Liquid heating device

The liquid heating device addresses miniaturization and sealing issues by using a ceramic heater with a slit and strategic outlet placement to discharge boiling bubbles, ensuring efficient heating and prolonged heater life.

JP7801245B2Active Publication Date: 2026-01-16NITERRA CO LTD
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Patent Information

Application Number
JP2022563892
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-05-18
Filing Date
2022-05-02
Publication Date
2026-01-16
Estimated Expiration
2042-05-02

AI Technical Summary

Technical Problem

Existing liquid heating devices face challenges in miniaturization due to the use of infrared lamps, which increase costs, and ceramic heaters prone to boiling bubbles that cause localized overheating and sealing issues, especially when placed horizontally.

Method used

A liquid heating device design with a ceramic heater having a slit in the axial direction, where the inlet and outlet are arranged to minimize boiling bubble accumulation near the sealing portion, and the outlet is positioned to facilitate bubble discharge, even when the heater is horizontal.

Benefits of technology

The design effectively prevents boiling bubbles from adhering to the sealing portion, maintaining sealing performance and extending the heater's lifespan while allowing for miniaturization and high heating efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

[Problem] To provide a liquid heating device in which boiling bubbles generated from a ceramic heater are easily discharged to the outside, and reduction in sealing performance and life of the ceramic heater is suppressed. [Solution] A liquid heating device 200 in which liquid is heated by the ceramic heater, comprises: a container 100 having an internal space 100i, an introduction port 103 and a discharge port 105; and ceramic heaters 171, 172 that are held at a proximal end 17R by the container, the ceramic heaters having a ceramic sheet 17s, which is wound around the outer periphery of a ceramic substrate 17g and includes a heat-generating portion 17a, and having a slit 17v that is formed as a non-heat-generating portion in the wound portion of the ceramic sheet and extends in the direction of axis L. The discharge port is arranged apart from the introduction port in the axial direction, the direction of a first axis n1 in the vicinity 105R of an opening end 105e facing the internal space of the discharge port intersects with the axial direction, and the distal end of the heat-generating portion is positioned on the proximal end side with respect to the discharge port.
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Description

[Technical Field]

[0001] The present invention relates to a liquid heating device that heats a liquid such as water using a ceramic heater. [Background technology]

[0002] Hot water is required for warm water washing toilet seats, fuel cell systems, water heaters, 24-hour baths, heating of vehicle washer fluid, in-vehicle air conditioners, etc. Therefore, liquid heating devices that heat water using a built-in heater are used (Patent Document 1). In particular, for the purpose of rapidly heating hot water for warm water toilet seats or for miniaturizing liquid heating devices, a rod-shaped ceramic heater is used, in which a heat generating element is embedded in a ceramic sheet wrapped around the outer periphery of a long, thin ceramic base (Patent Document 2). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2008-96057 [Patent Document 2] Patent No. 5923295 Summary of the Invention [Problem to be solved by the invention]

[0004] However, the technology described in Patent Document 1 uses an infrared lamp as a heater, which makes it difficult to miniaturize the heater, and therefore the liquid heating device as well.Furthermore, the infrared lamp also leads to increased costs. On the other hand, because rod-shaped ceramic heaters have a heat-generating portion at their tip, their base end is cantilevered and sealed to the container of the liquid heating device. While ceramic heaters excel at rapid heating, they are prone to generating boiling bubbles when producing hot water. If these boiling bubbles accumulate around the heater, the heater in that area is exposed, easily causing localized overheating within the container. If this overheating occurs near a sealing portion made of resin or the like, the sealing portion may soften, reducing the sealing ability. Furthermore, as ceramic heaters become smaller in size and their heat generating area decreases, the heater temperature must be made higher to generate the same amount of heat as before, which increases the amount of boiling bubbles that are generated when hot water is produced.Furthermore, if boiling bubbles adhere to the ceramic heater, that part will be in a dry-heating state, causing the heater to be subjected to thermal shock and shortening the heater's lifespan.

[0005] In this regard, the technology described in Patent Document 2 has the sealing portion on the bottom and the ceramic heaters arranged upright, so even if boiling bubbles occur in the heater near the sealing portion, the bubbles escape upward, but there is a problem in that it cannot be applied when the ceramic heater is placed horizontally. For this reason, even when the ceramic heater is placed horizontally, it is necessary to prevent boiling bubbles from remaining in the heater near the sealing portion.

[0006] SUMMARY OF THE INVENTION Therefore, an object of the present invention is to provide a liquid heating device that makes it easy to discharge boiling bubbles generated from a ceramic heater to the outside of a container, thereby suppressing deterioration of sealing performance and shortening of the life of the ceramic heater. [Means for solving the problem]

[0007] In order to solve the above problems, the liquid heating device of the present invention comprises: a container having an internal space and an inlet and an outlet for liquid that communicate with the internal space; and a ceramic heater that is attached to the container with its tip end located within the internal space and its base end held by the container, the ceramic heater having a ceramic base extending in an axial direction and a ceramic sheet that is wrapped around the outer periphery of the ceramic base and has a heat-generating portion, the ceramic heater having a slit that extends in the axial direction as a non-heat-generating portion in the wound portion of the ceramic sheet, wherein a gap is formed between the container and the ceramic heater, and the liquid is heated by the ceramic heater while being introduced from the inlet, passing through the internal space, and flowing to the outlet, the outlet is disposed apart from the inlet in the axial direction, and a first axial direction in the vicinity of an open end of the outlet that faces the internal space intersects with the axial direction, and the tip of the heat-generating portion is The edge portion closest to the base end in the opening area, which is the area obtained by projecting the opening end of the outlet in the first axial direction. It is characterized in that it is located closer to the base end than the

[0008] In this liquid heating device, in a structure in which the inlet and outlet are arranged in the axial direction of the ceramic heater, water introduced from the inlet flows toward the outlet toward the tip end of the ceramic heater, and is therefore less likely to flow toward the sealing portion of the holding portion between the ceramic heater and the container, which is located at the base end of the ceramic heater. This makes it possible to prevent boiling bubbles from remaining in the heater near the sealing portion. Furthermore, since the exhaust outlet is arranged so that the first axis direction intersects with the axial direction, even when the ceramic heater is placed horizontally (the axial direction is horizontal), the outlet outlet can be directed upward to easily discharge the water heated in the container, and thus the boiling bubbles, to the outside, further preventing the boiling bubbles from coming into contact with and remaining on the heater near the sealing portion. Furthermore, since the tip of the heat generating portion is located closer to the base end than the outlet, boiling bubbles are prevented from accumulating near the outlet, further facilitating the discharge of boiling bubbles outside the container. As a result, boiling bubbles generated from the ceramic heater can be easily discharged to the outside of the container, and deterioration of the sealing performance and shortening of the life of the ceramic heater can be suppressed.

[0009] In the liquid heating device of the present invention, the ceramic heater has a heat capacity of 100 W / cm 2 It may have a watt density of 1000 W or more. This liquid heating device allows the ceramic heater to have a high output, which makes it possible to miniaturize the ceramic heater and, in turn, the entire liquid heating device. Furthermore, the smaller the ceramic heater, the higher the heater temperature must be, which increases the number of boiling bubbles, making the present invention even more effective.

[0010] In the liquid heating device of the present invention, a plurality of the ceramic heaters may be arranged in the container, each extending in the same direction, and the tip of the heat generating portion of all the ceramic heaters may be located closer to the base end than the outlet. According to this liquid heating device, the present invention can be applied to cases where there are multiple ceramic heaters.

[0011] In the liquid heating device of the present invention, the heat generating portion may be embedded in the ceramic sheet. This liquid heating device makes it easier to manufacture the ceramic heater. [Effects of the Invention]

[0012] According to this invention, boiling bubbles generated from the ceramic heater can be easily discharged to the outside of the container, and deterioration of the sealing property and shortening of the life of the ceramic heater can be suppressed. [Brief explanation of the drawings]

[0013] [Figure 1] 1 is a perspective view showing the appearance of a liquid heating device according to an embodiment of the present invention. [Figure 2] FIG. 2 is a perspective view showing the appearance of the ceramic heater. [Figure 3] FIG. 2 is an exploded perspective view showing the configuration of the ceramic heater. [Figure 4] FIG. 2 is a perspective view taken along line AA in FIG. 1. [Figure 5] FIG. 2 is a perspective view showing a first opening surface of the inlet. [Figure 6] 10 is a cross-sectional view showing the flow of water when the tip of the heat generating part faces the outlet. FIG. [Figure 7] FIG. 2 is a cross-sectional view taken along line BB in FIG. [Figure 8] FIG. 8 is a cross-sectional view taken along line CC in FIG. [Figure 9] FIG. 8 is a cross-sectional view taken along line DD in FIG. [Figure 10] FIG. 8 is a cross-sectional view taken along line EE in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0014] Hereinafter, an embodiment of the present invention will be described. FIG. 1 is a perspective view of a liquid heating device 200 according to an embodiment of the present invention, FIG. 2 is a perspective view of a ceramic heater 171, FIG. 3 is an exploded perspective view of the ceramic heater 171, FIG. 4 is a perspective view along line AA in FIG. 1, FIG. 5 is a perspective view showing the first opening surface S of the outlet 105, and FIG. 6 is a cross-sectional view showing the flow of water when the tip of the heat generating portion 17a faces the outlet 105.

[0015] In this embodiment, the liquid heating device 200 is installed on a warm-water washing toilet seat, and is configured to heat room-temperature water with two built-in ceramic heaters 171 and 172 to supply hot water.

[0016] The liquid heating device 200 has a generally elongated cylindrical shape (a cylindrical shape with a rounded rectangular cross section) as a whole, and includes a container 100 and two ceramic heaters 171 and 172. The container 100 has an elongated cylindrical body 101 having an internal space 100i for containing liquid W (water), a front end cap 107 and a rear end cap 109 that close both axial end openings of the body 101, and an inlet 103 and an outlet 105 for liquid W that are integrally formed with the body 101. Both axial ends of the body 101 protrude radially like flanges, and both ends of the body 101, the front end cap 107 and the rear end cap 109 are airtightly sealed by O-rings 190 (FIG. 7).

[0017] The ceramic heaters 171, 172 are each rod-shaped extending in the direction of the axis L and are aligned in the same direction (parallel). The ceramic heaters 171, 172 are attached to the container 100 by having their base ends 17R cantilevered and held in the opening of the rear end lid 109 of the container 100 by a sealing portion 180. The tip ends 17T of the ceramic heaters 171, 172 are located within the internal space 100i. It goes without saying that the holding portion held by the sealing portion 180 is closer to the base end than the heat-generating portion 17a of the ceramic heater, which will be described later.

[0018] Here, the ceramic heaters 171, 172 being aligned in the same direction (parallel) means that, taking into consideration errors during installation, the maximum angle formed by the axes of all the ceramic heaters 171, 172 is 10 degrees or less (including 0 degrees). Furthermore, lead wires 15 and 16 (described later) are connected to the base end 17R of the ceramic heaters 171 and 172 for supplying power from the outside.

[0019] In this example, the axial direction of the body 101 is parallel to the axis L, and the ceramic heaters 171, 172 are housed in the internal space 100i of the body 101 such that the arrangement direction of the ceramic heaters 171, 172 is along the long axis of the cross section of the body 101. However, the axial direction of the body 101 may form a small predetermined angle with the axis L. Also, although not shown, in this example, the liquid heating device 200 is installed on the warm water washing toilet seat so that the axis L direction is approximately horizontal and the outlet 105 side is positioned slightly upward, and each ceramic heater 171, 172 is placed horizontally.

[0020] The inlet 103 and the outlet 105 are connected to the internal space 100i and are arranged at a distance from each other in the direction of the axis L (which is also the axial direction of the body 101). The liquid W introduced from the outside through the inlet 103 passes through the internal space 100i along the flow direction F and is discharged from the outlet 105. In addition, a gap is formed between the inner wall of the container 100 and the ceramic heaters 171, 172, and the liquid W introduced into the internal space 100i through the inlet 103 is heated while coming into contact with the outer surfaces of the ceramic heaters 171, 172 along the axis L direction, and then flows to the outlet 105.

[0021] Next, the configuration of the ceramic heater will be described with reference to Figures 2 and 3. Since the ceramic heaters 171 and 172 have the same shape, only the ceramic heater 171 will be described. 2, the ceramic heater 171 has a heating element 17h that generates heat when externally energized via lead wires 15 and 16. The heating element 17h has a heating portion 17a at its front end, which is formed as a heating pattern by meandering a conductor in the direction of the axis L, and a pair of lead portions 17b drawn out from both ends of the heating portion 17a to its rear end. The heat generating portion 17a has a length of Lh in the direction of the axis L.

[0022] More specifically, as shown in FIG. 3, the heating element 17h has a heating portion 17a, two lead portions 17b, and an electrode pattern 17c formed at the rear end of each lead portion 17b. The heating element 17h is sandwiched between two ceramic green sheets 17s1 and 17s2. The ceramic green sheets are made of alumina. The heating portion 17a and the lead portions 17b are made of tungsten, rhenium, or the like. Two electrode pads 17p to which lead terminals 18 (see FIG. 2) are brazed are formed on the surface of the ceramic green sheet 17s2. The electrode pattern 17c is connected to the electrode pads 17p via through-holes to form a laminate of ceramic green sheets.

[0023] Furthermore, by wrapping this laminate around a rod-shaped ceramic base 17g whose main component is alumina or the like with the ceramic green sheet 17s2 facing outward and firing it, the ceramic green sheets 17s1 and 17s2 become ceramic sheets 17s and are wrapped around the outer periphery of the ceramic base 17g to produce an integrated ceramic heater 171. The lead wires 15 and 16 are crimped to lead terminals 18 and electrically connected to them (see FIG. 2). In this example, the ceramic substrate 17g is solid, but it may be cylindrical, in which case it is desirable to seal the through-holes with resin or the like to prevent water from leaking.

[0024] Here, when the laminate is wound around the ceramic base 17g, a gap is left between both ends of the laminate along the direction of the axis L. For this reason, a slit 17v, which is a recessed groove along the direction of the axis L, is formed as a non-heat-generating portion in the wound portion on the outer surface of the ceramic heater 171. Therefore, when looking at a radial cross section of the ceramic heater 171, the heat generating portion 17a is embedded in the ceramic heater 171 in the form of a ring with ends, and a slit 17v, which serves as a non-heat generating portion, is formed between the two ring ends 17e of the heat generating portion 17a.

[0025] Alternatively, the ceramic green sheet 17s1 may be omitted, the heating element 17h may be formed on the back side of the ceramic green sheet 17s2 by printing or the like, and the ceramic green sheet 17s2 may be wrapped around the ceramic green sheet 17s2 with the heating element 17h facing the ceramic base 17g. In this case, the heating element 17h (heat generating portion 17a) is disposed between the ceramic base 17g and the ceramic green sheet 17s2. In contrast to this, in the embodiment of FIG. 3, the heat generating element 17h (heat generating portion 17a) is sandwiched, that is, "embedded", between the ceramic sheets (ceramic green sheets 17s1 and 17s2).

[0026] As described above, the case where the heat generating portion 17a is embedded in the ceramic sheet (ceramic green sheets 17s1, 17s2) and the case where it is arranged between the ceramic base 17g and the ceramic green sheet 17s2 are collectively referred to as "the ceramic sheet has a heat generating portion."

[0027] Next, the configuration of the liquid heating device 200 will be described in more detail with reference to FIGS. As shown in Fig. 4, the first axis n1 direction of the exhaust port 105 intersects with the axis L direction of the ceramic heaters 171 and 172 (in this example, perpendicular to the axis L direction). Note that Fig. 4 is a perspective view from a direction perpendicular to the axis L direction and the axis of the exhaust port 105. Furthermore, the "axis L direction" compared with the first normal n1 is the average direction of the axis L directions of the ceramic heaters 171 and 172.

[0028] 5, the first axis n1 is an axis in the vicinity 105R of the open end 105e facing the internal space 100i of the outlet 105, and the open end 105e is the boundary between the inner circumferential surface 100w of the container 100 and the outlet 105. This boundary is a portion where the curvature of the inner circumferential surface 100w changes suddenly near the outlet 105. Furthermore, "the vicinity 105R of the opening end 105e" refers to the inner wall of the discharge port 105, including the opening end 105e and downstream of the opening end 105e. The "first axis n1" is the axis of the columnar body formed by this inner wall, and passes through the center of gravity of the cross section of the columnar body. 5 is a view seen from the internal space 100i side of the container 100 toward the outlet 105. In this example, the open end 105e is circular.

[0029] The reason for specifying "first axis n1 in the vicinity 105R" here is that, in the present invention, the important thing is the direction of the liquid W flowing from the internal space 100i toward the open end 105e of the outlet 105. In other words, the flow of the liquid W flowing from the open end 105e to the outside is restricted by the direction of the inner wall of the outlet 105 in the vicinity 105R, and the important thing is the direction of "first axis n1 in the vicinity 105R."

[0030] Furthermore, as shown in FIG. 4, the tip of the heat generating part 17a is located closer to the base end part 17R than the outlet 105. Here, "closer to the base end 17R than the outlet 105" means closer to the base end 17R than the edge 105f of the first opening region S of the outlet 105 closest to the base end 17R. The "first opening region S" is a region obtained by projecting the opening end 105e in the direction of the first axis n1.

[0031] With this configuration, in a structure in which the inlet 103 and the outlet 105 are arranged in the direction of the axis L of the ceramic heaters 171, 172, water introduced from the inlet 103 flows toward the outlet 105 along the flow direction F toward the tip end 17T of the ceramic heaters 171, 172, and is therefore less likely to flow toward the sealing portion 180 located on the base end 17R side of the ceramic heaters 171, 172. This makes it possible to prevent boiling bubbles from remaining in the heater near the sealing portion 180. Furthermore, since the exhaust outlet 105 is arranged so that the direction of the first axis n1 intersects the direction of the axis L, even when the ceramic heaters 171, 172 are placed horizontally (the direction of the axis L is horizontal), the outlet of the exhaust outlet 105 can be directed upward to easily discharge the water heated in the container 100, and thus the boiling bubbles, to the outside, thereby further preventing the boiling bubbles from remaining on the heater near the sealing portion 180.

[0032] Furthermore, since the tip of the heat generating portion 17a is located closer to the base end portion 17R than the outlet 105, when the liquid W flows along the flow direction F, boiling bubbles are prevented from accumulating near the outlet 105, and the discharge of boiling bubbles to the outside of the container 100 is further promoted. On the other hand, if the tip of the heat generating portion 17a faces the (first opening surface S of) the outlet 105 as shown in FIG. 6, there is a problem in that the discharge of boiling bubbles to the outside of the container 100 is impeded.

[0033] In summary, according to this embodiment, boiling bubbles generated from the ceramic heater can be easily discharged to the outside of the container, and deterioration of the sealing property and shortening of the life of the ceramic heater can be suppressed.

[0034] In addition, the ceramic heaters 171 and 172 are 100W / cm 2 A watt density of this magnitude is preferable because it allows the ceramic heater and therefore the entire liquid heating device 200 to be miniaturized. Furthermore, the smaller the ceramic heater is, the higher the heater temperature must be, which increases the number of boiling bubbles, making the present invention even more effective.

[0035] The remaining configuration of the liquid heating device 200 will be described with reference to FIGS. As shown in FIG. 8, the slits 17v of the ceramic heaters 171 and 172 face outward in the longitudinal direction of the container 100, that is, on the side farther from the inlet 103. In this structure, in which the inlet 103 and outlet 105 are arranged in the direction of the axis L of the ceramic heaters 171, 172, the slits 17v do not exist (are opposed to) the liquid that first hits the outer surfaces of the ceramic heaters 171, 172 at a high flow rate from the inlet 103, so the liquid first introduced into the internal space 100i is effectively heated by the heat generating portion 17a. As a result, the entire water is heated evenly, improving heating efficiency.

[0036] As shown in FIG. 9, a partition wall 100s is provided in the internal space 100i between the inlet 103 and the outlet 105 to separate each of the ceramic heaters 171, 172, and the water introduced from the inlet 103 flows through the partition wall 100s for each of the ceramic heaters 171, 172. This allows water to flow through the narrow gaps in the partition wall 100s and be heated by the individual ceramic heaters 171 and 172, further improving the heating efficiency.

[0037] As shown in FIG. 10, the inner space 100i near the outlet 105 is not provided with a partition wall 100s, and is a single inner space 100i. This increases the volume of the internal space 100i near the outlet 105, making it easier for boiling bubbles generated on the inlet 103 side to escape to the outside through the outlet 105. In addition, water that has been heated inside the separate partition walls 100s joins together, providing hot water at a uniform temperature. 7 is a cross-sectional view taken along the axis L passing through the center of the minor axis of the liquid heating device 200, and FIGS. 8, 9, and 10 are cross-sectional views perpendicular to the axis L of FIG.

[0038] It goes without saying that the present invention is not limited to the above-described embodiments, but covers various modifications and equivalents that fall within the spirit and scope of the present invention. For example, the shapes of the liquid heating device and the ceramic heater are not limited. The liquid heating device may be provided with one ceramic heater, or may be provided with three or more ceramic heaters. [Example]

[0039] The liquid heating device 200 shown in FIG. 1 was manufactured. First, alumina powder and glass component powder, which act as sintering aids, were ground and mixed with water in a mill to form a clay-like mixture, which was then mixed with a binder. This mixture was extruded using a die equipped with a core in an extruder to form a cylindrical ceramic substrate, which was then cut to a predetermined length and calcined. The outer diameter and length of the ceramic substrate were determined taking into account the firing shrinkage rate. On the other hand, a heater pattern was printed and formed on an alumina green sheet using tungsten and molybdenum paste, along with a terminal connected to the heater pattern on the opposite side of the sheet. The size of the heater printing area was determined taking into account the shrinkage rate during ceramic firing. The heater pattern was formed by calculating the resistance value at room temperature from the resistance value at high temperatures and the resistance variation due to temperature rise (resistance temperature coefficient x temperature difference x initial resistance value). The sheet size was also prepared and cut taking into account the shrinkage rate during firing.

[0040] The printed ceramic green sheet was cut to the specified size and wrapped around a pre-fired ceramic substrate, then fired together to obtain a ceramic heater with a total heater length of 60 mm, heater area length of 30 mm, outer diameter of 2.8 mm, and room temperature resistance of 9 Ω. The exposed terminals of the fired heater were nickel-plated, and nickel leads were brazed to the heater with Ag solder. Lead wires were then crimped to the leads to complete the ceramic heater.

[0041] Next, two ceramic heaters were attached to the resin container. Specifically, each ceramic heater was passed through two through-holes in the rear cap and fixed in place using an epoxy adhesive as a sealing member. The rear cap, body, and front cap were then airtightly connected via an O-ring to complete the liquid heating device 200. Water at a flow rate of 450 cc / min and a temperature of 5°C was introduced into the obtained liquid heating device 200, and the applied voltage per ceramic heater was controlled so that the outlet temperature was 35°C. As a result, the sealed portion was always immersed in water, and the generated boiling bubbles did not remain near the sealed portion. Furthermore, water was continuously flowed through the liquid heating device 200 at the above flow rate, and hot water was normally obtained even after 10 consecutive cycles of 15 seconds on, 15 seconds off. In this case, the resistance change for each heater was the same, so it is considered that the heater temperatures were the same. [Explanation of symbols]

[0042] 17a Heat generating part 17g ceramic base 17s ceramic sheet 17T Ceramic heater tip 17R Ceramic heater base end 17v slit 100 containers 100i interior space 100w Inner surface of container 103 entrance 105 Outlet 105e Open end of discharge port 105R Near the open end 171, 172 Ceramic heater 200 Liquid heating equipment L axis S 1st opening area n1 1st axis center W liquid

Claims

1. a container having an internal space and a liquid inlet and a liquid outlet communicating with the internal space; a ceramic heater attached to the container with its tip end positioned within the internal space and its base end held by the container, the ceramic heater comprising: a ceramic base extending in an axial direction; and a ceramic sheet wound around the outer periphery of the ceramic base and having a heat-generating portion, the ceramic heater having a slit extending in the axial direction formed as a non-heat-generating portion in the wound portion of the ceramic sheet; Equipped with a gap is formed between the container and the ceramic heater, and the liquid is heated by the ceramic heater while the liquid is introduced through the inlet, passes through the internal space, and flows to the outlet, the exhaust port is disposed apart from the inlet in the axial direction, and a first axial direction in the vicinity of an open end of the exhaust port facing the internal space intersects with the axial direction, A liquid heating device characterized in that the tip of the heat generating portion is located closer to the base end than the most base end edge in the opening area, which is the area obtained by projecting the opening end of the outlet in the first axial direction.

2. The ceramic heater has a power of 100 W / cm 2 2. The liquid heating device according to claim 1, wherein the liquid heating device has a watt density of at least 1000 W.

3. A plurality of the ceramic heaters are arranged in the container, each extending in the same direction; 3. The liquid heating device according to claim 1, wherein the tip of the heat generating portion of each of the ceramic heaters is located closer to the base end than the outlet.

4. 3. The liquid heating device according to claim 1, wherein the heat generating portion is embedded in the ceramic sheet.

Citation Information

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