1) Field of the Invention
The present invention relates to a method for manufacturing a heat exchanger, a solar collector, a storage container, a system comprising a solar collector and a method for manufacturing a storage container for a liquid.
2) Description of the Prior Art
As alternative to the use of fossil fuels, use is increasingly made of for instance solar energy. One application of solar energy is the storage of the energy in a liquid medium.
Such systems are per se known, for instance from the publication of the international patent application of the same inventor as this application, WO 01/77590 Al. This document describes a flat plate collector. This collector already provides a relatively high efficiency; it is however relatively expensive to manufacture.
In order to obviate the above stated drawback and provide an improved device for heat exchange, the present invention provides a method for manufacturing a heat exchanger, comprising steps for:
manufacturing plates for an upper side and an underside of the heat exchanger,
arranging a profile comprising edges and ribs in at least one of the plates, which profile, after assembly of the heat exchanger, defines a space on the inside of the heat exchanger, which space has a zigzag form for allowing a fluid to flow therethrough;
fixing the plates to each other along the edges and ribs.
An advantage of an embodiment according to the present invention is that the space allowing the fluid to flow through can be realized relatively advantageously by means of arranging the profile in at least one of the plates.
According to an embodiment, the profile is arranged in the plate by means of deep-drawing. A profile in a plate can hereby be arranged in a plate in one operation. It is further possible to arrange the profile by means of a roller on which the desired profile is arranged on the surface.
The plates preferably comprise stainless steel or another durable metal. The use of stainless steel is highly feasible in such a heat exchanger since there is direct contact between the fluid medium and the metal, whereby a very high efficiency can be achieved despite the slightly lower conduction compared to for instance copper.
For fixing purposes the plates are preferably welded to each other. It is also advantageous if the plates are provided with a coating for increasing the absorption capacity of the surface and optionally reducing the emission capacity at operational temperatures.
The above stated method preferably also comprises steps for arranging at least one turbulence member in at least one of the plates for the purpose of causing turbulence in the flow of the fluid. This turbulence assists in spreading the collected heat through the whole fluid volume. It is known of for instance water that the heat conduction is relatively low.
A further aspect of the present invention relates to a solar collector, comprising:
a first plate for collecting solar energy,
a second plate which is fixed at least substantially along the edges on the underside of the first plate,
a space between the two plates,
an inlet for feeding a liquid to the space,
an outlet for discharging the liquid from the space of zigzag form, whereby the liquid can flow from the inlet to the outlet, wherein
the space between the plates is formed in that a profile defining the zigzag form of the space is arranged in at least one of the plates.
Such a collector has advantages as described in the foregoing. The manufacture thereof is relatively advantageous because a profile is arranged in the metal plate, which profile forms the space for the liquid serving as heat transfer medium. The profile is preferably manufactured by means of deep-drawing or for instance rolling.
In a further embodiment the solar collector comprises turbulence members for causing turbulence in the liquid in the space. An optimal heat distribution is hereby realized in the liquid when the liquid is driven through the zigzag channels. These turbulence members for instance comprise oblique ribs which narrow the throughflow channel by 50 to 90 percent as seen in the direction of flow.
In a further preferred embodiment, the solar collector comprises a housing for placing of the plate assembly, comprising:
a lower wall, comprising a plastic and a framework for supporting the plate assembly and a cover plate, formed integrally,
an insulation layer which is arranged on the lower wall inside a framework for supporting the plate assembly,
a cover plate being permeable to radiation and having insulating properties. An advantage of this embodiment is that a maximum efficiency of the solar collector can be realized with a minimum number of components. In addition, this collector can be placed in simple manner at the location where it has to function. Such a solar collector is further simple to assemble and relatively easy to handle and transport in the assembled form.
The solar collector as specified above preferably comprises a mounting profile extending round the periphery of the plate assembly. An advantage of such a profile is that the perhaps slightly rough edge of the plate assembly is shielded relative to the framework within which the plate assembly is placed. With a suitable choice of material such a profile also functions as member for damping vibrations and/or sounds produced by the liquid flow in the plate assembly.
A further aspect of the present invention relates to a storage container for a liquid, comprising:
an inner wall and an outer wall, each comprising a bottom wall for the storage container, which are moulded from a plastic,
a closing cover for closing the container which is also double-walled and filled with a foaming insulating means,
a number of passage openings for passage of at least supply and discharge conduits for the liquid,
a number of passage openings for passage of at least a supply and a discharge for a heat exchanger, and
an insulating means such as PUR foam which fills the space between the inner wall and the outer wall by foaming during or after introduction thereof between the inner wall and the outer wall.
An advantage of such an embodiment is that a storage container can be manufactured in relatively simple manner. The storage container is here very light, durable and insulates well. This is an open vessel whereby the whole collector system can be given a pressure-less form.
A per se known, preferably spiral-shaped heat exchanger is preferably arranged in the container. Hot water, for instance tap water or heating water, stored in the container is carried through this heat exchanger. Further openings which can be arranged in the storage container serve for instance for a probe or for an overflow.
The inner wall and the outer wall are preferably molded integrally from a plastic. A technique such as rotation molding is for instance applied for this purpose.
For insulation purposes the closing cover preferably encloses a part of the wall of the container in vertical direction in the position of use.
A further aspect of the present invention relates to a solar collector as specified in the foregoing which is manufactured using a method as specified in the foregoing and to a storage container as specified in the foregoing, and:
conduits for transporting a liquid from the storage container to the collector and vice versa,
a pump for driving liquid through the conduits. Advantages of such a system are similar to the advantages described in the foregoing.
A further aspect of the present invention relates to a method for manufacturing a storage container for a liquid, comprising steps for:
introducing a liquid curable plastic into a mould defining an outer wall, an inner wall and a connection therebetween,
rotating the mould such that the plastic is distributed over the whole surface of the mould,
curing the plastic,
arranging a foaming, heat-insulating plastic in the space between the inner wall and outer wall, wherein the plastic fills the whole space between the inner wall and the outer wall. An advantage of such a method is that a very effectively insulating storage container can be obtained in relatively simple and favorable manner. Such storage containers can be applied in situations where an insulating action is desired.
Further advantages, features and details of the present invention will be further described on the basis of a number of embodiments, which will be described with reference to the accompanying figures, in which:
A first embodiment (
The lower corner close to water inlet 2 is shown in perspective in greater detail in
In order to improve the heat transfer from upper plate 17 to the water, swirling ribs or turbulence ribs 11,13 are arranged in the upper plate. These extend at an angle from one side of the channel to the other side of the channel. Turbulence rib 11 is formed by two walls 81 and 82 lying in a V-shape relative to one another. Turbulence rib 13 is formed by two walls 83 and 84 lying in a V-shape relative to one another. Turbulence ribs 11 and 13 partly close the throughflow channel in vertical direction, whereby turbulence occurs in the flowing water. Turbulence likewise occurs due to the angle at which the turbulence ribs are arranged in the channels. The height of the ribs and the angle thereof can be varied depending on the use of the collector. More or fewer ribs can likewise be arranged per channel. The upper side of collector plate 17 can be further provided with a suitable coating to bring about better absorption of the solar radiation. Depending on the amount of solar radiation and ambient temperature at-the location of use of the collector, an optimal coating can be applied which for instance optimizes the ratio of the absorption properties and the radiation emission properties.
Plates 16, 17 of stainless steel are particularly suitable for the application in this embodiment. Such a metal provides a very long lifespan and is relatively advantageous. It is also possible to suffice with relatively thin plate material, such as for instance between 0.1 and 1 millimeter. A consequence hereof is that solar collectors can be manufactured with a low weight of between 10 and 20 kilograms per m 2. A further advantage of the construction of this embodiment is that, when water is used as heat medium, the addition of antifreeze is not necessary.
Cover plate 53 is preferably manufactured from Perspex. This material has the advantage that it has electrostatic properties, is dirt-repellent and can be cleaned in simple manner by means of water. For fixing purposes the plate is provided with clamping protrusions 54. These are clamped round a bulge (
Arranged directly onto mounting plate 50 is an insulating plate 51. This latter is situated immediately or some distance below collector 1. Collector 1 is held in position under cover plate 53 by means of a mounting strip. In an embodiment (not shown) there is present in mounting strip 52 a groove in which the edge of collector 1 can be placed. In the shown embodiment the collector is placed on the insulation layer, where after the mounting strip is placed on the edge of the collector.
The embodiment of mounting plate 50 is particularly suited for placing on inclining roofs instead of the roof tiles that are present. A recess 28 is provided for this purpose on the underside for supporting on a so-called tiling batten.
Situated on either side of mounting plate 50 are two edges 26, 27 for guiding rainwater. This prevents rainwater flowing away to the sides. On the upper side of mounting plate 50, at least as seen in the mounting position, there is situated a mounting strip or mounting elevation 25.
In the view of
In addition to the components shown in
The present invention is described on the basis of several embodiments, the different aspects of which can be readily varied by the skilled person within the concept of the present invention. The rights sought are defined by the appended claims.
Number | Date | Country | Kind |
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1014893 | Apr 2000 | NL | national |
This application is a continuation-in-part of application Ser. No. 10/257,552 filed Dec. 10, 2002, which is the United States national phase of International Application No. PCT/NL 01/00285 filed Apr. 10, 2001, which designated, inter alia, the United States, and which claims priority to Netherlands Application No. 1014893, filed Apr. 10, 2000.
Number | Date | Country | |
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Parent | 10257552 | Dec 2002 | US |
Child | 11040474 | Jan 2005 | US |