PTC HEATER
20170370614 · 2017-12-28
Inventors
Cpc classification
F24H9/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B2203/02
ELECTRICITY
F24H9/1827
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H1/102
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B3/44
ELECTRICITY
H05B3/06
ELECTRICITY
F24H1/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24H1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B3/44
ELECTRICITY
F24H1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heating apparatus is disclosed. The heating apparatus comprises a PTC heating element, a first electrode, a second electrode, a first protection layer, a second protection layer, a first interlayer, and a second interlayer. A hardness of the first protection layer is greater than that of the first interlayer. A hardness of the second protection layer is greater than that of the second interlayer.
Claims
1. A heating apparatus, comprising: a PTC heating element, the PTC heating element having a first side and a second side; a first electrode disposed on the first side of the PTC heating element; a second electrode disposed on the second side of the PTC heating element; a first protection layer, the first protection layer comprising a first metal sublayer and a first insulating sublayer; a second protection layer, the second protection layer comprising a second metal sublayer and a second insulating sublayer; a first interlayer located between the first protection layer and the first electrode, the first interlayer being insulating; and a second interlayer located between the second protection layer and the second electrode, the second interlayer being insulating.
2. The heating apparatus of claim 1, wherein the first interlayer and the second interlayer are portions of a first insulating layer, and the first electrode and the second electrode are wrapped by the first insulating layer.
3. The heating apparatus of claim 1, further comprising: a heat conductive housing, wherein the PTC heating element, the first electrode, the second electrode, the first protection layer, the second protection layer, the first interlayer, the second interlayer are placed into the heat conductive housing, and a first side wall and a second side wall of the heat conductive housing are inwardly curved.
4. The heating apparatus of claim 3, further comprising: a first outer layer disposed between the heat conductive housing and the first protection layer, the first outer layer being insulating.
5. The heating apparatus of claim 4, further comprising: a second outer layer disposed between the heat conductive housing and the second protection layer, the second outer layer being insulating.
6. The heating apparatus of claim 5, wherein the first outer layer and the second outer layer are portions of a second insulating layer and the first protection layer and the second protection layer are wrapped by the second insulating layer.
7. The heating apparatus of claim 1, wherein a hardness of the first protection layer is greater than that of the first interlayer, and a hardness of the second protection layer is greater than that of the second interlayer.
8. The heating apparatus of claim 1, wherein the first protection layer is a first portion of a tubular shape protection layer and the second protection layer is a second portion of the tubular shape protection layer.
9. The heating apparatus of claim 1, wherein the first protection layer is a flat protection layer, the second protection layer is a flat protection layer, and the first protection layer and the second protection layer are not connected.
10. The heating apparatus of claim 1, wherein the first insulating sublayer is a polyimide sublayer, and the second insulating sublayer is a polyimide sublayer.
11. The heating apparatus of claim 1, wherein the first metal sublayer is an aluminium sublayer, and the second metal sublayer is an aluminium sublayer.
12. The heating apparatus of claim 1, wherein the first metal sublayer is a copper sublayer, and the second metal sublayer is a cooper sublayer.
13. The heating apparatus of claim 1, wherein the first metal sublayer is a stainless steel sublayer, and the second metal sublayer is a stainless steel sublayer.
14. A heating apparatus, comprising: a PTC heating element, the PTC heating element having a first side and a second side; a first electrode disposed on the first side of the PTC heating element; a second electrode disposed on the second side of the PTC heating element; a first protection layer; a second protection layer; a first interlayer located between the first protection layer and the first electrode, the first interlayer being insulating; a second interlayer located between the second protection layer and the second electrode, the second interlayer being insulating; and a heat conductive housing, wherein the PTC heating element, the first electrode, the second electrode, the first protection layer, the second protection layer, the first interlayer, the second interlayer are placed into the heat conductive housing, and a first side wall and a second side wall of the heat conductive housing are inwardly curved.
15. The heating apparatus of claim 14, wherein the first interlayer and the second interlayer are portions of a first insulating layer, and the first electrode and the second electrode are wrapped by the second insulating layer.
16. The heating apparatus of claim 14, further comprising a first outer layer and a second outer layer, the first outer layer being disposed between the heat conductive housing and the first protection layer, the first outer layer being insulating, the second outer layer being disposed between the heat conductive housing and the second protection layer, the second outer layer being insulating.
17. The heating apparatus of claim 14, wherein the PTC heating element comprises a middle wall, the middle wall is bent, and the bending angle is between 60 degree and 160 degree.
18. The heating apparatus of claim 14, wherein the PTC heating element comprises a middle wall, the middle wall is bent into an L shape.
19. The heating apparatus of claim 14, wherein the PTC heating element comprises a middle wall, the middle wall is bent into a C shape.
20. The heating apparatus of claim 14, wherein the first side wall is an L shape and the second side wall is an L shape.
21. The heating apparatus of claim 14, wherein the first die wall is a C shape and the second side wall is a C shape.
22. The heating apparatus of claim 14, wherein the heating apparatus is reliable even being supplied with more than 3000 voltages.
23. The heating apparatus of claim 14, wherein the power consumed by the heating apparatus is configured between 1500 W to 2500 W.
24. A method for making a heating apparatus, the method comprising: attaching a first electrode and a second electrode onto two sides of a PTC ceramic element respectively through an adhesive material; wrapping a first insulating layer around the PTC ceramic element, the first electrode, and the second electrode; attaching a first protection layer onto the first electrode with the first insulating layer in between; attaching a second protection layer onto the second electrode with the first insulating layer in between; wrapping a second insulating layer around the first protection layer and the second protection layer; and placing the PTC ceramic element, the first electrode, the second electrode, the first insulating layer, the first protection layer, the second protection layer, and the second insulating layer into a heat conductive housing.
25. The method of claim 24, further comprising: heat sealing the first insulating layer and the second insulating layer at two ends.
26. The method of claim 25, further comprising: plugging two rubber stoppers into two openings of the heat conductive housing respectively.
27. The method of claim 26, further comprising: pressing the heat conductive housing from top and bottom sides.
28. A method for making a heating apparatus, the method comprising: attaching a first electrode and a second electrode onto two sides of a PTC ceramic element respectively through an adhesive material; wrapping a first insulating layer around the PTC ceramic element, the first electrode, and the second electrode; placing the PCT ceramic element, the first electrode, the second electrode, and the first insulating layer into a tubular protection layer; wrapping a second insulating layer around the tubular protection layer; and placing the PTC ceramic element, the first electrode, the second electrode, the first insulating layer, the tubular protection layer, and the second insulating layer into a heat conductive housing.
29. The method of claim 28, further comprising: plugging two rubber stoppers into two openings of the heat conductive housing respectively.
30. The method of claim 29, further comprising: pressing the heat conductive housing from top and bottom sides.
31. A heating apparatus, comprising: a PTC heating element, the PTC heating element having a first side and a second side; a first electrode disposed on the first side of the PTC heating element; a second electrode disposed on the second side of the PTC heating element; a first protection layer; a second protection layer; a first interlayer located between the first protection layer and the first electrode, the first interlayer being insulating; and a second interlayer located between the second protection layer and the second electrode, the second interlayer being insulating; wherein a hardness of the first protection layer is greater than that of the first interlayer, and a hardness of the second protection layer is greater than that of the second interlayer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0038] The above-mentioned and other features, properties and advantages of the present invention will become more apparent from the following description of embodiments with reference to the accompany drawings, in which:
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DETAILED DESCRIPTION
[0057] The present invention will be further described below in conjunction with detailed embodiments and the accompanying drawings. More details are provided in the following detailed description in order for the present invention to be fully understood. However, the present invention can be implemented in various ways other than those described herein. A person skilled in the art can make similar analogy and modification according to the practical applications without departing from the spirit of the present invention, and therefore the contents of the detailed embodiments herein should not be construed as limiting to the scope of the present invention.
[0058]
[0059] Referring to
[0060] The PTC heating element 2 generally includes a housing, a heating assembly, insulating paper, and two electrode sheets which are placed within the housing. The two electrode sheets are provided at opposite sides of the heating assembly. At least one layer of insulating paper wraps the electrode sheet positioned disposed outside of the heating assembly. The housing comprises a hollow aluminum tube. At least one layer of sealing plug is provided at each end of the aluminum tube. The outside of the sealing plug is filled with a sealant. PTC heating elements are well known in the art and are therefore not described in detail in the present application.
[0061] The PTC heating element 2 may be positioned within the duct 11 of the heat conductor 1 fixed, by means of cold-pressing and well butts, against an inner surface of the duct 11. In order to prevent electrical leakage due to contact between the PTC heating element 2 and a precipitant or liquid, the PTC heating element 2 may be constructed to a length that is longer than the length of the heat conductor 1 such that at least one end of the PTC heating element 2 extends out from the duct 11 of the heat conductor 1.
[0062] Two ends of the heat conductor 1 are fixedly coupled to the first end cover 3 and the second end cover 4, respectively. A first compartment 33, a second compartment 34, an end cover water inlet 31 (
[0063] When the liquid is heated, the liquid flows from the end cover water inlet 31 of the first end cover 3 into the first compartment 33, and from the first compartment 33 into the first liquid passage channel 12 of the heat conductor 1. The liquid then flows through the interior of the second end cover 4 into the second liquid passage channel 13 of the heat conductor 1. The liquid then leaves the second liquid passage channel 13, enters the second compartment 34 of the first end cover 3, and exits the heater out of the end cover water outlet 32 of the first end cover 3.
[0064] According to this implementation, as best shown in
[0065] Similarly, as best shown in
[0066] In order to achieve better insulation, the portion of the PTC heating element 2 extending out of the duct 11 may be wrapped with an insulating and sealing layer 5 for protection. It may be preferred to fill an epoxy resin at the opening 41 of the second end cover 4 so as to wrap the exposed part of the PTC heating element 2 and form the insulating and sealing layer 5; however, in other implementations, depending on the application, a waterproof insulating rubber sheath, or insulating and sealing rubber plug may be used at the opening 41 of the second end cover 4 to provide insulation and sealing protection for the exposed portion of the PTC heating element 2. The above-mentioned insulating and sealing methods may effectively prevent leaking liquid from coming into contact with the PTC heating element 2, thereby avoiding an electrical leakage incident.
[0067]
[0068] For instance, as best shown in
[0069] When the liquid is heated, the liquid flows from the end cover water inlet a31 of the first end cover a3, through the liquid passage channel a12 of the heat conductor a1, and out of the end cover water outlet a41 of the second end cover a4.
[0070] In this example, the first end cover a3 includes at least one first groove a32 (
[0071] Similarly, the second end cover a4 includes at least one second groove a42 capable of accommodating a portion of the PTC heating element a2 extending out of the duct a11. The second groove a42 extends width-wise through an interior of the second end cover a4 and is in communication with the external space. Furthermore, a second sealing gasket a43 is interposed between an end face (
[0072] In order to achieve better insulation, the portion of the PTC heating element a2 extending out of the duct a11 may be wrapped with an insulating and sealing layer a5 for protection. It is preferable in the present embodiment to fill an epoxy resin at the first groove a32 of the first end cover a3 and the second groove a42 of the second end cover a4 so as to wrap the exposed part of the PTC heating element a2 to form an insulating and sealing layer a5. In addition to this, depending on the application, the insulating and sealing layer a5 may comprise a waterproof insulating rubber sheath, or an insulating and sealing rubber plug to provide an insulating and sealing protection for the exposed portion of the PTC heating element a2. The present implementation may effectively prevent leaking liquid from coming into contact with the PTC heating element a2, thereby avoiding the occurrence of an electrical leakage accident.
[0073] In summary, PTC liquid heaters of the present invention are characterized by constructing the length of the PTC heating element longer than that of the heat conductor so that at least one end of the PTC heating element extends from of the heat conductor. This causes the portion of the PTC heating element extending out of the heat conductor to be located at the outer side of the joining face of the two end covers and the heat conductor. Furthermore, the present invention is characterized by providing an insulating and sealing layer on the portion of the PTC heating element extending out of the duct for protection, thus achieving an enhanced insulating and sealing effect.
[0074] While described herein as being constructed of aluminum, the various components of the PCT heater may be constructed of stainless steel, plastic, alloy metal, or any other suitable non-corrosive material. Compared with prior art devices, PTC heaters of the present invention are advantageous because they include a protective layer that greatly reduces the risk of electrical leakage from the PTC heater, thereby providing high safety performance. Furthermore, PTC heaters according to the present invention comprise a simple structure and are effective in preventing an electrical leakage accident; thus, making them desirable to consumers.
[0075] In general, terms such as “coupled to,” and “configured for coupling to,” and “secured to,” and “configured for securing to” and “in communication with” (for example, a first component is “coupled to” or “is configured for coupling to” or is “configured for securing to” or is “in communication with” a second component) are used herein to indicate a structural, functional, mechanical, electrical, signal, optical, magnetic, electromagnetic, ionic or fluidic relationship between two or more components or elements. As such, the fact that one component is said to be in communication with a second component is not intended to exclude the possibility that additional components may be present between, and/or operatively associated or engaged with, the first and second components.
[0076]
[0077] Referring to
[0078] In some embodiments, with reference to
[0079] In some embodiments, each of the two sheet electrodes 1104 and 1105 is connected to a conductive line. In some embodiments, the PTC ceramic element 1106, the sheet electrodes 1104 and 1105, are wrapped by an insulating layer 1107 or a plurality of insulating layers 1107. In some embodiments, the insulating layers are polymer layers. In some embodiments, the insulating layers are polyimide layers.
[0080] With reference to
[0081] The composite film can be an aluminium layer with an insulating film, a copper layer with an insulating film, or a stainless layer with an insulating film. In some embodiments, the material of the protection layers are ceramic based. For example, the materials for the protection layer 1101 or the protection layer 1102 can contain aluminium oxide (Al.sub.2O.sub.3) or Zirconium dioxide (ZrO.sub.2). In some embodiments, the protection layer 1101 and the protection layer 1102 comprise mica group of sheet silicate (phyllosilicate) minerals if the mica group has good heat conductivity.
[0082] With reference to
[0083] A portion of the first set of the insulating layers 1107 located between the first electrode 1104 and the first protection layer 1101 is referred to as a first interlayer 1111. A portion of the first set of the insulating layers 1107 located between the second electrode 1105 and the second protection layer 1102 is referred to as a second interlayer 1112. It is noted that both the first interlayer 1111 and the second interlayer 1112 are insulating. In some embodiments, a hardness of the first protection layer 1101 is greater than that of the first insulating layer 1107. In some embodiments, a hardness of the second protection layer 1102 is greater than that of the first insulating layer 1107.
[0084] With reference to
[0085] With reference to
[0086] With reference to
[0087] In some embodiments, with reference to
[0088] With reference to
[0089] In the manufacturing process, small particles can be attached onto the PTC ceramic element 1106. The small particles can be metal particles or other particles. The particles may damage the insulating layers by making small holes on the insulating layers under a press force. The small holes can cause electrical leakage or other safety concerns. The protection layers can be used to prevent the particles from damaging the insulating layers.
[0090]
[0091] Then, a second protection layer is attached onto the second electrode with the first insulating layer in between (Step 1504). Then, the first protection layer and the second protection layer are wrapped by a second insulating layer around (Step S1505). Then, the PTC ceramic element, the first electrode, the second electrode, the first insulating layer, the first protection layer, the second protection layer, and the second insulating layer are placed into a heat conductive housing (Step S1506).
[0092]
[0093] Then, the PCT ceramic element, the first electrode, the second electrode, and the first insulating layer are placed into a tubular protection layer (Step S1603). Then, the tubular protection layer is wrapped by a second insulating layer (Step S1604). Then, the PTC ceramic element, the first electrode, the second electrode, the first insulating layer, the tubular protection layer, and the second insulating layer are placed into a heat conductive housing (Step S1605).
[0094] More detailed steps are explained as follows. With reference to
[0095] In some embodiments, the thermal conductivity of the silicon thermal conductive material is higher than 0.8. The temperature for normal performance of the thermal conductive material can be as high as 250 degree Celsius. In some embodiments, the material of the PTC ceramic element is barium carbonate (BaCO.sub.3)
[0096] Then, the PTC heating element 106, the first electrode 104, and the second electrode 105 are wrapped with one insulating layer 1107. In some embodiments, the PTC heating element 106, the first electrode 104, and the second electrode 105 are wrapped with multiple insulating layers 1107. In some embodiments, the number of layers of the insulating layers 1107 is 4. Increasing the number of layers of the insulating layers 1107 may provide good insulation effect, but may decrease thermal conductivity.
[0097] In some embodiments, the insulating layers 1107 comprises polymer. In some embodiments, the polymer is polyimide. In some embodiments, the insulating layer can have an adhesive layer on the backside. In some embodiments, the adhesive layer is tetraoxyethylene or propylene oxide.
[0098] Then, a first protection layer 1101 is attached onto the first electrode 104 with the insulating layers 1107 in between. A second protection layer 1102 is attached onto the second electrode 105 with the insulating layers 1107 in between. In some embodiments, the first protection layer 1101 can cover the first electrode 104. The second protection layer 1102 can cover the second electrode 105.
[0099] Then, the first protection layer 1101 and the second protection layer are wrapped by a second insulating layer 1108. In some embodiments, the first protection layer 1101 and the second protection layer are wrapped by a plurality of second insulating layers 1108. In some embodiments, the number of layers of the second insulating layers 1108 is 2. Increasing the number of layers of the insulating layers 1108 may provide good insulation effect, but may decrease thermal conductivity. In this case, the PTC ceramic element 1106, the first electrode 1104, the second electrode 1105, the first protection layer 1101, and the second protection layer 1102 are all wrapped by the second insulating layers 1108.
[0100] In some embodiments, the protection layer 1101 and the protection layer 1102 can contain aluminium, stainless steel, or copper. Aluminium and copper have similar thermal conductivity. Stainless steel is the most expensive compared with the other two materials.
[0101] The first insulating layers 1107 and the second insulating layers 1108 can be implemented using only one continuous insulating sheet. In some embodiments, the first insulating layers 1107 are formed using a first continuous insulating sheet and the second insulating layers 1108 are formed using a second continuous insulating sheet. That is, one continuous sheet is used to wrap and form the first set of insulating layers 1107 and another continuous sheet is used to wrap and form the second set of insulating layers 1108. Then, the first set of insulating layers 1107 and the second set of insulating layers 1108 are sealed by heat sealing at two ends.
[0102] It is noted that the heat sealing step of the insulating layers is needed only when the insulating layers contain adhesive layers on the backside. The temperature for heat sealing is about 400 degree Celsius, the pressure is about two kilograms, and the time needed is about 5 to 8 seconds.
[0103] Then, the PTC ceramic element 1106, the first electrode 1104, the second electrode 1105, the first set of insulating layers 107, and the second set of insulating layers 108 are all placed into a heat conductive housing 1103. Two rubber stoppers are plugged into two openings of the heat conductive housing 1103 respectively. Then the heat conductive housing 1103 is pressed from the top and the bottom sides.
[0104] In some embodiments, there are multiple pressing steps. In some embodiments, the heat conductive housing 1103 is turned 90 degrees after the first pressing and the same pressing step is applied again. In some embodiments, the turning step and pressing are repeated 4 times. The pressing step makes the heat conductive housing 1103, the the PTC ceramic element 1106, the first electrode 1104, the second electrode 1105, the first set of insulating layers 107, and the second set of insulating layers 108 coupled tight.
[0105]
[0106] In some embodiments, an insulating material 1401 is filled into the openings of the heat conductive housing 1103. In some embodiments, the insulating material 1401 is rubber. In some embodiments, the insulating material 1401 is polymer. In some embodiments, the insulating material 1401 is epoxy. In some embodiments, at least two electrical lines 1402 are extended out of the heat conductive housing 1103.
[0107] The insulating material 1401 is filled into the two openings of the heat conductive housing 1103. The insulating material 1401 can be silicone rubber or epoxy. Then, the heat conductive housing 1103 is put under an electrical dry-heat process with 230 volt for 2 hours to solidify the adhesive material applied onto the PTC ceramic element 106.
[0108] In some embodiments, a tubular shape protection layer 1201 is used. With reference to
[0109] Another method for forming a flat shape protection layer 1101 or 1102 is disclosed. An insulating film is attached onto a metal layer to form a composite film through an adhesive. In some embodiments, the attaching step is conducted by a dry-heat process. Then, the composite file is cut into smaller pieces for use.
[0110] A method for forming a tubular shape protection layer 1201 is disclosed. An insulating film is attached onto a metal layer to form a composite film through an adhesive. In some embodiments, the attaching step is conducted by a dry-heat process. Then, the composite film is cut into smaller pieces for use. Then, the composite film is bent to form the tubular shape protection layer.
[0111] A method for making a heating unit is disclosed. With reference to
[0112]
[0113] The heat conductive housing 1705 has a first opening 1706 and a second opening 1707. In some embodiments, an insulating material is filled into the first opening 1706 and the second opening 1707. The insulating material can be epoxy, polyimide, silicone, or rubber. The bent middle wall 1703, the inwardly curved first side wall 1701, and inwardly curved second side wall 1702 can help to press the inner structure of the heat conductive housing 1705 so that the inner structure becomes more tight and secure.
[0114]
[0115] In some preferred heating apparatus embodiments, the heating apparatuses are supplied with more than 3000 voltage to detect hidden flaw products. For example, a voltage more than 3500 voltage with 5 mA˜10 mA is applied to the heating apparatus for 60 seconds. In other words, such standard may be used for selecting configuration of elements for constructing a preferred heating apparatus.
[0116] In some preferred heating apparatus embodiments, the power consumed by the heating apparatus may be configured between 1500 W to 2500 W, or between 1800 W to 2200 W more specifically.
[0117] The present invention has been described above in connection with example implementations which, however, are not intended to be limiting to the scope of the present invention, and any person skilled in the art could make possible changes and modifications without departing from the spirit and scope of the present invention. Hence, any alteration, equivalent change and modification which are made to the above-mentioned examples in accordance with the technical substance of the present invention and without departing from the spirit of the present invention, would fall within the scope defined by the claims of the present invention.