cpc classification
F22B1/288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/287
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B27/165
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F22B1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
D06F75/18
TEXTILES; PAPER
Abstract
The present invention relates to a device (1) for generating steam. The device (1) comprises a plate (2) forming a surface, and a heating element (3) to heat the plate (2) to a predetermined temperature being at least above water evaporation temperature. The plate (2) is inclined at an angle compared to the horizontal direction to define an upper end and a lower end. The device (1) also comprises a water inlet arrangement (4) for dispensing water onto the plate (2) proximate the upper end, a control unit (11) to control the flow of water dispensed onto the plate (2), and a scale collection container (5) disposed adjacent to the plate (2). The control unit (11) is configured to control the flow of water dispensed onto the plate (2) and the temperature of the plate (2) so that substantially all the water dispensed onto the plate (2) evaporates before it reaches the lower end (15) of the plate (2). This invention allows an easy scale collection, thanks to the inclination angle of the plate's surface that causes the dislodged scale to travel down the plate's surface toward the lower end of the plate and, ultimately, into the container.
Claims
1. A device for generating steam, said device comprising: a plate forming a surface, a heating element to heat the plate to a predetermined temperature being at least above water evaporation temperature, the plate being inclined at an angle (A0) compared to the horizontal direction (H) to define an upper end and a lower end, the plate being partially bordered by a wall configured to ensure water is guided down the plate towards the lower end, a water inlet arrangement for dispensing water onto the plate proximate said upper end, a control unit to control the flow of water dispensed onto the plate and the temperature of the plate, a scale collection container disposed adjacent to said lower end of the plate, the control unit being configured to control the flow of water dispensed onto the plate and the temperature of the plate so that substantially all the water dispensed onto the plate evaporates before it reaches the lower end of the plate.
2. The device of claim 1, wherein the plate has at least one channel extending between the upper end and the lower end.
3. The device of claim 2, wherein the at least one channel comprise a plurality of channels extending parallel.
4. The device of claim 1, wherein said bottom surface portion extends downwards in a plane parallel to the plane of the plate.
5. The device of claim 1, wherein the water inlet arrangement comprises multiple water inlets to dispense water onto multiple regions of the plate proximate said upper end.
6. The device of claim 5, wherein the number of water inlets is the same as the number of said plurality of channels, and wherein each of the water inlets faces one channel of said plurality of channels, respectively.
7. The device of claim 1, wherein said bottom surface portion comprises a horizontal surface portion being lower than said lower end.
8. The device of claim 1, comprising a plurality of plates which surround said container.
9. The device of claim 1, wherein the container is formed integrally with the plate.
10. The device according to claim 1, wherein the plate is inclined at least 45 degrees from the horizontal.
11. The device according to claim 1, wherein the container comprises a plurality of walls, an opening being formed in at least one of the walls to access an inside part of the container, the opening being closed by a cover.
12. A steamer appliance comprising a device for generating steam according to claim 1.
13. A steamer appliance according to claim 12, comprising a water pump to deliver water to said water inlet arrangement, and a control unit for controlling the water flow rate delivered to the water inlet arrangement in dependence on said predetermined temperature.
14. A method of collecting scale in a device for generating steam, said method comprising the steps of: heating a plate inclined at an angle (A0) compared to the horizontal direction (H), the plate being heated to a predetermined temperature being at least above water evaporation temperature, the plate defining an upper end and a lower end, the plate being partially bordered by a wall configured to ensure water is guided down the plate towards the lower end, dispensing water on said plate proximate said upper end, controlling the flow of water dispensed onto the plate and the temperature of the plate so that substantially all the water dispensed onto the plate evaporates before it reaches the lower end of the plate, collecting in a container any scale falling down from the plate, the container being disposed adjacent to said plate.
15. The device according to claim 1, wherein the plate comprises a grid structure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Embodiments of the invention will now be described, by way of example only, with reference to the accompanying drawings in which:
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0038] In all embodiments of the present invention, shown in
[0040] a plate 2 forming a planar surface,
[0041] a heating element 3 to heat the plate 2 to a predetermined temperature being at least above water evaporation temperature,
[0042] the plate 2 being inclined at an angle A0 compared to the horizontal direction H to define an upper end 16 and a lower end 15,
[0043] a water inlet arrangement 4 for dispensing water onto the plate 2 proximate said upper end 16,
[0044] a container 5 disposed adjacent to said plate 2, said container 5 comprising a bottom surface portion 6 extending at least below said lower end 15.
[0045] The heated surface of plate 2 is inclined at a suitably steep angle A0 from the horizontal H. Water is deposited onto the heated surface at the top of the incline and allowed to migrate down the surface. The water's path of migration down the surface is governed by a combination of gravity and surface tension effects. The strong influence of gravity due to the steep angle of inclination of the surface increases the predictability and evenness of the water distribution across the surface, and therefore, increases the uniformity of scale thickness across the surface. As water is prevented from pooling on the surface by gravity, a thin and even layer of scale is formed that is more easily broken by the sudden cooling effect of successive drops of water.
[0046] A first embodiment of the invention is shown in
[0047] The plate (2) provides the above mentioned heated surface onto which water is deposited when the device (1) is in operation. Scale formed on the plate is broken up by the process of flaking, so that flakes of scale are caused to migrate down the plate's (2) incline to pass off the lower end (15) of the plate.
[0048] The plate (2) comprises a four sided flat surface. In the following, the region of the plate (2) that is disposed at the top of the incline is referred to as the upper end (16), while the region of the plate (2) that is disposed at the bottom of the incline is referred to as the lower end (15). The plate (2) is rectangular in shape having two long sides (17) and two short sides (18). The plate is partially bordered by a wall (19) that extends around the sides of the plate to extend from the short side (18), adjacent the plate's upper end (16), and along both long sides (17), so that the plate is open at the lower end (15) to communicate with the scale collection container (5). The walls (19) include a wall portion (19a) extending along the short side (18) and walls portions (19b) extending along the long sides (17).
[0049] The scale collection container (5) comprises a flat rectangular base that defines a bottom surface wall (6) (hereafter bottom surface 6), and four lateral walls (20) extending from the outer edges of the bottom surface (6) to surround the bottom surface and to provide a receptacle into which scale is deposited. The bottom surface (6) is disposed below the lower end (15) of the plate (2) and is disposed in the horizontal (H) when the steam generation device (1) is in an operative position. The lower end (15) of the plate (2) is adjoined to the upper edge of a lateral wall (20) so that scale flaked off of the plate (2) may pass over the lateral wall (20) and into the receptacle. Two further lateral walls (20) extend to meet the walls (19) extending along long sides (17) of the plate (2). Preferably, the scale collection container (5) further comprises an opening (9) formed in a surface of the scale collection container (5) for providing access to the inside of the scale collection container (5) so that scale deposited therein can be easily removed. It shall be appreciated that this opening (9) may be formed in any surface or wall defining the scale collection container (5), including the bottom surface wall (6) and any of the four lateral walls (20). In the embodiment shown, the opening (9) is formed in the lateral wall (20) disposed opposite to the lateral wall (20) adjoining the plate (2). For example, the opening (9) is closed off by a detachable cover (12) shown in
[0050]
[0051] The lid (13) comprises a steam outlet (24); the steam outlet (24) may be connected to any device, hose, pipe, tube, or other means for applying, using or conveying steam. For example, the steam outlet (24) may convey steam from within the steam generation device (1) to a steam passage of a soleplate of a steam iron, such as a steam iron typically used for the treatment of garments. Alternatively, the steam outlet (24) may convey steam from the steam generation device (1) into a hose connected to a steam applicator, such as a steam dispensing head, for applying steam to garments or other articles. It will be appreciated that the steam outlet (24) may alternatively be provided in the casing (14). Also, the device (1) may optionally comprise multiple steam outlets (24) to provide steam to multiple devices or applicators.
[0052] The lid (13) further comprises a water inlet (4), the water inlet (4) is arranged so as to dispense water onto the upper end (16) of the plate (2). In operation, water is applied through the water inlet (4) in droplet form. The water droplet is spread out into a thin film by the surface tension of the water and the action of gravity. It shall be appreciated that this film of water is thinner and more evenly distributed than if the plate (2) were substantially less inclined. This thin film of water is vaporised to produce steam causing scale to form on the plate's (2) surface. The amount of scale formed in each instance of evaporation is limited by the thickness of the water film layer.
[0053] The water inlet (4) is configured to dispense water onto multiple spaced regions (25) across the width of the upper end (16) of the plate (2) so that the water runs down the full width of the plate to utilise the whole of the plate's (2) surface. In an example of this embodiment, the water inlet (4) comprises a plurality of orifices (not shown) to simultaneously introduce multiple water droplets onto the plate (2).
[0054] A heating element (3) disposed proximate to the plate (2) acts to heat the plate (2). In this embodiment the heating element (3) is an electronic filament heater, though it shall be appreciated that any other suitable heater may be used. For the most efficient heat transfer between the heating element (3) and the plate (2), the heating element (3) is preferably embedded in the plate (2) (as shown in
[0055] Preferably, in all embodiments, a temperature sensing device is also provided to measure the temperature of the plate (2) and in particular the temperature of the plate's (2) surface. As per the embodiment shown in
[0056] The heating element (3) may be an on-off type heating element (3), in which case the heating element (3) is turned on when the temperature of the plate's (2) surface falls below a predetermined value and is turned off when the temperature rises above a predetermined value. Alternatively, the heating element (3) may have a variable power output such that a more constant temperature can be maintained on the plate's (2) surface. In this way, the temperature of the plate's (2) surface can be accurately maintained at a sufficiently high temperature to evaporate the water being fed onto the plate's (2) surface before it reaches the scale collection container (5). Therefore, none of the water, or at least very little water, will accumulate in the scale collection container (5).
[0057] The heating element (3) is embedded within the plate (2) such that it is in close proximity to the plate's (2) surface. This means that the heating element (3) is able to quickly heat the plate's (2) surface when the temperature drops, which will occur when water is fed onto the plate (2) and evaporated. The proximity of the heating element (3) to the plate's (2) surface reduces the lag time between switching on the heating element (3) and the subsequent increase in the temperature of the plate's (2) surface. Therefore, the device (1) is able to better regulate the temperature of the plate's (2) surface and maintain a high temperature, allowing the plate (2) to evaporate all water which is fed onto the plate's (2) surface and prevent water from reaching the scale collection container (5). The difference between the temperature of the plate (2) before and after water is fed onto the plate's (2) surface (or between wet and dry conditions during operation) may be at least 30 degrees Celcius. Preferably, the temperature difference may be at least 60 degrees Celcius. Furthermore, the temperature difference of the lateral walls (19) when the lateral walls (19) get wet and when the lateral walls (19) are dry may be at least 30 degrees Celcius. In other words, the temperature of the plate (2) (or the lateral walls (19)) when the plate (2) (or the walls (19)) is wet is at least 30 degrees Celsius lower compared to when the plate (2) (or the walls (19)) is dry during heating. The temperature difference creates a thermal shock in scale present on the plate which causes it to flake and migrate to the scale collection container (5).
[0058] Preferably, the water is evaporated in the area closest to the heating element (3). The heating element (3) may be positioned so that the main heating zone is in the middle of the plate (2) and distal to the walls (19). Therefore, water spreading over the plate (2) during steaming does not reach the surrounding walls (19). Effectively, the width of the wet (steaming) area is preferably less than the distance between the lateral walls portions (19b) along the long sides (17b). The water dosing position is also arranged in such a manner that the spreading water does not reach the wall portion (19a) along the short side (18). This may help to reduce or prevent scale carried by water being deposited along the walls (19). The surrounding walls (19) may be integral with the plate (2) or the enclosing lid (13).
[0059] The casing (14) of a second embodiment of the invention is shown in
[0060] In this second embodiment of the invention, the scale collection container (5) comprises a bottom surface (6) that is disposed below the plate (32) and extends in a plane parallel to the plate (32). As in the first embodiment, the scale collection container (5) further comprises four lateral walls (20) extending from the outer edges of the bottom surface (6) to surround the bottom surface (6) and to provide a receptacle into which scale is deposited. The lower end (15) of the plate (2) is adjoined to the upper edge of a lateral wall (20) so that scale flaked off of the plate (2) may pass over the lateral wall (20) and into the receptacle. Two further lateral walls (20) extend to meet the walls (19) extending along short sides (27) of the plate (2).
[0061] The casing (14) of a third embodiment of the invention is shown in
[0062] Lugs (22) arranged around the outer surface of the casing (14) are configured to allow the casing (14) to be mounted by screw fixtures to the lid (not shown). Each screw fixture passes through a hole formed in the lid (not shown) which is then threadably engaged with the lug (22) to create a sealed space for steam generation. As in above embodiments, water inlets (not shown) are provided in the lid and arranged to dispense water onto the upper end (16) of the plate (42).
[0063] The casing (14) of a fourth embodiment of the invention is shown in
[0064] As above, the scale collection container (5) comprises a four sided base that forms the bottom surface (6), with adjoining lateral walls (20) upstanding off of each side of the bottom surface (6) to define a receptacle into which scale is deposited. The upper edges of the lateral walls adjoin the lower edges (32) of the plates (2). In this embodiment, as in above embodiments, the plates (2) and scale collection container (5) are integrated to form the casing (14).
[0065] A lid (13) is provided to enclose the top of the casing and provide a sealed environment for steam generation. The lid may be attached to the casing (14) by any suitable means. Water inlets (4) may be provided in the lid to dispense water onto the plate (2) adjacent the upper edges of the plate (31).
[0066] A cross-sectional side view of a fifth embodiment of the invention is shown in
[0067] The casing (14) of the fifth embodiment of the present invention further comprises a scale collection container (5). The scale collection container (5) is disposed adjacent to a lower end (15) of the plate (2). In this embodiment, the scale collection container (5) is formed from an enlarged region of the steam generating chamber (50) and is located between the plate (2) and the lid (13). The casing (14) further comprises a heating element (3) to heat the plate (2). The temperature of the plate (2) and the flow of water onto the plate (2) is controlled so that substantially all the water dispensed onto the plate (2) is evaporated before it reaches the lower end (15) of the plate (2) so that water does not collect in the scale collection container (5). Preferably, the temperature and/or flow of water is controlled so that substantially all the water is evaporated before it enters the scale collection region (5) but, in other embodiments, the temperature of the plate and the flow of water may be controlled so that some water does enter the scale collection region (5). In this case, the water is evaporated by the heat from the plate (2) before it reaches the lower end (15) of the plate (2) to prevent water from pooling at the lower end (15) of the plate (2).
[0068] It shall be appreciated that all of the above embodiments may include an opening (9), such as that shown in
[0069] Furthermore, embodiments are intended within the scope of the invention in which the scale collection container (5) is not integrally formed with the plate (2). This may allow the scale collection container (5) to be removed from the device (1) to facilitate emptying of the scale collection container (5) of scale. The size and volume of the scale collection container (5) in this example is configured to define how often the scale collection device must be removed from the device (1) to maintain performance. In one example, when the scale collection container (5) is full of scale, the scale collection container (5) may be removed and replaced with a new, empty, scale collection container (5). In another example the scale collection container (5) may be reusable, so that when the full scale collection container (5) is full, the scale collection container (5) is removed and emptied before being replaced in the steam generation device (1).
[0070] In operation of the device (1) in all embodiments, scale that does form on the plate (2) is steadily removed by the flaking process and the action of gravity. As scale is dislodged from the plate's (2) surface by the flaking process, the loose flakes of scale work their way down the inclined plate (2) under the influence of gravity, water flowing down the plate (2) also helps to carry loose flakes down the plate (2), so that the flakes are collected in the scale collection container (5).
[0071] Although in the above embodiments the water is applied to the plate's (2) surface in droplet form, it shall be appreciated that the water may be provided to the steam generation device (1) in any way such that allows a film of water to be formed on the plate's (2) surface. For example, the water inlet (4) may be configured to drip water onto the plate (2) at a regular rate. Alternatively, the water inlet (4) may be configured to feed a constant stream of water onto the plate (2). Alternatively, the water inlet (4) may be configured to spray the water onto the plate (2) so that water is simultaneously provided to the plate (2) in multiple positions. Alternatively, there may be one inlet that is moveable such that it can be repositioned to introduce water to different positions on the plate (2). In this way, substantially all of the water being fed into the steam generation device (1) is evaporated on the plate (2) and does not flow into the adjacent scale collection region. Therefore, substantially no water enters the scale collection region and so the water cannot react with the accumulated scale to create foam and impure steam.
[0072] Water may also be provided to multiple positions on the plate (2) in a sequential manner. In this way, the water will act to cool different areas of the plate (2), and scale on the plate (2), at different rates and by different amounts. That is, areas of the plate (2) which are directly provided with water will be cooled more rapidly than other areas of the plate (2), which will cause scale on the plate (2) to cool at different rates. This differential cooling and heating will result in stresses and strains within the scale which will cause the scale to break apart, come detached from the plate (2) and fall into the scale collection container (5).
[0073] It shall be appreciated that steam generated within the steam generation device (1) may result in a significant positive pressure being exerted on the casing (14). The pressure differential that exists between the inside and the outside of the device (1), and therefore the pressure load exerted on the casing (14), will depend on the application of the device (1). Therefore, the casing (14) and lid (13) should be made from suitable materials and be designed accordingly. The casing is also required to conduct heat from the heating element (3) to the plate's (2) surface. For example, the casing (14) may be made from a metal, such as aluminium. The lid may be made from a metal or a polymer material. In any case, the materials should be suitable to safely deal with the temperature and pressure associated with the application of the steam generation device (1).
[0074] It will also be appreciated that the steam generation device (1) may be configured to hold steam at a pressure which is greater than atmospheric pressure so that steam can be released at any time. In this case, the water inlet (4) may be configured to open and allow water into the steam generation device (1) when the pressure within the chamber falls below a certain level. Also, it should be considered that the boiling point of water increases as pressure increases so the heating element (3) and other components need to be selected and/or designed according to the required pressure and temperature. It will be appreciated that the maximum steam pressure can be regulated by controlling the temperature of the plate (2) and the water feed rate through the water inlet (4).
[0075] The size and area of the plate's (2) surface is selected to provide an appropriate steam generation rate. The required steam generation rate will depend on the application of the device (1), the pressure limitations of the casing and lid (13), and the maximum water feed rate and the size of the device (1). The plate (2) surface has a sufficient size and temperature to evaporate substantially all of the water that is fed onto the plate (2) surface so that little or no water enters the scale collection container (5). For example, the plate (2) surface and the flow of water dispensed onto the plate (2) vary proportionally.
[0076] According to the invention, the plate's (2) surface may optionally be provided with some coating or surface finish that also helps to prevent scale from becoming bonded thereon so that the scale is more easily broken apart and dislodged when subjected to thermal shock. For example, a non-stick coating such as PTFE or a ceramic coating, or alternatively a highly polished surface finish may be provided to make it more difficult for the scale to form into large particles and flakes on the plate's (2) surface. Furthermore, in one embodiment, the steam outlet (24) may be provided with a hydrophobic surface or interfacing part to prevent the adhesion of scale particles in the vicinity of the steam outlet (24).
[0077] It will also be appreciated that the steam generating device (1) may further comprise steam enhancing features. The steam enhancing features may include a steam promoter (not shown) configured to increase the steam rate of the device (1) or a grid structure (not shown). The grid structure may comprises an array of columns or pillars (not shown) which are configured to increase the surface area of the plate (2) which increases the surface area over which heat can be transferred from the surface of the plate (2) to the water to increase the steam rate.
[0078] Preferably, according to the invention, the steam generating device (1) further comprises a water tank (not shown) for supplying water to the water inlet.
[0079] The invention also relates to a method of collecting scale in a device for generating steam as previously described. The method comprises the steps of: [0080] heating (S1) a plate (2) inclined at an angle (A0) compared to the horizontal direction (H), the plate (2) being heated to a predetermined temperature being at least above water evaporation temperature, the plate (2) defining an upper end (16) and a lower end (15), [0081] dispensing (S2) water on said plate (2) proximate said upper end (16), [0082] collecting (S3) in a container (5) any scale falling down from the plate (2), the container (5) being disposed adjacent to said plate (2) and comprising a bottom surface portion (6) extending at least below said lower end (15).
[0083] Preferably, the method further comprises the additional steps of: [0084] controlling (S4) the temperature of said plate (2), [0085] controlling (S5) the rate of water dispensed on said plate (2), such that water dispensed to the plate (2) is evaporated before water reaches the lower end (15) of the plate (2).
[0086] The above embodiments as described are only illustrative, and not intended to limit the technique approaches of the present invention. Although the present invention is described in details referring to the preferable embodiments, those skilled in the art will understand that the technique approaches of the present invention can be modified or equally displaced without departing from the scope of the the present invention, which fall into the protective scope of the claims of the present invention. In the claims, the word “comprising” does not exclude other elements or steps, and the indefinite article “a” or “an” does not exclude a plurality. Any reference signs in the claims should not be construed as limiting the scope.