APPARATUS FOR RAPID HEATING OF LIQUIDS
20170138632 ยท 2017-05-18
Assignee
Inventors
Cpc classification
F24D19/0092
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H1/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/405
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Apparatus for rapid heating of a liquid including a heat source, a liquid flowpath defining element defining a liquid heating flowpath therein having a liquid inlet and a liquid outlet, a collection of flexible elongate thermal conductors located within the flowpath, the collection of flexible elongate thermal conductor portions being thermally coupled to the heat source and defining multiple liquid heating passageways through the flowpath whose configurations and cross-sectional dimensions change over time, thereby being resistant to clogging.
Claims
1. Apparatus for rapid heating of a liquid comprising: a heat source; a liquid flowpath defining element defining a liquid heating flowpath therein having a liquid inlet and a liquid outlet; a collection of flexible elongate thermal conductors located within said flowpath, said collection of flexible elongate thermal conductor portions being thermally coupled to said heat source and defining multiple liquid heating passageways through said flowpath whose configurations and cross-sectional dimensions change over time, thereby being resistant to clogging.
2. Apparatus for rapid heating of a liquid according to claim 1 wherein said collection of flexible elongate thermal conductors is fixed to said liquid flowpath defining element.
3. Apparatus for rapid heating of a liquid according to claim 1 wherein said collection of flexible elongate thermal conductors comprises multiple separate conductors mutually arranged in an irregular and mutually displaceable arrangement, which changes in response to liquid flow therepast.
4. A device for rapid heating of a liquid according to claim 2 wherein said liquid flowpath defining element is a thermal conductor and is coupled to said heat source and said multiplicity of flexible elongate thermal conductors.
5. A device for rapid heating of a liquid according to claim 3 wherein said liquid flowpath defining element is a thermal conductor and is coupled to said heat source and said multiplicity of flexible elongate thermal conductors.
6. Apparatus for rapid heating of a liquid according to claim 2 wherein said collection of flexible elongate thermal conductors comprises multiple separate conductors mutually arranged in an irregular and mutually displaceable arrangement, which changes in response to liquid flow therepast.
7. Apparatus for rapid heating of a liquid according to claim 6 wherein said liquid flowpath defining element is a thermal conductor and is coupled to said heat source and said multiplicity of flexible elongate thermal conductors.
8. Apparatus for rapid heating of a liquid according to claim 1 wherein said liquid flowpath defining element includes a bore defining said liquid flowpath and a recess, spaced from said bore, for receiving said heating element.
9. Apparatus for rapid heating of a liquid according to claim 8 wherein said collection of flexible elongate thermal connectors is packed within said bore and in thermal contact with said heating element via said liquid flowpath defining element.
10. Apparatus for rapid heating of a liquid according to claim 9 wherein said collection of flexible elongate thermal connectors has a dynamic arrangement of interstices in response to liquid flow therepast.
11. A method for rapid heating of a liquid comprising: directing liquid along a liquid heating flowpath in which are located a collection of flexible thermal conductors which define interstices therebetween; and conducting heat from a heat source to said liquid via said flexible thermal conductors.
12. A method for rapid heating of a liquid according to claim 11 wherein said liquid heating flowpath is defined by a liquid flowpath defining element having a liquid inlet and a liquid outlet and said collection of flexible elongate thermal conductors located within said flowpath defines multiple liquid heating passageways through said flowpath whose configurations and cross-sectional dimensions change over time, thereby being resistant to clogging.
13. A method for rapid heating of a liquid according to claim 12 wherein said collection flexible elongate thermal conductors comprises multiple separate conductors mutually arranged in an irregular and mutually displaceable arrangement, which changes in response to liquid flow therepast.
14. A method for rapid heating of a liquid according to claim 12 wherein said liquid flowpath defining element operates as a thermal conductor and transmits heat from said heat source to said flexible elongate thermal conductors.
15. A method for rapid heating of a liquid according to claim 13 wherein said liquid flowpath defining element is a thermal conductor and is coupled to said heat source and said multiplicity of flexible elongate thermal conductors.
16. A method for rapid heating of a liquid according to claim 11 wherein said collection of flexible elongate thermal conductors comprises multiple separate conductors mutually arranged in an irregular and mutually displaceable arrangement, which changes in response to liquid flow therepast.
17. A method for rapid heating of a liquid according to claim 12 wherein said liquid flowpath defining element transmits heat from heat source to said flexible elongate thermal conductors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The present invention will be understood and appreciated more fully from the following detailed description, taken in conjunction with the drawings, in which:
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF A PREFERRED EMBODIMENT
[0015] Reference is now made to
[0016] Liquid inflow and outflow fixtures 110 and 120 are typically formed of aluminum or another suitable heat-conducting metal and coupled to respective inflow and outflow ends of bore 102. A heating element 130 is located in a heating element recess 131 formed in element 100. An example of a suitable heating element 130 is an electromagnetic heating element manufactured by Shenzhen Hanke Instrument Co., Ltd, headquartered at #2 Shangxue City 1st Road, Bantian, Longgang District, P.C. Heating element 130 preferably reaches a peak temperature of approximately 180 Celsius.
[0017] Inlet and outlet liquid conduits 132 and 134, typically formed of metal, rubber or plastic, are attached, respectively, to liquid inflow and outflow fixtures 110 and 120 and connect bore 102 to a source of liquid to be heated (not shown) and to a heated liquid utilization device (not shown).
[0018] Reference is now made to
[0019] In this way, as can be seen by comparing
[0020] In a preferred embodiment, the collection 104 of thermal conductors is lightly packed into bore 102 in good thermal contact with element 100 such that heat produced by heating element 130 is efficiently conducted via element 100 to the thermal conductors in collection 104 and to the liquid flowing therepast in bore 102. The conductors in collection 104 may or may not be fixed to element 100. Preferably, the flow of water through bore 102 past the collection 104 of thermal conductors is turbulent flow and this turbulent flow enhances the mutual displacement of the conductors and the realignment of the interstices thereof over time.
[0021] It will be appreciated by persons skilled in the art that the present invention is not limited by what has been particularly shown and described hereinabove. Rather the scope of the present invention includes both combinations and subcombinations of features described hereinabove and variations and modifications thereof which are not in the prior art.