Electric heater

The electric heater's innovative case design, featuring a strengthened first connecting portion and recessed heat dissipation fins, addresses the structural integrity and heat dissipation challenges faced by existing heaters, ensuring sustained performance and heat transfer efficiency.

JP7678343B2Active Publication Date: 2025-05-16DENSO TRIM CO LTD
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Patent Information

Application Number
JP2022044107
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-18
Publication Date
2025-05-16
Estimated Expiration
2042-03-18

AI Technical Summary

Technical Problem

Existing electric heaters used in vehicle interiors face issues with maintaining structural integrity and heat dissipation due to the reaction force from spring members, leading to decreased load on the heater portion over time.

Method used

The electric heater design incorporates a resin case with a specific shape and structure, including a first connecting portion that increases the case's strength and spring load resistance, and recesses in the heat dissipation fins to maintain heat transfer efficiency.

Benefits of technology

This design effectively withstands the reaction force from the spring member, suppresses case deformation, and ensures adequate heat dissipation, maintaining the heater's performance over time.

✦ Generated by Eureka AI based on patent content.

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Abstract

To enable a case to withstand a reaction force even when a heater unit is urged by using a spring member and to prevent an amount of heat radiation of the heater unit from being diminished.SOLUTION: A heater unit includes: a heat generating element; a heat radiating fin; an electrode; and a spring member configured to urge in a first direction that is a layering direction. A case includes a pair of first frame portions covering the heater unit at both ends in the first direction and a pair of second frame portions covering the heater unit at both ends in a second direction; and the first frame portions and the second frame portions define an air passage. In the case, a first connection portion for connecting the first frame portions is formed so as to protrude from the first frame portions to a heat radiating fin side. Recesses corresponding to the first connection portions are formed in a pair of plate members and a fin member of the heat radiating fin. Therefore, the heat radiating fins and the first connection portions do not interfere with each other. Further, sufficient heat radiation areas can be secured for the heat radiating fins.SELECTED DRAWING: Figure 6
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Description

[Technical field]

[0001] The present disclosure relates to an electric heater that heats air and is suitable for use, for example, in heating the interior of an automobile. [Background technology]

[0002] In some electric heaters, the heater unit is held in a resin case. In Patent Document 1, a spring member is used to press the heater unit arranged in the case.

[0003] However, the spring member installed between the resin case and the heater applies a load to the heater and a reaction force to the resin case at the same time. The resin case to which the reaction force is applied will experience creep (deformation of the resin part) over time, and the load on the heater will gradually decrease accordingly. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] JP 2009-51494 A Summary of the Invention [Problem to be solved by the invention]

[0005] In view of the above, the present disclosure aims to devise a case shape that can withstand the reaction force even when a spring member is used to bias the heater section, and to ensure that the amount of heat dissipation from the heater section is not impaired by the devised case shape. [Means for solving the problem]

[0006] The first disclosure includes a heater section having a flat heating element that generates heat when energized, a heat dissipation fin that dissipates heat from the heating element to an air passage, an electrode that is connected to a power source to supply power to the heating element, and a spring member that biases the heating element, the heat dissipation fin, and the electrode in a first direction in which the heating element, the heat dissipation fin, and the electrode are stacked to bring the heating element, the heat dissipation fin, and the electrode into contact with each other. The first disclosure also includes a case made of a resin material that has a pair of first frame sections that cover the heater section at both ends in the first direction and a pair of second frame sections that cover the heater section at both ends in a second direction that is perpendicular to the first direction, and an interior partitioned by the first frame sections and the second frame sections serves as an air passage.

[0007] The first case of the present disclosure further has a first connecting portion connecting the first frame portions, and the first connecting portion is formed to protrude from the first frame portions toward the heat dissipation fins. The heat dissipation fins include a pair of plate members and a fin member disposed between the pair of plate members, and the pair of plate members and the fin member have recesses formed therein corresponding to the first connecting portion.

[0008] In the first aspect of the present disclosure, the case is provided with a first connecting portion that connects the first frame portions, thereby increasing the strength of the case in the first direction. In particular, the first connecting portion is formed to protrude toward the heat dissipation fin from the first frame portions, thereby increasing the spring load resistance strength of the first connecting portion. Therefore, even if the case is subjected to the biasing force of the spring member for a long period of time, deformation of the case can be effectively suppressed.

[0009] In the first aspect of the present disclosure, the pair of plate members and fin members of the heat dissipating fin are formed with recesses corresponding to the first connecting portions, so that even if the first connecting portions are formed to protrude from the first frame toward the heat dissipating fin side, there is no interference between the heat dissipating fin and the first connecting portions. Therefore, even if the first connecting portions are formed to protrude toward the heat dissipating fin side, a sufficient heat dissipation area can be ensured for the heat dissipating fin.

[0010] In the second disclosure, the first connecting portion is disposed in both the third direction, which is the upstream side of the air passage, and the fourth direction, which is the downstream side, with respect to the heat dissipation fin. The heat dissipation fin forms recesses in both the third direction and the fourth direction. In the second disclosure, the first connecting portion is disposed on both the upstream side and the downstream side, so that the spring load resistance strength of the case can be further increased. In addition, the strength of the case can be balanced between the upstream side and the downstream side. In addition, in the second disclosure, the heat dissipation fin also forms recesses in both the third direction and the fourth direction, so that the heat transfer area of ​​the heat dissipation fin can be maintained on both the upstream side and the downstream side.

[0011] In the third aspect of the present disclosure, the case is formed so as to be separable in both the third and fourth directions. In the present disclosure, the first connecting portion is formed to protrude from the first frame portion toward the heat dissipation fin side, and the heat dissipation fin also has a pair of plate members and a fin member formed with a recess corresponding to the first connecting portion, so that the assembly of the heater portion and the case is important. In the third aspect of the present disclosure, the electric heater can be assembled by sandwiching the heater portion between the separated cases.

[0012] In the fourth aspect of the present disclosure, the heat generating element is disposed in a portion of the case where the first connecting portion does not exist. In the present disclosure, the first connecting portion is formed to protrude from the first frame portion toward the heat dissipation fin side, but since the heat generating element is disposed in a portion where the first connecting portion does not exist, the first connecting portion does not interfere with the heat generating element.

[0013] In a fifth aspect of the present disclosure, a plurality of first connecting portions are formed to divide the air passage at approximately equal intervals, thereby making it possible to maintain the spring load resistance strength of the case approximately uniform over the entire length in the second direction.

[0014] In a sixth aspect of the present disclosure, the case is further provided with a second connecting portion that connects the second frame portions. The electrode is disposed within the projected area of ​​this second connecting portion within the air passage. In the sixth aspect of the present disclosure, the strength of the case is improved by further providing the second connecting portion. Furthermore, by disposing the electrode within the projected area of ​​the second connecting portion, the formation of the second connecting portion does not substantially reduce the passage cross-sectional area of ​​the air passage. [Brief description of the drawings]

[0015] [Figure 1] FIG. 1 is a diagram showing the configuration of an automotive air conditioner. [Diagram 2] FIG. 2 is a front view of the electric heater of the present disclosure. [Diagram 3] FIG. 3 is a right side view of the electric heater of FIG. [Figure 4] FIG. 4 is an exploded front view of the heater unit. [Diagram 5] FIG. 5 is a front view of the heater unit. [Figure 6] FIG. 6 is a perspective view showing a part of the heat dissipation fin. [Figure 7] FIG. 7 is a perspective view illustrating the assembled state of the case. [Figure 8] FIG. 8 is a cross-sectional view illustrating the heat exchange area of ​​a heat dissipation fin. [Figure 9] FIG. 9 is a diagram illustrating the heat dissipation area and the heat exchange efficiency. [Figure 10] FIG. 10 is a diagram illustrating deformation of the case. [Figure 11] FIG. 11 is an exploded perspective view of the heater portion. [Figure 12] FIG. 12 is a left side view of the electric heater of FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0016] An example of the present disclosure will be described below with reference to the drawings. As shown in FIG. 1, the electric heater 100 is used together with an automotive air conditioner 200. The automotive air conditioner 200 selectively draws in air from an exterior air intake 201 or an interior air intake, and blows the air into the interior of the vehicle with a blower fan 202. The air is cooled by an evaporator 203 in a refrigeration cycle, and is heated by a hot water heater 204. The hot water heater 204 uses engine coolant as its heat source. However, immediately after the engine is started, the engine coolant is not warmed, and the heating heat source is insufficient. In particular, when the engine becomes smaller due to hybridization of automobiles and the engine operating rate decreases, the heat shortage of the engine coolant becomes noticeable.

[0017] The electric heater 100 is used to make up for such a lack of heat source. It is arranged downstream of the air flow of the hot water heater 204, and heats the air sent from the blower fan 202. The air heated by the hot water heater 204 and the electric heater 100 and the air cooled by the evaporator 203 are mixed in the air mix door 205 and controlled to a predetermined temperature. Mainly hot air is blown from the defroster outlet 206 toward the windshield, mainly cold air is blown from the upper outlet 207 toward the head and chest of the occupant, and mainly hot air is blown from the lower outlet 208 toward the lower body of the occupant.

[0018] 2, the heater section 150 of the electric heater 100 is housed in a case 180. This case 180 is disposed in an air conditioning case 210 of the air conditioner 200. Specifically, the air conditioning case 210 has an assembly opening corresponding to the case 180 of the electric heater 100, and the case 180 is inserted into the air conditioning case 210 through this assembly opening. The assembly opening of the air conditioning case 210 is closed by a flange 190 of the case 180. Details of the case 180 will be described later.

[0019] 4 and 11 show exploded views of the elements constituting the heater section 150. The heater section 150 includes a heat generating element 110 and an electrode 140 that supplies power to the heat generating element 110. The heater section 150 also includes a heat dissipation fin 130 that dissipates heat from the heat generating element to an air passage. The heat dissipation fin 130 is also a conductor that provides electrical conductivity between the electrodes 140. The heater section 150 also includes a spring member 170. In the following description, the stacking direction of the heat dissipation fin 130, the electrode 140, the heat generating element 110, and the spring member 170 (the up-down direction in FIG. 4) is referred to as a first direction, and the direction perpendicular to the first direction (the left-right direction in FIG. 4) is referred to as a second direction.

[0020] Heating element 110 is made of a PTC element or the like, and generates heat when electricity is applied. A PTC (Positive Temperature Coefficient) element is an element that has the property that its electrical resistance increases rapidly above a certain temperature, and therefore generates heat when electricity is applied. However, when the temperature at which heat is generated exceeds a certain temperature, the electrical resistance becomes too high and almost no current flows, so that heat is not generated above a certain temperature. Therefore, by using this element, it is possible to prevent the heater from overheating. This heating element 110 is rectangular in shape, with a length of 35 mm in the second direction, a width of 7 mm, and a thickness of about 1 mm in the first direction.

[0021] 5 and 6, the heat dissipation fin 130 is formed by sandwiching a fin member 131 between a pair of plate members, a first plate member 132 and a second plate member 133. The fin member 131 is made of an aluminum alloy containing manganese, and is formed by bending it multiple times. The first plate member 132 and the second plate member 133 are also made of an aluminum alloy, and the ends in the second direction are bent at approximately right angles to form an L shape.

[0022] The fin member 131, the first plate member 132 and the second plate member 133 are fixed to each other by integral brazing. The heat dissipating fin 130 has a height of about 10 mm and a width of about 7 mm in the first direction. The length of the heat dissipating fin 130 in the second direction differs depending on the capacity required for the electric heater 100, but is about 180 to 280 mm.

[0023] Heat dissipation fin 130 has recesses 134 formed in a portion corresponding to first connecting portion 184 of case 180, which will be described later. Recesses 134 are formed in substantially the same shape in fin member 131, first plate member 132, and second plate member 133, and have a width in the second direction of approximately 2 millimeters. Moreover, recesses 134 have a depth of approximately 1 millimeter or more.

[0024] The heat generating element 110 is sandwiched between the heat dissipation fins 130 and the electrodes 140. The electrodes 140 are made of brass and include a positive electrode 141 that receives power from a battery (not shown) and a negative electrode 142. In the example of FIG. 4 and FIG. 5, the heat dissipation fins 130 are arranged in five layers stacked in the first direction. Four layers of the heat generating element 110 are arranged between the heat dissipation fins 130 and the electrodes 140. Only one layer of the electrode 140 is arranged at the bottom in the first direction in FIG. 4, FIG. 5, and FIG. 11. Therefore, the electrodes 140 are arranged in five layers, and the positive electrodes 141 and the negative electrodes 142 are arranged alternately. In this way, the heat dissipation fins 130, the heat generating elements 110, and the electrodes 140 are stacked in a plurality of stages in the first direction to form the heater section 150.

[0025] The spring member 170 is bent in a wave shape having peaks and valleys toward the first direction over the entire length in the second direction, and when assembled to the case 180, the peaks and valleys of the spring member 170 are deformed so as to be crushed in the first direction. This deformation of the spring member 170 applies a biasing force in the first direction to the heat generating element 110, the electrodes 140, and the heat dissipating fins 130. In other words, the heat generating element 110, the electrodes 140, and the heat dissipating fins 130 are brought into close contact with each other by the biasing force of the spring member 170. The biasing force of the spring member 170 is about 50 to 190 Newtons.

[0026] Case 180 is made of polybutylene terephthalate (PBT) and has first frame 181 covering both ends of heater section 150 in the first direction and second frame 182 covering both ends in the second direction. That is, the first frame and second frame form a rectangular air passage 183. Case 180 has a size large enough to house heater section 150, and is about 200 to 300 millimeters in the first direction and about 70 to 100 millimeters in the second direction. In addition, if the upstream side of the air flow flowing into air passage 183 is defined as a third direction and the downstream side is defined as a fourth direction, the widths of case 180 in the third and fourth directions are about 8 to 12 millimeters.

[0027] The case 180 is integrally formed with a first connecting portion 184 that connects the first frame portions 181 in the first direction. Three first connecting portions 184 are formed at approximately equal intervals in the second direction, and the air passage 183 is divided into four in the second direction by these first connecting portions 184. The first connecting portions 184 are formed to protrude toward the weak heater portion 150 by about 1 millimeter. The first connecting portions 184 are not simply flat plates, but are formed to protrude in a rib shape, thereby improving the load-bearing capacity of the case 180 in the first direction. Here, the protrusion of the first connecting portion 184 toward the heater portion 150 narrows the arrangement space of the heater portion 150. However, if the first connecting portion 184 is protruded outward in the third and fourth directions, the dimensions of the case 180 in the third and fourth directions will increase, which is not preferable for mounting on the air conditioning case 210. The heating element 110 described above is not disposed in the area where the first connecting portions 184 are formed. It is disposed between the second frame portion 182 and the first connecting portion 184. Therefore, even if the first connecting portion 184 is formed to protrude inward in the third and fourth directions, it does not interfere with the heating element 110.

[0028] In addition, second connecting portions 185 that connect the second frame portions 182 in the second direction are also formed integrally with the case 180. Four second connecting portions 185 are formed in the first direction, and the positions at which the second connecting portions 185 are formed are positions at which the heat generating elements 110 and the electrodes 140 are disposed. In other words, the heat dissipation fins 130 are not positioned within the projected area of ​​the second connecting portions 185, and the heat dissipation performance of the heater portion 150 is not adversely affected.

[0029] The width of the first connecting portion 184 in the second direction is about 2 millimeters. As described above, the first connecting portion 184 is formed to protrude inward in the third and fourth directions from the first frame portion 181 (see FIG. 8). The first connecting portion 184 connects the first frame portions 181 in this manner, and three first connecting portions 184 are formed at approximately equal intervals and protrude inward in the third and fourth directions, so that deformation of the case 180 in the first direction can be effectively suppressed. The number of first connecting portions 184 is not limited to three. It may be set appropriately according to the biasing force of the spring member 170. The intervals between the first connecting portions 184 are preferably equal, but can be appropriately selected in terms of design. That is, the biasing force of the spring member 170 is concentrated at the connection points between the first frame portion 181 and the first connecting portion 184. As long as excessive stress concentration that causes creep deformation does not occur at these connection points, the intervals between the first connecting portions 184 do not necessarily need to be equal. In any case, in the present disclosure, first connecting portion 184 is formed in a protruding rib shape, so it is possible to make the plate thickness of first frame portion 181 thinner than in an example in which first connecting portion 184 is formed in a flat plate shape. Also, it is possible to use a material with a lower load-bearing strength for case 180, compared to an example in which first connecting portion 184 is formed on a flat plate.

[0030] FIG. 10 shows the difference in radial deformation of the case 180 depending on whether the first connecting portion 184 is present or not. The deformation of the rectangular case 180 having only the first frame portion 181 and the second frame portion 182 without the first connecting portion 184 is indicated by A. The measurement point is the middle position of the first frame portion 181 in the second direction, and the deformation direction is outward in the first direction. As shown in FIG. 10, the first frame portion 181 deforms outward in the first direction by about 3.5 millimeters immediately after the spring member 170 is assembled. Then, when the case 180 is placed in an environment of 100 degrees Celsius, it deforms outward in the first direction by another about 1 millimeter after 1500 hours. This deformation of the case 180 may cause the biasing force of the spring member 170 to be insufficient, which may cause a problem in the electrical conduction between the heating element 110 and the electrode.

[0031] On the other hand, the deformation of the case 180 provided with the first connecting portion 184 is indicated by B. In this example, the width of the first connecting portion 184 in the second direction is 1.5 mm, and the amount of inward protrusion in the third and fourth directions is 1 mm. Also, four first connecting portions 184 are formed in the air passage 183 of the case 180. As shown in FIG. 10, even when the spring member 170 is assembled, the case 180 is hardly deformed in the first direction. Moreover, even after 1,500 hours in an environment of 100 degrees Celsius, there is still almost no deformation in the first direction.

[0032] Forming first connecting portion 184 in this manner is effective in increasing the spring load resistance strength of case 180 in the first direction. On the other hand, since first connecting portion 184 is formed to protrude inward in the third and fourth directions, it reduces the heat dissipation area of ​​heat dissipation fin 130 as shown by C in Fig. 8. Generally, heat dissipation fin 130 sandwiches fin member 131 between rectangular first plate member 132 and second plate member 133, so that the widths of heat dissipation fin 130 in the third and fourth directions must be shortened in order to prevent first plate member 132 and second plate member 133 from interfering with first connecting portion 184.

[0033] In contrast, in the present disclosure, as described in FIG. 6 and FIG. 11, the recess 134 is formed in the heat dissipating fin 130. Then, as shown by D in FIG. 8, the first connecting portion 184 is made to correspond to the recess 134. In the heat dissipating fin 130 of the present example, the recess 134 is formed in advance by cutting out the first plate member 132 and the second plate member 133 at a predetermined position, and the fin member 131 is sandwiched between the first plate member 132 and the second plate member 133 in which the recess 134 is formed. In the sandwiched state, the recess 134 is not formed in the fin member 131, but the fin member 131 is crushed inward in the third direction and the fourth direction at the position where the recess 134 is formed between the first plate member 132 and the second plate member 133, so that the recess 134 is also formed in the fin member 131.

[0034] In this way, squeezing and molding the fin member 131 creates resistance to air flow and is therefore undesirable. However, since the portion where the recess 134 is formed is a portion hidden by the first connecting portion 184, the effect on heat transfer performance is limited. Moreover, it is effective in widening the width of the heat dissipation fin 130 in the third and fourth directions in areas other than the portion where the recess 134 is formed. In other words, in the portion where the first connecting portion 184 does not exist, the width of the heat dissipation fin 130 in the third and fourth directions can be widened to approximately the same as the width of the case 180, and the heat dissipation area of ​​the heat dissipation fin 130 can be increased.

[0035] FIG. 9 shows the relationship between the heat generating element 110 and the heat dissipation area of ​​the heat dissipation fin 130. The horizontal axis of FIG. 9 shows the width of the heat dissipation fin 130 in the third and fourth directions. 0 mm on the horizontal axis shows the heat dissipation amount of the heat dissipation fin 130 with a width of 7 mm in the third and fourth directions. On the other hand, the vertical axis of FIG. 9 shows the increase or decrease in the heat dissipation amount with the increase or decrease in the width dimension of the heat dissipation fin 130. On the vertical axis, the heat dissipation amount of the heat dissipation fin 130 with a width dimension of 7 mm is set to 100%. 1 mm on the horizontal axis is the heat dissipation fin 130 with a width increased by 1 mm to 8 mm. The heat dissipation amount is shown on the vertical axis, and is 105%, indicating that the heat dissipation efficiency has improved by 5 percent. Conversely, -1 mm on the horizontal axis shows the heat dissipation fin 130 with a width of 6 mm. The heat dissipation amount shown on the vertical axis is 95%, indicating that the heat dissipation efficiency has deteriorated by 5 percent.

[0036] In this example, since the thickness of first connecting portion 184 is about 1 mm, forming recess 134 makes it possible to increase the width by 1 mm in each of the third and fourth directions. In the state shown in Fig. 9, this is 2 mm, and the heat dissipation efficiency can be improved by 10% while keeping the widths of case 180 in the third and fourth directions the same.

[0037] Next, a procedure for assembling the electric heater 100 having the above configuration will be described. As described above, the fin member 131 is sandwiched between the first plate member 132 and the second plate member 133, in which the recesses 134 are formed, and the first plate member 132, the second plate member 133, and the fin member 131 are brazed together. Next, the fin member 131 is crushed to form the recesses 134 in the fin member 131 as well.

[0038] The thus-formed heat dissipation fins 130, electrodes 140, and heat generating elements 110 are combined and held by a jig as a sub-assembly of a heater section 150 as shown in Fig. 5. This heater section 150 is sandwiched between a third direction panel 186 and a fourth direction panel 187 of a case 180 as shown in Fig. 7. More specifically, one panel (e.g., the third direction panel 186) and the heater section 150 are assembled such that the first connecting portion 184 is positioned in the recess 134 of the heat dissipation fin 130. Next, the other panel (e.g., the fourth direction panel 187) is assembled such that the first connecting portion 184 is positioned in the recess 134 of the heat dissipation fin 130.

[0039] Next, the flange 190 is assembled from the second direction so that the electrodes 140 fit into the electrode holes 191. As shown in Fig. 3, a first connector portion 192 and a second connector portion 193 are formed on the flange 190, and three electrodes 140 are arranged on the first connector portion 192 and two electrodes 140 are arranged on the second connector portion 193.

[0040] Finally, the spring member 170 is inserted between the bottom plate portion 194 integrally formed with the flange 190 and the lowermost electrode. The spring member 170 is inserted through an insertion hole 189 formed in a mating surface 188 between the third direction panel 186 and the fourth direction panel 187 (see FIG. 12). By inserting the leaf spring 170, a biasing force in the first direction is applied to the heater portion 150, and the connection between the heat generating element 110, the electrode 140, and the heat dissipation fins 130 is strengthened.

[0041] The amount of heat generated by the heating element 110 is controlled by changing the number of positive electrodes 141 to be energized. To obtain the maximum amount of heat generation, all of the positive electrodes 141 are energized. The central positive electrode 141 supplies power to the upper and lower heating elements 110, and so is supplied with, for example, 300 watts of power, and the upper and lower positive electrodes 141 are supplied with, for example, 150 watts of power. The amount of heat generated by the heater section 150 can be reduced by reducing the number of positive electrodes 141 to be energized.

[0042] The above-mentioned example is a desirable response of the present disclosure, but the present disclosure can be modified in various ways. In the above-mentioned example, the fin member 131 is crushed in advance to form the recess 134, but the recess 134 may be formed only in the first plate member 132 and the second plate member 133. That is, when the first connecting portion 184 of the case 180 fits into the recess 134 of the first plate member 132 and the second plate member 133, the fin member 131 may be crushed by the first connecting portion 184. Since the fin member 131 is thin, about 0.2 mm, it is possible to crush it by the first connecting portion 184 as well.

[0043] A method other than crushing may be used to form the recesses 134 in the fin member 131. For example, the recesses 134 can be formed by cutting. In that case, the recesses 134 can be formed by cutting not only the fin member 131 but also the first plate member 132 and the second plate member 133 together.

[0044] In the above example, the first connecting portions 184 are disposed in both the third and fourth directions of the case 180, and the recesses 134 are also formed in the third and fourth directions. This is a well-balanced arrangement between the upstream and downstream of the air flow. However, even if the first connecting portions 184 are disposed only in either the third or fourth direction, the spring load resistance strength of the case 180 can be maintained. In that case, it is sufficient to form the recesses 134 only in the direction in which the first connecting portions 184 are disposed.

[0045] In the above example, the spring member 170 is disposed on the bottom plate portion 194 side, but the position of the spring member 170 may be any position as long as it is an end portion of the heater portion 150 in the first direction. It may be disposed below as in the above example, or may be disposed above. It is also possible to dispose the spring member 170 both above and below.

[0046] In the above example, the heater section 150 is assembled as a sub-assembly and then attached to the case 180 as shown in FIG. 5, but the heat dissipation fins 130, the electrodes 140, and the heat generating element 110 may be assembled separately into the case.

[0047] In the above example, the heat generating element 110 is directly sandwiched between the heat dissipation fins 130 and the electrodes 140. This is useful as it reduces the number of parts. However, the heat generating element 110 may also be held by a resin holding plate. By using a holding plate, insulation of the heat generating element 110 can be ensured.

[0048] The above-mentioned materials and sizes are merely examples and can be changed according to the required performance, etc. The number and arrangement of the heat generating elements 110 can also be changed in various ways. The heat generating elements 110 may be arranged not only between the second frame portion 182 and the first connecting portion 184, but also between adjacent first connecting portions 184. In addition, the number of heat dissipation fins 130 can also be changed. [Explanation of symbols]

[0049] 100 Electric heater 110 Heating element 130 Heat dissipation fin 134 Recess 140 electrodes 170 Spring parts 180 cases 181 First Frame Section 182 Second frame section 184 1st connection part 185 2nd connection part

Claims

1. a heater section including a flat heating element that generates heat when current is applied, a heat dissipation fin that dissipates heat from the heating element into an air passage, an electrode that is connected to a power source and supplies power to the heating element, and a spring member that biases the heating element, the heat dissipation fin, and the electrode in a first direction in which the heating element, the heat dissipation fin, and the electrode are stacked, to bring the heating element, the heat dissipation fin, and the electrode into contact with each other; a pair of first frame portions covering the heater portion at both ends in the first direction, and a pair of second frame portions covering the heater portion at both ends in a second direction perpendicular to the first direction, and a case made of a resin material, the case defining an interior portion defined by the first frame portions and the second frame portions as the air passage; The case further includes a first connecting portion that connects the first frame portions, and the first connecting portion is formed to protrude from the first frame portions toward the heat dissipation fins, The heat dissipation fin includes a pair of plate members and a fin member disposed between the pair of plate members, and the pair of plate members and the fin member are formed with recesses corresponding to the first connecting portions.

1. An electric heater comprising:

2. the first connecting portion is disposed on both an upstream side of the air passage in a third direction and a downstream side of the air passage in a fourth direction with respect to the heat dissipation fin; The heat dissipation fin forms the recess in both the third direction and the fourth direction.

2. The electric heater according to claim 1 .

3. The case is formed so as to be separable in both the third direction and the fourth direction.

3. The electric heater according to claim 2.

4. The heating element is disposed in a portion of the case where the first connecting portion is not present.

4. The electric heater according to claim 1, wherein the heater is a heater.

5. The first connecting portion is formed in plurality so as to divide the air passage at substantially equal intervals.

5. The electric heater according to claim 1, wherein the heater is a heater.

6. The case further includes a second connecting portion that connects the second frame portions, The electrode is disposed within the air passage and within a projected area of ​​the second connection portion.

6. An electric heater according to claim 1, wherein the heater is a heater for heating the electric heater.

Citation Information

Patent Citations

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