Heater and image forming apparatus
The heater design addresses the challenge of miniaturization by integrating the terminal and wiring pattern on one end of the substrate, achieving space-saving and cost-effective connections while managing thermal stress for stable operation.
Patent Information
- Application Number
- JP2021202228
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-14
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2041-12-14
AI Technical Summary
Existing heaters in image forming devices face challenges in providing a terminal on one end of a substrate in the longitudinal direction with a simple configuration, leading to increased width and difficulty in miniaturization due to the arrangement of heating elements and wiring patterns side by side, which complicates space-saving and cost-effective harness connections.
A heater design featuring a conductive substrate with insulating portions on both sides, where a terminal is connected to one end of the heating element, and the substrate itself acts as a wiring pattern, reducing the need for separate wiring and allowing a simple configuration with reduced width.
This design enables space-saving, resource-efficient, and cost-effective harness connections by providing a terminal on one end of the substrate, minimizing the heater's width and preventing warping through balanced thermal stress management.
Smart Images

Figure 0007738828000001 
Figure 0007738828000002 
Figure 0007738828000003
Abstract
Description
[Technical Field]
[0001] FIELD An embodiment of the present invention relates to a heater and an image forming apparatus. [Background technology]
[0002] Image forming devices such as copiers and printers are equipped with heaters for fixing toner. Heaters are also installed in print / erase devices installed in rewritable card readers / writers and the like. Typically, such heaters include a long substrate, a heating element provided on one side of the substrate and extending in the longitudinal direction of the substrate, and a pair of terminals electrically connected to both ends of the heating element. Each of the pair of terminals is electrically connected to a control circuit or the like provided outside the heater via a harness (connector and wiring). Therefore, a harness must be connected to each end of the long heater, making it difficult to achieve space-saving, resource-saving, and cost-saving harnesses.
[0003] In this case, if a wiring pattern extending along the heating element is provided on the surface of the substrate where the heating element is provided, a pair of terminals can be arranged on one end of the long substrate. In this way, a harness can be connected to one end of the long substrate. This allows for space-saving, resource-saving, and cost-reducing harnesses.
[0004] However, this requires arranging the heating element and the wiring pattern side by side in the short side (width) direction of the long substrate, which increases the short side (width) dimension of the substrate, making it difficult to miniaturize the heater.
[0005] Therefore, there has been a demand for the development of a technology that allows a terminal to be provided on one end of a substrate in the longitudinal direction with a simple configuration. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Japanese Patent Application Publication No. 02-65086 Summary of the Invention [Problem to be solved by the invention]
[0007] The problem to be solved by the present invention is to provide a heater and an image forming apparatus that can provide a terminal on one end side of a substrate in the longitudinal direction with a simple configuration. [Means for solving the problem]
[0008] The heater according to the embodiment includes a conductive substrate extending in one direction; a first insulating portion provided on a first surface of the substrate; a heating element provided on the first insulating portion and extending in the longitudinal direction of the substrate; a terminal provided on the first insulating portion, electrically connected to the heating element, and provided near one end of the substrate in the longitudinal direction of the substrate; wiring provided on the first insulating portion, electrically connected to the heating element and the conductive substrate, and provided near the other end of the substrate in the longitudinal direction of the substrate; and a second insulating portion provided on a second surface of the substrate opposite the first surface, the portion of the second surface near the end where the terminal is provided is exposed from the second insulating portion. [Effects of the Invention]
[0009] According to the embodiments of the present invention, it is possible to provide a heater and an image forming apparatus that can provide a terminal on one end side of a substrate in the longitudinal direction with a simple configuration. [Brief explanation of the drawings]
[0010] [Figure 1] 2 is a schematic diagram of the heater according to the present embodiment when viewed from one side in the Z direction. FIG. [Figure 2]FIG. 10 is a schematic diagram of the heater as viewed from the other side in the Z direction. [Figure 3] 2 is a schematic cross-sectional view of the heater in the direction of line AA in FIG. 1. [Figure 4] 1 is a schematic diagram illustrating an image forming apparatus according to an embodiment of the present invention; [Figure 5] FIG. 2 is a schematic diagram illustrating a fixing unit. DETAILED DESCRIPTION OF THE INVENTION
[0011] Hereinafter, embodiments will be illustrated with reference to the drawings. In each drawing, similar components are designated by the same reference numerals, and detailed descriptions thereof will be omitted where appropriate. In each drawing, arrows X, Y, and Z represent three mutually orthogonal directions. For example, the longitudinal direction of the substrate is the X direction, the short side direction (width direction) of the substrate is the Y direction, and the direction perpendicular to the surface of the substrate is the Z direction.
[0012] (heater) FIG. 1 is a schematic diagram of a heater 1 according to this embodiment when viewed from one side in the Z direction. FIG. 2 is a schematic diagram of the heater 1 as viewed from the other side in the Z direction. FIG. 3 is a schematic cross-sectional view of the heater 1 in FIG. 1 taken along the line AA. 1 to 3, the heater 1 includes, for example, a substrate 10, an insulating section 21 (corresponding to an example of a first insulating section), an insulating section 22 (corresponding to an example of a second insulating section), a heating element 30, a wiring section 41, wiring 42, and a protective section 50. The insulating section 21, the heating element 30, the wiring section 41, wiring 42, and the protective section 50 are provided on one surface 10a of the substrate 10 in the Z direction. The insulating section 22 is provided on the other surface 10b of the substrate 10 in the Z direction.
[0013] The substrate 10 is plate-shaped and has a surface 10a (corresponding to an example of a first surface) and a surface 10b (corresponding to an example of a second surface) opposite to the surface 10a. The substrate 10 has a shape that extends in one direction (for example, the X direction). The planar shape of the substrate 10 is, for example, an elongated rectangle. The thickness of the substrate 10 is, for example, about 0.5 mm to 1.0 mm. The width dimension W (short-side dimension; dimension in the Y direction) of the substrate 10 is, for example, about 5 mm to 15 mm. The length L (longitudinal dimension; dimension in the X direction) of the substrate 10 can be changed as appropriate depending on the size of the object to be heated (for example, paper).
[0014] The substrate 10 is made of a heat-resistant and electrically conductive material. Generally, substrates are made of ceramics such as aluminum oxide, but the heater 1 according to this embodiment is provided with a substrate 10 containing a metal. The metal may be, for example, stainless steel, an aluminum alloy, or the like.
[0015] As shown in FIGS. 1 and 3 , the insulating portion 21 has insulating properties and is provided on the surface 10a of the substrate 10. The insulating portion 21 can be provided, for example, so as to cover the surface 10a of the substrate 10. The insulating portion 21 is provided to insulate the conductive substrate 10 from the heating element 30, the wiring portion 41, and the wiring 42. Therefore, the insulating portion 21 is provided between the substrate 10 and the heating element 30, the wiring portion 41, and the wiring 42. The insulating portion 21 can be formed, for example, from an inorganic material such as ceramics or glass material. The insulating portion 21 can be formed, for example, by thermal spraying or firing.
[0016] Heat generating element 30 converts the applied power into heat (Joule heat) Heat generating element 30 is provided on insulating section 21 (on the surface of insulating section 21 opposite to the substrate 10 side). The heating element 30 extends, for example, in the X direction. For example, one heating element 30 can be provided in the center of the substrate 10 in the Y direction. The heating element 30 can be formed using, for example, ruthenium oxide (RuO2), a silver-palladium (Ag-Pd) alloy, etc. The heating element 30 can be formed, for example, by applying a paste-like material onto the insulating part 21 using a screen printing method or the like, and then curing it using a baking method or the like.
[0017] The wiring portion 41 is provided, for example, on the insulating portion 21. The wiring portion 41 has, for example, a terminal 41a and a wire 41b. For example, the terminal 41a is electrically connected to the heating element 30 via a wire 41b. For example, the terminal 41a is provided near one end 10c of the substrate 10 in the X direction.
[0018] The wiring 41b electrically connects the terminal 41a and the heating element 30. One end of the wiring 41b is electrically connected to the terminal 41a. The other end of the wiring 41b is electrically connected to the heating element 30.
[0019] The terminals 41a and the wiring 41b are formed using a material containing, for example, silver, copper, etc. For example, the terminals 41a and the wiring 41b can be formed by applying a paste-like material onto the insulating portion 21 using a screen printing method or the like, and then curing the paste using a baking method or the like.
[0020] The wiring 42 is provided on, for example, the insulating part 21. The wiring 42 is electrically connected to, for example, the heating element 30 and the conductive substrate 10. For example, the wiring 42 is provided near the other end 10d of the substrate 10 in the X direction. For example, one end of the wiring 42 is electrically connected to the heating element 30. The other end of the wiring 42 is electrically connected to the substrate 10 via a hole or a notch provided in the insulating part 21. Note that the vicinity of the end 10d of the surface 10a of the substrate 10 may be exposed from the insulating part 21, and the other end of the wiring 42 may be electrically connected to the surface 10a.
[0021] The wiring 42 is formed using a material containing, for example, silver, copper, etc. For example, the wiring 42 can be formed by applying a paste-like material onto the insulating portion 21 using a screen printing method or the like, and then curing the paste using a baking method or the like.
[0022] The protective portion 50 is provided on the insulating portion 21, for example, and extends in the X direction. The protective portion 50 covers, for example, the heating element 30 and the wiring 41b. However, the terminal 41a is exposed from the protective portion 50. For example, as shown in FIG. 1 , in the X direction, the distance L1 between the end 10c of the substrate 10 and the end of the protective portion 50 is greater than the distance L2 between the end 10c of the substrate 10 and the end of the terminal 41a on the protective portion 50 side. If the terminal 41a is exposed from the protective portion 50, a harness connector can be attached to the terminal 41a.
[0023] The protective portion 50 has functions, for example, to insulate the heating element 30 and the wiring 41b, to transfer heat generated in the heating element 30 to the outside, and to protect the heating element 30 and the wiring 41b from external forces, corrosive gases, and the like. The protective portion 50 is formed from a material that is heat-resistant and insulating, and has high chemical stability and thermal conductivity. The protective portion 50 is formed from an inorganic material, such as ceramics or glass. In this case, the protective portion 50 can also be formed using a glass material to which a filler containing a material with high thermal conductivity, such as aluminum oxide, has been added. The thermal conductivity of the glass material to which the filler has been added can be, for example, 2 [W / (m·K)] or more.
[0024] The protective portion 50 can be formed, for example, by applying a paste-like material onto the insulating portion 21, the heating element 30, the wiring 41b, and the wiring 42 using a screen printing method or the like, and then hardening it using a baking method or the like.
[0025] 2 and 3, insulating portion 22 has insulating properties and is provided on surface 10b of substrate 10. Insulating portion 22 can be provided, for example, so as to cover surface 10b of substrate 10. However, the vicinity of end 10c of surface 10b of substrate 10, on which terminal 41a of substrate 10 is provided, is exposed from insulating portion 22. If the vicinity of end 10c of surface 10b of substrate 10 is exposed from insulating portion 22, a harness connector can be attached to conductive substrate 10.
[0026] For example, in the X direction, the distance L3 between the end 10c of the substrate 10 and the end of the insulating portion 22 can be greater than the distance L2 between the end 10c of the substrate 10 and the end of the terminal 41a on the protective portion 50 side. For example, the distance L3 may be the same as the distance L1 between the end 10c of the substrate 10 and the end of the protective portion 50.
[0027] The insulating portion 22 is provided to insulate the conductive surface 10b side of the substrate 10. The thickness, material, and forming method of the insulating portion 22 can be, for example, the same as the thickness, material, and forming method of the insulating portion 21 described above.
[0028] The thickness of insulating part 22 can also be made thicker than the thickness of insulating part 21. For example, when heater 1 is used or manufactured (for example, when protective part 50 is baked), thermal stress occurs due to differences in the thermal expansion coefficients of the materials. This thermal stress may cause warping of heater 1. If heater 1 warps, the distance between heater 1 and the object to be heated may vary, resulting in uneven heating of the object to be heated.
[0029] In this case, the thermal stress generated by the substrate 10, the insulating portion 21, and the protective portion 50 on the side of the surface 10a of the substrate 10 can be offset by the thermal stress generated by the substrate 10 and the insulating portion 22 on the side of the surface 10b of the substrate 10. If the thermal stresses are offset, the occurrence of warping in the heater 1 can be suppressed. In this case, if the thickness of the insulating portion 22 is increased, the value of the thermal stress generated on the side of the surface 10b of the substrate 10 can be made closer to the value of the thermal stress generated on the side of the surface 10a of the substrate 10. Therefore, the occurrence of warping in the heater 1 can be more effectively suppressed. For example, the thickness of the insulating portion 22 can be approximately the sum of the thicknesses of the insulating portion 21 and the protective portion 50.
[0030] The heater 1 may further be provided with a detector that detects the temperature of the heating element 30. The detector may be, for example, a thermistor. The detector may be provided on at least one of the side of the surface 10a of the substrate 10 and the side of the surface 10b of the substrate 10.
[0031] In recent years, there has been a demand for smaller heaters and for harnesses (connectors and wiring) connected to heaters to be more space-saving, resource-efficient, and cost-effective. A typical heater has a terminal electrically connected to one end of a heating element extending in the longitudinal direction of a substrate, and a terminal electrically connected to the other end of the heating element. In such heaters, harnesses are connected to both ends of a long substrate, making it difficult to reduce the space, resources, and cost of the harness.
[0032] Also proposed is a heater having a terminal electrically connected to one end of a heating element extending in the longitudinal direction of a substrate and a terminal electrically connected to the other end of the heating element via a wiring pattern. Such a heater allows a harness to be connected to one end of a long substrate. This allows for space-saving, resource-saving, and cost-effective harnesses. However, in such heaters, the heating element and the wiring pattern are arranged side by side in the short direction (width direction) of the substrate, which increases the width of the substrate and makes it difficult to miniaturize the heater.
[0033] In contrast, in the heater 1 according to this embodiment, a terminal 41a electrically connected to one end of the heating element 30 is provided near one end 10c of the substrate 10. The other end of the heating element 30 is electrically connected to the conductive substrate 10. The surface 10b of the substrate 10 near the end 10c serves as a terminal. In other words, the conductive substrate 10 functions as both a wiring pattern and a terminal.
[0034] In this way, a terminal can be provided with a simple configuration on one end side in the longitudinal direction of the board 10. This allows for space saving, resource saving, and cost reduction of the harness, and also allows for a reduction in the width dimension W of the board 10.
[0035] (Image forming device) Next, an example of the image forming apparatus 100 according to the present embodiment will be described. In the following, a case where the image forming apparatus 100 is a copier will be described as an example. However, the image forming apparatus 100 is not limited to a copier, and may be any apparatus provided with a heater for fixing toner. For example, the image forming apparatus 100 may be a printer or the like. It may also be a rewritable card reader / writer or the like.
[0036] FIG. 4 is a schematic diagram illustrating the image forming apparatus 100 according to the present embodiment. FIG. 5 is a schematic diagram illustrating the fixing unit 200. As shown in FIG. As shown in FIG. 4, the image forming apparatus 100 includes, for example, a frame 110, an illumination unit 120, an imaging element 130, a photosensitive drum 140, a charging unit 150, a discharging unit 151, a developing unit 160, a cleaner 170, a storage unit 180, a conveying unit 190, a fixing unit 200, and a controller 210.
[0037] The frame 110 is box-shaped and houses an illumination unit 120, an imaging element 130, a photosensitive drum 140, a charging unit 150, a developing unit 160, a cleaner 170, part of a storage unit 180, a conveying unit 190, a fixing unit 200, and a controller 210 inside. A window 111 made of a light-transmitting material such as glass may be provided on the top surface of the frame 110. An original 500 to be copied is placed on the window 111. A moving unit for moving the position of the original 500 may also be provided.
[0038] The illumination unit 120 is provided near the window 111. The illumination unit 120 has a light source 121 such as a lamp, and a reflecting mirror 122, for example. The imaging element 130 is provided near the window 111 . The photosensitive drum 140 is provided below the illumination unit 120 and the imaging element 130. The photosensitive drum 140 is rotatable. On the surface of the photosensitive drum 140, for example, a zinc oxide photosensitive layer or an organic semiconductor photosensitive layer is provided. The charging unit 150 , the discharging unit 151 , the developing unit 160 , and the cleaner 170 are provided around the photosensitive drum 140 .
[0039] The storage section 180 has, for example, a cassette 181 and a tray 182. The cassette 181 is detachably attached to one side of the frame 110. The tray 182 is provided on the side of the frame 110 opposite to the side on which the cassette 181 is attached. The cassette 181 stores paper 510 (e.g., blank paper) before copying. The tray 182 stores paper 511 on which a copy image 511a has been fixed.
[0040] The transport unit 190 is provided below the photosensitive drum 140. The transport unit 190 transports the paper 510 between the cassette 181 and the tray 182. The transport unit 190 has, for example, a guide 191 that supports the transported paper 510, and transport rollers 192 to 194 that transport the paper 510. The transport unit 190 can also be provided with a motor that rotates the transport rollers 192 to 194.
[0041] The fixing unit 200 is provided downstream of the photosensitive drum 140 (on the tray 182 side). As shown in FIG. 5, the fixing unit 200 includes, for example, a heater 1, a stay 201, a film belt 202, and a pressure roller 203. The heater 1 is attached to the stay 201 on the side of the conveyance line for the paper 510. The heater 1 can be embedded in the stay 201. For example, the side of the heater 1 on which the protective part 50 is provided can be exposed from the stay 201.
[0042] The film belt 202 covers the stay 201 provided with the heater 1. The film belt 202 can be made of a heat-resistant resin such as polyimide.
[0043] The pressure roller 203 is disposed opposite the stay 201. The pressure roller 203 has, for example, a core 203a, a drive shaft 203b, and an elastic portion 203c. The drive shaft 203b protrudes from the end of the core 203a and is connected to a driving device such as a motor. The elastic portion 203c is disposed on the outer surface of the core 203a. The elastic portion 203c is formed from a heat-resistant elastic material. The elastic portion 203c can be formed from, for example, a silicone resin.
[0044] Controller 210 is provided inside frame 110. Controller 210 has, for example, a calculation unit such as a CPU (Central Processing Unit) and a storage unit in which a control program is stored. The calculation unit controls the operation of each element provided in image forming apparatus 100 based on the control program stored in the storage unit. Controller 210 can also include an operation unit through which a user inputs copying conditions, etc., and a display unit that displays the operating status and abnormality indications, etc. It should be noted that the control of each element provided in the image forming apparatus 100 can be performed using known techniques, and therefore detailed description thereof will be omitted.
[0045] Although several embodiments of the present invention have been described above, these embodiments are presented by way of example only and are not intended to limit the scope of the invention. These novel embodiments can be embodied in various other forms, and various omissions, substitutions, modifications, etc. can be made without departing from the spirit of the invention. These embodiments and their modifications are included within the scope and spirit of the invention, as well as within the scope of the invention and its equivalents as set forth in the claims. Furthermore, the above-described embodiments can be implemented in combination with each other. [Explanation of symbols]
[0046] 1 heater, 10 substrate, 10a surface, 10b surface, 10c end, 10d end, 21 insulating portion, 22 insulating portion, 30 heating element, 41 wiring portion, 41a terminal, 41b wiring, 42 wiring, 50 protective portion, 100 image forming apparatus, 200 fixing portion
Claims
1. a substrate having electrical conductivity and a shape extending in one direction; a first insulating portion provided on a first surface of the substrate and having insulating properties; a heating element provided on the first insulating portion and extending in the longitudinal direction of the substrate; a terminal provided on the first insulating portion, electrically connected to the heating element, and provided near one end of the substrate in the longitudinal direction of the substrate; a wiring provided on the first insulating portion, electrically connected to the heating element and the conductive substrate, and provided near the other end of the substrate in the longitudinal direction of the substrate; a second insulating portion having insulating properties and provided on a second surface of the substrate opposite to the first surface; Equipped with The heater is exposed from the second insulating portion near the end of the second surface on the side where the terminal of the substrate is provided.
2. a protective portion provided on the first insulating portion and covering the heating element; The heater according to claim 1 , wherein the terminals are exposed from the protective portion.
3. 3. The heater according to claim 1, wherein the heating element is provided at a center of the substrate in the widthwise direction of the substrate.
4. An image forming apparatus comprising the heater according to any one of claims 1 to 3.
Citation Information
Patent Citations
Heating element
JP1990065086A
Ceramic heater
JP1994202503A
Heating element, heater and image forming device
JP1994202510A
Fixing device
JP2021012294A
fuser
JP2021117448A