Ceramic heater having enlarged windward area
10182470 ยท 2019-01-15
Assignee
Inventors
Cpc classification
F24H3/0447
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B2203/02
ELECTRICITY
H05B3/141
ELECTRICITY
International classification
F24H3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A ceramic heater having an enlarged windward area includes a conductive heat sink, at least one positive temperature coefficient (PTC) heating element, and an electrode plate. The conductive heat sink includes a cooling fin. The at least one PCT heating element is disposed on one side of the cooling fin. The electrode plate is disposed on the other side of the cooling fin. A conductive terminal protrudes from one end of the electrode plate. The conductive terminal includes a warped section and a flat section. A portion of the warped section and the flat section extend in a direction perpendicular to an extending direction of the electrode plate. Accordingly, heat dissipation is accelerated, a windward area is enlarged, and the effect of blowing out a hot airflow is enhanced, thereby avoiding a temperature rise of the conductive terminal.
Claims
1. A ceramic heater having an enlarged windward area, comprising: a conductive heat sink (110) including a cooling fin (120); at least one positive temperature coefficient (PTC) heating element (210) disposed on a first side of the cooling fin (120); and an electrode plate (300) disposed on a second side of the cooling fin (120), the first side being opposite to the second side, a conductive terminal (310) protruding from one end of the electrode plate (300), the conductive terminal (310) including a twisted section (312) and a flat section (314) connected to the twisted section (312), wherein a portion of a surface of the twisted section (312) and a surface of the flat section (314) are perpendicular to a major planar surface of the electrode plate (300).
2. The ceramic heater of claim 1, wherein the conductive heat sink (110) further comprises a heat conduction plate (130), the heat conduction plate (130) is disposed on the first side of the cooling fin (120) opposite to the electrode plate (300), the PTC heating element (210) is in contact with the heat conduction plate (130).
3. The ceramic heater of claim 1, wherein the conductive terminal (310) further includes a bend portion (316) bent toward the PTC heating element (210), and the bend portion (316) is vertically connected to the electrode plate (300).
4. The ceramic heater of claim 3, wherein the other end of the bend portion (316) is connected to the twisted section (312).
5. The ceramic heater of claim 1, wherein a width of the flat section (314) is greater than a width of the twisted section (312), and a protruding length of the flat section (314) is greater than or equal to a protruding length of the twisted section (312).
6. The ceramic heater of claim 5, wherein the width of the flat section (314) is substantially 8 millimeters, and the length of the flat section (314) is substantially 8 millimeters.
7. A ceramic heater having an enlarged windward area, comprising: two conductive heat sinks (110), each of the conductive heat sinks (110) including a cooling fin (120) and a heat conduction plate (130) attached to a side of the cooling fin (120); a ceramic frame (200) disposed between the two conductive heat sinks (130), the ceramic frame (200) including at least one PTC heating element (210) accommodated therein, each of two surfaces of the PTC heating element (210) being in contact with a surface of each of the two heat conduction plates (130); and two electrode plates (300), each of the electrode plates (300) being disposed on the other side of the cooling fin (120) opposite to the heat conduction plate (130), a conductive terminal (310) protruding from one end of each of the electrode plates (300), each of the conductive terminals (310) including a twisted section (312) and a flat section (314) connected to the twisted section (312), wherein a portion of a surface of the twisted section (312) and a surface of the flat section (314) are perpendicular to a major planar surface of the electrode plate (300).
8. The ceramic heater of claim 7, wherein the ceramic frame (200) further includes a first surface (202), a second surface (204), and an accommodation hole (206) passing through the first surface (202) and the second surface (204), the accommodation hole (206) is provided for positioning the PTC heating element (210), and the first surface (202) and the second surface (204) are attached to the two heat conduction plates (130) respectively.
9. The ceramic heater of claim 7, further comprising a gap (D), the gap (D) being formed between the conductive terminal (310) of each of the two electrode plates (300).
10. The ceramic heater of claim 7, wherein each of the conductive terminals (310) further includes a bend portion (316) bent toward the PTC heating element (210), and the bend portion (316) is vertically connected to the electrode plate (300).
11. The ceramic heater of claim 10, wherein the other end of each of the bend portions (316) is connected to each of the twisted sections (312).
12. The ceramic heater of claim 7, wherein the width of each of the flat sections (314) is substantially 8 millimeters, and the length of each of the flat sections (314) is substantially 8 millimeters.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The disclosure will become more fully understood from the detailed description and the drawings given herein below for illustration only, and thus does not limit the disclosure, wherein:
(2)
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DETAILED DESCRIPTION
(7) Detailed descriptions and technical contents of the present invention are illustrated below in conjunction with the accompany drawings. However, it is to be understood that the descriptions and the accompany drawings disclosed herein are merely illustrative and exemplary and not intended to limit the scope of the present invention.
(8)
(9) As shown in
(10) In the present embodiment, the conductive terminal 310 further includes a bend portion 316 bent toward the PTC heating element 210, and the bend portion 316 is vertically connected to the electrode plate 300. The other end of the bend portion 300 is connected to the warped section 312. The width of the flat section 314 is substantially 8 millimeters, and the length of the flat section 314 is substantially 8 millimeters. The length of the warped section 312 is substantially 9 millimeters. However, in other different embodiments, the width and the length of the flat section 314 can be greater than or less than 8 millimeters, the length of the warped section 312 is not limited to 9 millimeters, the width and the length can vary according to requirements or designs.
(11) Furthermore, the conductive heat sink 110 further includes a heat conduction plate 130. The heat conduction plate 130 is disposed on the other side of the cooling fin 120 opposite to the electrode plate 300, the PTC heating element 210 is preferably attached onto the heat conduction plate 130. In other words, the PTC heating element 210 and the electrode plate 300 are disposed on the two opposite sides of the cooling fin 120. The cooling fin 120 is preferably an integrally formed wave-shaped fin 140, so as to increase a contact area between the fin and the air, and to enhance a heat exchange effect and a heating effect of the present invention. A heat dissipation channel 150 is formed between each two adjacent bends of the wave-shaped fin 140, so the PTC heating element 210 and the electrode plate 300 are attached to two opposite sides, where the bends (not labelled) are formed, of the wave-shaped fin 140.
(12) When the ceramic heater 100 is powered on to generate heat, a cool airflow 160 parallelly passes through each heat dissipation channel 150 and takes away the heat of the cooling fin 120 to become a hot airflow 170. As shown in the figures, a direction of the cool airflow 160 is preferably perpendicular to an extending direction of the conductive terminal 310, so as to lower the temperature of the conductive terminal 310 during operation. This configuration increases a windward area, enhances the effect of blowing out the hot airflow 170, and accelerates heat dissipation, thereby avoiding a temperature rise of the conductive terminal 310 itself.
(13) In another broad embodiment, the present invention further provides a ceramic heater having an enlarged windward area, as shown in
(14) Referring to
(15) Each of the two electrode plates 300 is disposed on the other side of the cooling fin 120 opposite to the heat conduction plate 130. A conductive terminal 310 protrudes from one end of each of the electrode plates 300. Each of the conductive terminals 310 includes a warped section 312 and a flat section 314 connected to the warped section 312, wherein a portion of the warped section 312 and the flat section 314 extend in a direction perpendicular to an extending direction of the electrode plate 300.
(16) Referring
(17) Referring to
(18) Furthermore, each of the conductive terminals 316 further includes a bend portion 316 bent toward the PTC heating element 210, the bend portion 316 is vertically connected to the electrode plate 300, and the other end of each of the bend portions 316 is connected to each of the warped sections 312. As shown in
(19) Moreover, the width and the length of each of the flat sections 314 are both substantially 8 millimeters, and the length of each of the warped section 312 is substantially 8 millimeters. However, in other different embodiments, the width and the length of the flat section 314 can be greater than or less than 8 millimeters, the length of the warped section 312 is not limited to 9 millimeters, and the width and the length can vary according to requirements or designs.
(20) It is to be understood that the above descriptions are merely the preferable embodiments of the present invention and are not intended to limit the scope of the present invention. Equivalent changes and modifications made in the spirit of the present invention are regarded as falling within the scope of the present invention.