This disclosure relates generally to heat exchangers or evaporators. More specifically, this disclosure relates to heat exchangers that include bent tubes in a coil-like configuration.
The statements in this section merely provide background information related to the present disclosure and may not constitute prior art.
Heat exchangers 1, such as the one shown in
When tubes 5 are folded in half to create a multiple row coil-like configuration 20, the tubes 5 in the folded region, which have no centers between them, will be in direct contact 25. Tubes 5 that are in constant contact with each other can lead to continual rubbing and overtime result in the formation of leaks. For coil-like configurations 20 where the folded region is located at the bottom of the heat exchanger, the contact made by the tubes may also allow water to gather with limited ability for proper drainage. This accumulation of water may cause the acceleration of corrosion processes, thereby weakening the structural integrity of the tubes 5. Thus, when tubes 5 are allowed to remain in direct contact 25 with each other, the coils are predestined to prematurely fail.
The present disclosure generally provides a spacer device for incorporation into a bent-tube heat exchanger. This spacer device comprises one or more fingers that protrude from opposite sides of the spine. The fingers in the spacer device are configured to exert a force against the tubes and to provide and maintain a separation between two of the tubes in the folded region.
According to another aspect of the present disclosure, a bent-tube heat exchanger is provided. This heat exchanger comprises a plurality of tubes folded in a region to form a coil-like configuration having a flattened cross-section along with multiple parallel flow channels. This heat exchanger includes a plurality of fins that extend between the tubes. In addition, the heat exchanger includes one or more manifolds that form an inlet and outlet for fluid flow within the heat exchanger. Each of the plurality of tubes in the heat exchanger is in fluid communication with the one or more manifolds. The heat exchanger further includes a plurality of spacer devices comprising a spine and a plurality of fingers that provides and maintains a separation between the tubes in the folded region.
According to yet another aspect of the present disclosure, a method for providing and maintaining separation between tubes during the formation of a bent-tube heat exchanger is provided. This method generally comprises the steps of providing a plurality of spacer devices having a thickness (T); providing a plurality of tubes; placing one of the spacer devices on every other tube, such that each finger in the spacer device is located between two of the tubes; and folding the tubes in a region to form a coil-like configuration, such that the spacer device remains between the tubes in the folded region. The thickness (T) of the spacer device represents the separation that is provided and maintained by the fingers between the tubes in the folded region.
Optionally, the method may further include maneuvering the spacer device into place and/or holding the spacer device in place during the folding of the tubes through the use of a removable connector located between two or more of the spacer devices. This connector is subsequently removed after placement of the spacer devices. The method may further include covering one or more of the tubes in the region to be folded with a protective coating that either provides a physical barrier between the tubes and the oxidizing elements in the environment or is a sacrificial material that preferentially corrodes before the tubes.
Further areas of applicability will become apparent from the description provided herein. It should be understood that the description and specific examples are intended for purposes of illustration only and are not intended to limit the scope of the present disclosure.
In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way. It should be understood that throughout the description, corresponding reference numerals indicate like or corresponding parts and features.
The following description is merely exemplary in nature and is in no way intended to limit the present disclosure or its application or uses. For example, the device made and used according to the teachings contained herein are described throughout the present disclosure in conjunction with a bent tube or coiled heat exchanger used in an air conditioner system in order to more fully illustrate the construction and the use thereof. The incorporation and use of such a device in other heating, ventilation, air conditioning, and refrigeration applications wherein a bent tube or coiled heat exchanger would be desirable is contemplated not to exceed the scope of the present disclosure.
The present disclosure generally provides a device configured as a spacer that provides separation between the bent tubes or coil during the production and operation of a heat exchanger. During the production of a heat exchanger, the spacer device is inserted in between the tubes before folding in order to keep the tubes from touching during and after folding. This spacer device remains in contact with the tubes or coil-like configuration during the operation of the heat exchanger in order to maintain the spacing and to assist in guiding the drainage of condensate. Since the spacer device keeps the tubes of the folded core from coming in direct contact with one another, the reduction in frictional rubbing during production and operation will extend the life-time associated with the coil.
The spacer device may be formed of any soft plastic or hard rubber material. Such materials may include, without limitation, polyurethanes, thermoplastic elastomers (TPEs), polyolefins, epoxies, fluoropolymers, silicones, polyamide, polycarbonate, polyesters, polyethylene, polyvinyl chloride, natural rubber (NR), styrene-butadiene rubber (SBR), ethylene propylene diene monomer rubber. (EPDM), nitrile butadiene rubber (NBR) and/or mixtures and combinations thereof. Alternatively, the spacer device is comprised substantially of one type of soft plastic or hard rubber material. The hardness of the material generally ranges from about 5 to about 85 (Shore A durometer) or less than 45 (Shore D durometer). The measurement of Shore hardness may be performed according to ASTM D2240, ISO 868, or ISO 7619-1:2010 standard test methods.
There are many different design configurations that could be used as the spacer device with variations in the thickness of the material, the length of the protruding fingers, the number of protruding fingers, and the angle at which the fingers protrude from the device being predetermined as necessary to optimize performance for heat exchangers used in different applications. Several possible design configurations are shown in
When the number of fingers 35 located on each side of the spine 40 of the spacer device 30 is greater than one, the fingers 35 are separated by one another via a slot 39. This slot 39 may comprise any desirable shape, including, but not limited to, elliptical, circular, triangular, rectangular, or square. The slot 39 provides a weight savings in that less soft plastic or hard rubber is used in forming the spacer device 30. The slot 39 may also be configured to assist in the folding process and/or to hold the spacer device 30 in position during the folding process.
Still referring to
Each of the symmetric or asymmetric finger configurations located on each side of the spine 40 in the spacer device 30 are separated by a slit 37 in which the tube may be at least partially placed. When desirable, the fingers 35 may also be curved into a pre-determined shape providing an angle (a) with respect to the center-line (c) of the spine 40 that is configured to be compatible with and assist in the folding process of the tubes. The angle (a) may be any acute angle depending upon the degree of the bend desired for the tubes. The shape of the slit 37 generally corresponds to the shape of the outer surface of the finger configuration in order to assist in the placement of and/or the folding of the tubes.
Referring now to
According to another aspect of the present disclosure, a bent-tube heat exchanger is provided. Referring now to
When necessary or desirable one or more of the tubes 5 in the folded region may also be covered with a protective coating (not shown). Alternatively, at least one of the tubes 5 is coated in the folded region. This coating may be an organic coating that acts as a physical barrier between the metal of the tubes and the oxidizing elements in the environment. The coating may also be an inorganic material, such as without limitation a sacrificial material, e.g., a metal, which is applied or plated onto the tubes and preferentially corrodes before the tubes. The application of such a coating makes the tubes 5 in the folded region tougher and less susceptible to premature failure.
According to yet another aspect of the present disclosure, a method for providing and maintaining separation between tubes during the formation of a bent-tube heat exchanger is provided. Referring now to
The thickness (T) of the spacer device represents the separation that is provided and maintained by the fingers between the tubes in the folded region. The fingers in the spacer device may be curved into a predetermined shape that provides an angle (a) with respect to the center-line (c) of the spine, such that the fingers are compatible with and assist in the folding of the tubes. The fingers of the spacer device lay on the tubes, thereby, exerting a force onto the tubes and providing the separation between the tubes.
The placement 115 of the spacer devices onto the edge of every other tube may be done manually or robotically. In addition, the use of a removable connector between multiple spacer devices that aids in the placement of the spacer devices onto the edge of every other tube is contemplated to be within the scope of the present disclosure. Thus, the spacer devices may be maneuvered 125 and/or held in place through the use of a connector located between two or more of the spacer devices. This connector is subsequently removed after the placement of the devices. The means of reversible connection between the spacer devices may include, but not be limited to, the placement of the spacer devices at predetermined intervals along a cord or line, wherein the spacer devices are attached to said cord or line in an easily removable fashion.
When desirable, this method 100 may further comprise the step of covering 130 one or more of the tubes in the region to be folded with a protective coating that either provides a physical barrier between the tubes and the oxidizing elements in the environment or is a sacrificial material that preferentially corrodes before the tubes.
For the purpose of this disclosure the terms “about” and/or “substantial” are used herein with respect to measurable values and ranges due to expected variations known to those skilled in the art (e.g., limitations and variability in measurements).
For the purpose of this disclosure, the terms “at least one” and “one or more of′ an element are used interchangeably and may have the same meaning. These terms, which refer to the inclusion of a single element or a plurality of the elements, may also be represented by the suffix “(s)” at the end of the element. For example, “at least one manifold”, “one or more manifolds”, and “manifold(s)” may be used interchangeably and are intended to have the same meaning.
Within this specification, embodiments have been described in a way which enables a clear and concise specification to be written, but it is intended and will be appreciated that embodiments may be variously combined or separated without parting from the invention. For example, it will be appreciated that all preferred features described herein are applicable to all aspects of the invention described herein.
The foregoing description of various forms of the invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise forms disclosed. Numerous modifications or variations are possible in light of the above teachings. The forms discussed were chosen and described to provide the best illustration of the principles of the invention and its practical application to thereby enable one of ordinary skill in the art to utilize the invention in various forms and with various modifications as are suited to the particular use contemplated. All such modifications and variations are within the scope of the invention as determined by the appended claims when interpreted in accordance with the breadth to which they are fairly, legally, and equitably entitled.
Number | Name | Date | Kind |
---|---|---|---|
4831701 | Yutaka | May 1989 | A |
5531268 | Hoshino et al. | Jul 1996 | A |
20170343288 | Joardar | Nov 2017 | A1 |
20210231375 | Sienel | Jul 2021 | A1 |
Number | Date | Country |
---|---|---|
203518352 | Apr 2014 | CN |
104110977 | Oct 2014 | CN |
106196757 | Dec 2016 | CN |
299688 | Jan 1989 | EP |
2884209 | Jun 2015 | EP |
Number | Date | Country | |
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20230152048 A1 | May 2023 | US |