JP2018505380A - Instantaneous heating device - Google Patents

Instantaneous heating device Download PDF

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JP2018505380A
JP2018505380A JP2017542436A JP2017542436A JP2018505380A JP 2018505380 A JP2018505380 A JP 2018505380A JP 2017542436 A JP2017542436 A JP 2017542436A JP 2017542436 A JP2017542436 A JP 2017542436A JP 2018505380 A JP2018505380 A JP 2018505380A
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water
heating
flow path
path forming
heating device
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JP6603724B2 (en
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ジェ−マン キム,
ジェ−マン キム,
イン−ドゥ チェ,
イン−ドゥ チェ,
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Coway Co Ltd
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Coway Co Ltd
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24HFLUID HEATERS, e.g. WATER OR AIR HEATERS, HAVING HEAT-GENERATING MEANS, e.g. HEAT PUMPS, IN GENERAL
    • F24H1/00Water heaters, e.g. boilers, continuous-flow heaters or water-storage heaters
    • F24H1/10Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium
    • F24H1/101Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium using electric energy supply
    • F24H1/102Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium using electric energy supply with resistance
    • F24H1/105Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium using electric energy supply with resistance formed by the tube through which the fluid flows
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24HFLUID HEATERS, e.g. WATER OR AIR HEATERS, HAVING HEAT-GENERATING MEANS, e.g. HEAT PUMPS, IN GENERAL
    • F24H1/00Water heaters, e.g. boilers, continuous-flow heaters or water-storage heaters
    • F24H1/10Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24HFLUID HEATERS, e.g. WATER OR AIR HEATERS, HAVING HEAT-GENERATING MEANS, e.g. HEAT PUMPS, IN GENERAL
    • F24H1/00Water heaters, e.g. boilers, continuous-flow heaters or water-storage heaters
    • F24H1/10Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium
    • F24H1/12Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium in which the water is kept separate from the heating medium
    • F24H1/14Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium in which the water is kept separate from the heating medium by tubes, e.g. bent in serpentine form
    • F24H1/16Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium in which the water is kept separate from the heating medium by tubes, e.g. bent in serpentine form helically or spirally coiled
    • F24H1/162Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium in which the water is kept separate from the heating medium by tubes, e.g. bent in serpentine form helically or spirally coiled using electrical energy supply
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24HFLUID HEATERS, e.g. WATER OR AIR HEATERS, HAVING HEAT-GENERATING MEANS, e.g. HEAT PUMPS, IN GENERAL
    • F24H9/00Details
    • F24H9/0005Details for water heaters
    • F24H9/001Guiding means
    • F24H9/0015Guiding means in water channels
    • F24H9/0021Sleeves surrounding heating elements or heating pipes, e.g. pipes filled with heat transfer fluid, for guiding heated liquid
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24HFLUID HEATERS, e.g. WATER OR AIR HEATERS, HAVING HEAT-GENERATING MEANS, e.g. HEAT PUMPS, IN GENERAL
    • F24H9/00Details
    • F24H9/18Arrangement or mounting of grates or heating means
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24HFLUID HEATERS, e.g. WATER OR AIR HEATERS, HAVING HEAT-GENERATING MEANS, e.g. HEAT PUMPS, IN GENERAL
    • F24H9/00Details
    • F24H9/18Arrangement or mounting of grates or heating means
    • F24H9/1809Arrangement or mounting of grates or heating means for water heaters
    • F24H9/1818Arrangement or mounting of electric heating means
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B3/00Ohmic-resistance heating
    • H05B3/40Heating elements having the shape of rods or tubes
    • H05B3/42Heating elements having the shape of rods or tubes non-flexible
    • H05B3/46Heating elements having the shape of rods or tubes non-flexible heating conductor mounted on insulating base
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24HFLUID HEATERS, e.g. WATER OR AIR HEATERS, HAVING HEAT-GENERATING MEANS, e.g. HEAT PUMPS, IN GENERAL
    • F24H2250/00Electrical heat generating means
    • F24H2250/02Resistances

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Fluid Mechanics (AREA)
  • Instantaneous Water Boilers, Portable Hot-Water Supply Apparatuses, And Control Of Portable Hot-Water Supply Apparatuses (AREA)
  • Details Of Fluid Heaters (AREA)

Abstract

本発明は、瞬間加熱装置を開示する。本発明の一実施形態による瞬間加熱装置は、外部から水が流入される入水部と、上記入水部に流入された水が流動する流動部と、上記流動部を流動する水を加熱する加熱部と、上記加熱部によって加熱された水が外部に排出される出水部と、を含み、上記流動部は、上記加熱部の内部に配置される流路形成部材と、上記加熱部と流路形成部材との間に加熱流路が形成されるように上記流路形成部材を上記加熱部に密着させる密着加圧部と、を含むことができる。The present invention discloses an instantaneous heating apparatus. An instantaneous heating apparatus according to an embodiment of the present invention includes a water inlet portion into which water is introduced from the outside, a fluid portion in which water that has flowed into the water inlet portion flows, and heating that heats water flowing through the fluid portion. And a water discharge part from which water heated by the heating part is discharged to the outside, and the fluid part is a flow path forming member disposed inside the heating part, and the heating part and the flow path A contact pressure unit that allows the channel forming member to be in close contact with the heating unit such that a heating channel is formed between the heating member and the forming member.

Description

本発明は、流入された水を比較的早い時間内に所定温度に加熱してユーザーに供給する瞬間加熱装置に関し、より詳細には、水が流動しながら加熱される加熱流路の変形を最小化することができる瞬間加熱装置に関する。   The present invention relates to an instantaneous heating device that heats inflowed water to a predetermined temperature within a relatively early time and supplies the heated water to a user, and more particularly, minimizes deformation of a heating channel that is heated while water flows. The present invention relates to an instantaneous heating device that can be converted into

温水タンクとは、貯蔵された水を所定温度に加熱してからユーザーに供給する装置である。そのために、温水タンクでは、貯蔵された水の温度が常に所定温度に維持されるべきである。例えば、温水タンクは、所定温度に加熱された水の温度が所定温度より低くなると、所定温度以上に再加熱することを繰り返すことで、貯蔵された水の温度が常に所定温度に維持されるようにする。   A hot water tank is a device that heats stored water to a predetermined temperature and then supplies it to a user. Therefore, in the hot water tank, the temperature of the stored water should always be maintained at a predetermined temperature. For example, when the temperature of water heated to a predetermined temperature is lower than the predetermined temperature, the hot water tank repeatedly maintains the temperature of the stored water at the predetermined temperature by repeating reheating above the predetermined temperature. To.

このように、温水タンクでは、貯蔵された水の温度が常に所定温度に維持されるようにしなければならないため、水の加熱に比較的多くのエネルギーが必要となり、また、温水タンクに水が長期間貯蔵されるため、温水タンクの内部面が水によって腐食されたり、水スケールが付着したりするなど、衛生上の問題があった。   Thus, in the hot water tank, the temperature of the stored water must always be maintained at a predetermined temperature, so that a relatively large amount of energy is required to heat the water, and the water in the hot water tank is long. Since it was stored for a period of time, there were problems with hygiene such that the inner surface of the hot water tank was corroded by water and a water scale adhered.

かかる温水タンクの問題を解決するために、瞬間加熱装置が開発されている。瞬間加熱装置は、水を比較的短時間で所定温度に加熱してユーザーに供給する。   In order to solve the problem of the hot water tank, an instantaneous heating device has been developed. The instantaneous heating device supplies water to a user after heating water to a predetermined temperature in a relatively short time.

これにより、必要な分だけの水を所定温度に加熱してユーザーに供給するため、水の加熱に必要なエネルギーが比較的少なくて済み、また、水が貯蔵されないので、衛生性が向上する。   Accordingly, since only a necessary amount of water is heated to a predetermined temperature and supplied to the user, energy required for heating the water is relatively small, and water is not stored, so that hygiene is improved.

このような瞬間加熱装置は、通常、流動する水を直接加熱するように構成される。そのため、瞬間加熱装置には、水が流動しながら加熱される加熱流路を含んでいる。   Such instantaneous heating devices are typically configured to directly heat flowing water. Therefore, the instantaneous heating device includes a heating channel that is heated while water flows.

加熱流路は、流動する水に直接熱を加えるものであり、熱を加える時間が長くなるように、その長さができるかぎり長くなるようにする。そのため、加熱流路は、1つの部材で形成されるというよりもむしろ、多数の部材を組み合わせることにより形成される。例えば、加熱流路は、1つの部材を他の部材内に嵌め込む嵌合方式により形成される。   The heating channel directly applies heat to the flowing water, and the length of the heating channel is made as long as possible so that the time for applying the heat becomes long. Therefore, the heating flow path is formed by combining a large number of members, rather than being formed by a single member. For example, the heating channel is formed by a fitting method in which one member is fitted into another member.

一方、加熱流路は、水が流動する間に局部的に過熱しないように、所定の体積を有するように形成される。   On the other hand, the heating channel is formed to have a predetermined volume so as not to locally overheat while water flows.

しかしながら、上述のように多数の部材を組み合わせて加熱流路を形成する場合、加熱流路の形成時や瞬間加熱装置の使用時に加熱流路が変形し、上述の所定の体積を有しなくなることが比較的頻繁に発生した。   However, when a heating flow path is formed by combining a large number of members as described above, the heating flow path is deformed when the heating flow path is formed or when the instantaneous heating device is used, and the predetermined volume is not obtained. Occurred relatively frequently.

これにより、加熱流路を流動する水が、上述のような加熱流路の変形部分で局部的に過熱されて、コックや蛇口(a cook or a faucet)などの排出部材を介して排出されるときに、水飛び(water splashing)が起きることがある。   As a result, the water flowing in the heating channel is locally heated at the deformed portion of the heating channel as described above, and is discharged through a discharge member such as a cook or a faucet. Sometimes water splashing can occur.

そして、このように水飛びが生じると、飛来した水でユーザーが火傷するなどの事故が起きる場合がある。   When water jumps in this way, an accident such as a user being burned by the water that has come in may occur.

本発明は、上記のような従来の技術で発生していた要求または問題の少なくとも何れか一つを認識してなされたものである。   The present invention has been made in recognition of at least one of the requirements or problems that have occurred in the prior art as described above.

本発明の目的の一側面は、水が加熱流路を流動しながら加熱されるように瞬間加熱装置に形成される加熱流路の変形を最小化することにある。   One aspect of the present invention is to minimize the deformation of the heating channel formed in the instantaneous heating device so that water is heated while flowing through the heating channel.

本発明の目的の他の側面は、加熱流路を流動する水が局部的に過熱されて外部に排出されるときに、水飛びが生じるのを最小化することにある。   Another aspect of the object of the present invention is to minimize the occurrence of water splash when the water flowing through the heating channel is locally heated and discharged to the outside.

本発明の目的のさらに他の側面は、過熱され排出されるときに、飛来した水でユーザーが火傷するなどの事故が発生しないようにすることにある。   Still another aspect of the object of the present invention is to prevent accidents such as a user being burned by water that has come in when overheated and discharged.

上記課題の少なくとも一つの課題を実現するための一実施形態に係る瞬間加熱装置は、次のような特徴を有することができる。   An instantaneous heating apparatus according to an embodiment for realizing at least one of the above problems can have the following characteristics.

本発明の一実施形態による瞬間加熱装置は、外部から水が流入される入水部と、入水部に流入された水が流動する流動部と、流動部を流動する水を加熱する加熱部と、加熱部によって加熱された水が外部に排出される出水部と、を含み、流動部は、加熱部の内部に配置される流路形成部材と、加熱部と流路形成部材との間に加熱流路が形成されるように流路形成部材を加熱部に密着させる密着加圧部と、を含むことができる。   An instantaneous heating device according to an embodiment of the present invention includes a water inlet part into which water is introduced from the outside, a fluidizing part in which water that has flowed into the water inlet part flows, a heating part that heats the water flowing in the fluidizing part, A water discharge section from which water heated by the heating section is discharged to the outside, and the fluid section is heated between the flow path forming member disposed inside the heating section and the heating section and the flow path forming member. A contact pressure unit that allows the channel forming member to be in close contact with the heating unit so that the channel is formed.

この際、上記密着加圧部は、流路形成部材の内部に形成された挿入部に挿入され、流路形成部材を加熱部側に加圧する加圧部材を含むことができる。   In this case, the contact pressure unit may include a pressure member that is inserted into an insertion unit formed inside the flow path forming member and pressurizes the flow path forming member toward the heating unit.

また、上記密着加圧部は、加圧部材に加圧力を作用させる加圧力作用部材をさらに含むことができる。   The contact pressure unit may further include a pressure application member that applies pressure to the pressure member.

そして、上記加圧部材は複数個であり、互いに合わさると、挿入部の形状に対応する中空の円筒、楕円筒、または多角筒を形成するものとすることができる。   And the said pressurization member is plural, and if it mutually puts together, the hollow cylinder corresponding to the shape of an insertion part, an elliptic cylinder, or a polygonal cylinder shall be formed.

また、上記加圧力作用部材は、複数個の加圧部材が合わさって形成される中空の円筒、楕円筒、または多角筒に対応する円柱、楕円柱、または多角柱の形状を有することができる。   The pressurizing member may have a hollow cylinder, an elliptic cylinder, or a column, an elliptic cylinder, or a polygon cylinder corresponding to a hollow cylinder, an elliptic cylinder, or a polygon cylinder formed by combining a plurality of pressure members.

そして、上記加圧力作用部材の外径は、加圧部材が合わさって形成される中空の円筒、楕円筒、または多角筒の内径より大きくすることができる。   And the outer diameter of the said pressurizing action member can be made larger than the internal diameter of the hollow cylinder formed by combining a pressurizing member, an elliptic cylinder, or a polygonal cylinder.

また、上記加圧力作用部材は、挿入部に形成された嵌合孔に嵌合される嵌合突起を有することができる。   Moreover, the said pressurization action member can have a fitting protrusion fitted to the fitting hole formed in the insertion part.

そして、上記流路形成部材はシリコンからなることができる。   The flow path forming member can be made of silicon.

また、加熱流路を形成する流路形成溝を、上記流路形成部材の外周に形成することができる。   Moreover, the flow path formation groove | channel which forms a heating flow path can be formed in the outer periphery of the said flow path formation member.

そして、上記流路形成溝は螺旋状であることができる。   The flow path forming groove may have a spiral shape.

また、上記入水部と出水部には、それぞれ入水流路と出水流路が形成されていることができる。   In addition, an inlet channel and an outlet channel may be formed in the inlet part and the outlet part, respectively.

そして、上記入水部の一部と出水部の一部は、流路形成部材の内部に形成された挿入部の一方の側と他方の側にそれぞれ挿入されることができる。   And a part of said water intake part and a part of water discharge part can be inserted in the one side and the other side of the insertion part formed in the inside of a flow-path formation member, respectively.

また、上記流路形成部材の一方の側と他方の側には、入水流路及び出水流路と加熱流路とをそれぞれ連結する第1連結孔と第2連結孔がそれぞれ形成さていることができる。   In addition, a first connection hole and a second connection hole for connecting the inlet channel, the outlet channel, and the heating channel, respectively, may be formed on one side and the other side of the channel forming member. it can.

そして、上記入水部または出水部は、入水流路や出水流路を流動する水の温度を測定する温度センサーを含むことができる。   The water inlet or water outlet may include a temperature sensor that measures the temperature of water flowing through the water inlet or outlet channel.

また、上記加熱部は、流路形成部材が内部に配置される加熱部材と、加熱部材に取り付けられて加熱部材を加熱するヒーターと、を含むことができる。   The heating unit may include a heating member in which the flow path forming member is disposed, and a heater that is attached to the heating member and heats the heating member.

そして、上記ヒーターは面状発熱型のヒーターであることができる。   The heater may be a planar heating type heater.

また、上記入水部、加熱部、及び出水部を覆うカバー部をさらに含むことができる。   Moreover, the cover part which covers the said water intake part, a heating part, and a water discharge part can further be included.

そして、上記カバー部は、入水部、及び加熱部の一部を覆う入水側カバー部材と、入水側カバー部材に結合され、加熱部の残りの部分及び出水部を覆う出水側カバー部材と、を含むことができる。   And the said cover part is combined with the water inlet side cover member which covers a part of a water inlet part and a heating part, and the water outlet side cover member which is couple | bonded with the water inlet side cover member and covers the remaining part of a heating part, and a water outlet part. Can be included.

以上のように、本発明の実施形態によると、密着加圧部により流路形成部材が加熱部に密着するようになり、加熱部と流路形成部材との間で水が流動しながら加熱される加熱流路を形成することができる。   As described above, according to the embodiment of the present invention, the flow path forming member comes into close contact with the heating unit by the contact pressure unit, and water is heated while flowing between the heating unit and the flow path forming member. A heating channel can be formed.

また、本発明の実施形態によると、加熱流路の変形を最小化することができる。   Moreover, according to the embodiment of the present invention, the deformation of the heating channel can be minimized.

さらに、本発明の実施形態によると、加熱流路を流動する水が局部的にされて外部に排出されるときに、水飛びが生じるのを最小化することができる。   Furthermore, according to the embodiment of the present invention, it is possible to minimize the occurrence of water splash when the water flowing through the heating channel is localized and discharged to the outside.

また、本発明の実施形態によると、過熱され排出されるときに、飛来した水でユーザーが火傷するなどの事故が発生しないようにすることができる。   In addition, according to the embodiment of the present invention, it is possible to prevent an accident such as a user being burned by the water that has come when the water is overheated and discharged.

本発明による瞬間加熱装置の一実施形態の斜視図である。1 is a perspective view of an embodiment of an instantaneous heating device according to the present invention. 本発明による瞬間加熱装置の一実施形態の分解斜視図である。It is a disassembled perspective view of one Embodiment of the instantaneous heating apparatus by this invention. 図1のA‐Aエ線に沿った断面図である。FIG. 2 is a cross-sectional view taken along line AA in FIG. 1. 本発明による瞬間加熱装置の一実施形態の密着加圧部により流路形成部材が加熱部に密着され、加熱部と流路形成部材との間に加熱流路が形成されることを示す図である。FIG. 4 is a diagram showing that the flow path forming member is brought into close contact with the heating section by the contact pressure unit of the embodiment of the instantaneous heating device according to the present invention, and a heating flow path is formed between the heating section and the flow path forming member. is there. 本発明による瞬間加熱装置の一実施形態の密着加圧部により流路形成部材が加熱部に密着され、加熱部と流路形成部材との間に加熱流路が形成されることを示す図である。FIG. 4 is a diagram showing that the flow path forming member is brought into close contact with the heating section by the contact pressure unit of the embodiment of the instantaneous heating device according to the present invention, and a heating flow path is formed between the heating section and the flow path forming member. is there. 図3と同様の断面図であって、本発明による瞬間加熱装置の一実施形態の作動を示す図である。FIG. 4 is a sectional view similar to FIG. 3, showing the operation of an embodiment of the instantaneous heating device according to the present invention.

上記のような本発明の特徴を容易に理解されるように、本発明の一実施形態による瞬間加熱装置を、図を参照しながら詳細に説明する。   In order to easily understand the features of the present invention as described above, an instantaneous heating apparatus according to an embodiment of the present invention will be described in detail with reference to the drawings.

以下では、図を参照しながら本発明の一実施形態を詳細に説明する。しかしながら、本発明は、実施の形態を様々に変形させることができ、実施の形態に限定されることはない。したがって、本発明は下記に説明された実施形態から本発明の技術範囲内で様々な変形実施が可能であり、このような変形実施形態は本発明の技術範囲内に属するというべきである。そして、以下で説明する実施形態の理解のために、添付された図面に記載の符号において、各実施形態で同一の作用をする構成要素のうち関連構成要素については、同一または延長線上の数字で表記した。   Hereinafter, an embodiment of the present invention will be described in detail with reference to the drawings. However, the present invention can be variously modified from the embodiments, and is not limited to the embodiments. Therefore, the present invention can be modified in various ways within the technical scope of the present invention from the embodiments described below, and such modified embodiments should fall within the technical scope of the present invention. For the understanding of the embodiments described below, in the reference numerals shown in the accompanying drawings, related components among the components having the same action in each embodiment are denoted by the same or extended numerals. Indicated.

以下、図1から図6を参照して、本発明による瞬間加熱装置の一実施形態について説明する。   Hereinafter, an embodiment of an instantaneous heating apparatus according to the present invention will be described with reference to FIGS.

図1は本発明による瞬間加熱装置の一実施形態の斜視図であり、図2は本発明による瞬間加熱装置の一実施形態の分解斜視図であり、図3は図1のA‐Aエ線に沿った断面図である。   FIG. 1 is a perspective view of an embodiment of an instantaneous heating device according to the present invention, FIG. 2 is an exploded perspective view of an embodiment of the instantaneous heating device according to the present invention, and FIG. 3 is an AA line in FIG. FIG.

また、図4及び図5は、本発明による瞬間加熱装置の一実施形態の密着加圧部により流路形成部材が加熱部に密着され、加熱部と流路形成部材との間に加熱流路が形成されることを示す図であり、図6は、図3と同様の断面図であって、本発明による瞬間加熱装置の一実施形態の作動を示す。 4 and 5 show that the flow path forming member is brought into close contact with the heating section by the contact pressure unit of the embodiment of the instantaneous heating apparatus according to the present invention, and the heating flow path is between the heating section and the flow path forming member. 6 is a cross-sectional view similar to FIG. 3, illustrating the operation of an embodiment of the instantaneous heating device according to the present invention.

本発明による瞬間加熱装置の一実施形態は、入水部200と、流動部300と、加熱部400と、出水部500と、を含むことができる。   One embodiment of the instantaneous heating device according to the present invention may include a water inlet 200, a fluidizer 300, a heater 400, and a water outlet 500.

図6に示したように、入水部200には、外部から水を流入させることができる。そのために、入水部200には入水流路210が形成されることができる。   As shown in FIG. 6, water can be flowed into the water inlet 200 from the outside. Therefore, a water inlet channel 210 can be formed in the water inlet 200.

入水流路210は、例えば、図3に示したように、L字状とすることができる。しかしながら、入水流路210の形状は、特に限定されることはなく、水が流入し流動できる形状であれば、いかなる形状であってもよい。   The inflow channel 210 can be L-shaped as shown in FIG. 3, for example. However, the shape of the water inlet channel 210 is not particularly limited, and may be any shape as long as water can flow in and flow.

入水部200は入水ニップル220を含むことができる。入水ニップル220の一部は上述の入水流路210を形成することができる。そして、入水ニップル220は、例えば、取付部材(不図示)などによって貯蔵タンクや浄水フィルターなどの水供給源(不図示)に連結されることができる。   The water inlet 200 can include a water inlet nipple 220. A part of the incoming water nipple 220 can form the incoming water passage 210 described above. The water inlet nipple 220 can be connected to a water supply source (not shown) such as a storage tank or a water purification filter by an attachment member (not shown), for example.

これにより、図6に示したように、水供給源の水は、入水ニップル220の入水流路210内に流入されて入水流路210を流動することができる。   As a result, as shown in FIG. 6, the water of the water supply source can flow into the incoming water flow path 210 of the incoming water nipple 220 and flow through the incoming water flow path 210.

入水部200には、密封部材挿入溝230を形成することができる。密封部材挿入溝230には、例えば、図2及び図3に示したように、Oリングなどの密封部材Oを挿入することができる。これにより、入水部200と、入水部200を覆う後述のカバー部600に含まれる入水側カバー部材610との間をシールすることができる。   A sealing member insertion groove 230 can be formed in the water inlet 200. For example, as shown in FIGS. 2 and 3, a sealing member O such as an O-ring can be inserted into the sealing member insertion groove 230. Thereby, it is possible to seal between the incoming water part 200 and the incoming water side cover member 610 included in a cover part 600 described later that covers the incoming water part 200.

入水部200は温度センサー(不図示)を含むことができる。温度センサーは、入水部200の入水流路210を流動する水の温度を測定するように入水部200に備えられることができる。   The water inlet 200 can include a temperature sensor (not shown). The temperature sensor may be provided in the water inlet 200 so as to measure the temperature of the water flowing through the water inlet channel 210 of the water inlet 200.

例えば、温度センサーは、入水部200の入水ニップル220に備えられることができる。しかしながら、入水部200における温度センサーの位置は、特に限定されることはなく、入水部200のいかなる位置に設けることができる。   For example, the temperature sensor can be provided in the water inlet nipple 220 of the water inlet 200. However, the position of the temperature sensor in the water inlet 200 is not particularly limited, and can be provided at any position in the water inlet 200.

また、温度センサーによって測定された入水流路210を流動する水の温度は、例えば、加熱流路Rを流動する水を後述の加熱部400によって加熱するときに、加熱部400での発熱量を調節するときに用いることができる。   The temperature of the water flowing through the inlet channel 210 measured by the temperature sensor is, for example, the amount of heat generated by the heating unit 400 when the water flowing through the heating channel R is heated by the heating unit 400 described later. Can be used when adjusting.

図6に示したように、入水部200、すなわち、入水部200の入水流路210に流入された水は、流動部300に流動する。   As shown in FIG. 6, the water that flows into the water inlet 200, that is, the water inlet passage 210 of the water inlet 200 flows into the fluidizer 300.

この目的のために、流動部300は流路形成部材310を含むことができる。流路形成部材310は、図3に示したように、加熱部400の内部に配置されることができる。また、流路形成部材310の外周には流路形成溝312が形成されることができる。   For this purpose, the flow section 300 can include a flow path forming member 310. As shown in FIG. 3, the flow path forming member 310 can be disposed inside the heating unit 400. A flow path forming groove 312 may be formed on the outer periphery of the flow path forming member 310.

これにより、図3に示したように、加熱部400と流路形成部材310との間に加熱流路Rが形成されることができる。そして、入水部200の入水流路210に流入された水は、図6に示したように、加熱流路Rを流動することができる。   Thereby, as shown in FIG. 3, the heating channel R can be formed between the heating unit 400 and the channel forming member 310. And the water which flowed in into the inflow channel 210 of the inflow part 200 can flow through the heating channel R, as shown in FIG.

流路形成部材310の流路形成溝312は、例えば、図2に示したように、螺旋状に形成することができる。この場合、加熱流路Rも螺旋状となる。   The flow path forming groove 312 of the flow path forming member 310 can be formed in a spiral shape, for example, as shown in FIG. In this case, the heating flow path R is also spiral.

しかしながら、流路形成溝312の形状は、特に限定されることはなく、加熱部400と流路形成部材310との間に加熱流路Rが形成されるようにする形状であれば、ジグザグ形状とするなど、いかなる形状とすることができる。   However, the shape of the flow path forming groove 312 is not particularly limited, and may be a zigzag shape as long as the heating flow path R is formed between the heating unit 400 and the flow path forming member 310. Or any other shape.

流路形成部材310の一方の側、例えば、下部には、図2及び図3に示したように、入水流路210と加熱流路Rとを連結する第1連結孔313が形成されることができる。そして、図3に示したように、入水部200の一部が流路形成部材310の内部に形成された挿入部311の一方の側、例えば、下部に挿入されることで、入水流路210が第1連結孔313を介して加熱流路Rに連結されることができる。   As shown in FIGS. 2 and 3, a first connection hole 313 for connecting the water inlet channel 210 and the heating channel R is formed on one side, for example, the lower portion of the channel forming member 310. Can do. Then, as shown in FIG. 3, a part of the water inlet 200 is inserted into one side of the insertion part 311 formed inside the channel forming member 310, for example, the lower part, so that the water inlet channel 210 is inserted. Can be connected to the heating flow path R through the first connection hole 313.

したがって、図6に示したように、入水部200の入水流路210に流入された水が第1連結孔313を介して加熱流路Rに移動し、加熱流路Rを流動することができる。   Therefore, as shown in FIG. 6, the water that has flowed into the water inlet channel 210 of the water inlet 200 can move to the heating channel R via the first connection hole 313 and flow through the heating channel R. .

図2及び図3に示したように、流路形成部材310の他方の側、例えば、上部には、出水部500に形成される後述の出水流路510と加熱流路Rとを連結する第2連結孔314が形成されることができる。そして、出水部500の一部が流路形成部材310の挿入部311の他方の側、例えば、上部に挿入されることで、第2連結孔314を介して出水流路510を加熱流路Rに連結することができる。   As shown in FIGS. 2 and 3, the other side, for example, the upper part of the flow path forming member 310 is connected to a later-described water discharge flow path 510 formed in the water discharge section 500 and a heating flow path R. Two connection holes 314 may be formed. A part of the water discharge part 500 is inserted into the other side, for example, the upper part of the insertion part 311 of the flow path forming member 310, so that the water discharge flow path 510 is heated by the heating flow path R via the second connection hole 314. Can be linked to.

これにより、加熱流路Rを流動した水は、第2連結孔314を介して出水部500の出水流路510に移動して出水流路510を流動し、その後、外部に排出されることができる。   Accordingly, the water that has flowed through the heating flow path R moves to the water discharge flow path 510 of the water discharge section 500 through the second connection hole 314, flows through the water discharge flow path 510, and is then discharged to the outside. it can.

図3に示したように、流路形成部材310の上述の挿入部311には、嵌合孔311aを形成することができる。このような挿入部311の嵌合孔311aには、図3及び図5に示したように、流動部300に含まれ、且つ後述の密着加圧部320に含まれる加圧力作用部材322に形成された嵌合突起322aを嵌合することができる。これにより、加圧力作用部材322を流路形成部材310の挿入部311内に安定して固定することができる。   As shown in FIG. 3, a fitting hole 311 a can be formed in the aforementioned insertion portion 311 of the flow path forming member 310. As shown in FIGS. 3 and 5, the fitting hole 311 a of the insertion portion 311 is formed in the pressurizing member 322 included in the flow portion 300 and included in the contact pressure portion 320 described later. The fitted fitting protrusion 322a can be fitted. Thereby, the pressure application member 322 can be stably fixed in the insertion portion 311 of the flow path forming member 310.

流路形成部材310は、シリコンにより形成することができる。シリコンは、熱変形が比較的少なく、水と接触した際に、発癌物質などの有害物質が出るなどの望ましくない影響を水に与えることがない。   The flow path forming member 310 can be formed of silicon. Silicon undergoes relatively little thermal deformation and does not have undesirable effects on water, such as the generation of harmful substances such as carcinogens when contacted with water.

また、シリコンは、比較的弾性が高いため、後述のように、密着加圧部320によって容易に流路形成溝312以外の部分が加熱部400に密着されるようにして加熱流路Rを形成することができる。   Further, since silicon has a relatively high elasticity, the heating flow path R is formed so that a portion other than the flow path forming groove 312 is easily brought into close contact with the heating section 400 by the contact pressure unit 320 as will be described later. can do.

したがって、シリコンで流路形成部材310を構成して加熱部400との間に加熱流路Rを形成すると、加熱流路Rが熱変形によって変形または閉塞することがなく、加熱流路Rを流動する水が変質されることがない。   Therefore, when the flow path forming member 310 is made of silicon and the heating flow path R is formed with the heating unit 400, the heating flow path R does not deform or close due to thermal deformation, and flows through the heating flow path R. The water that you do is not altered.

そして、密着加圧部320により、流路形成溝312以外の流路形成部材310の部分が加熱部400に容易に密着されるようにして加熱流路Rを容易に形成することができる。 The heating flow path R can be easily formed by the contact pressure unit 320 such that the portion of the flow path forming member 310 other than the flow path forming groove 312 is easily in close contact with the heating unit 400.

しかしながら、流路形成部材310を形成する素材は上述のシリコンに限定されることはなく、熱変形が比較的少なく、水と接触したときに水の変質がなく、弾性が比較的高いものであれば、周知のいかなる素材も使用することができる。   However, the material for forming the flow path forming member 310 is not limited to the above-described silicon, and is relatively low in thermal deformation, no deterioration of water when contacted with water, and relatively high elasticity. Any known material can be used.

図2及び図3に示したように、流動部300は密着加圧部320をさらに含むことができる。密着加圧部320は、図4及び図5に示したように、加熱部400と流路形成部材310との間に加熱流路Rが形成されるように、流路形成部材310を加熱部400に密着させることができる。   As shown in FIGS. 2 and 3, the flow unit 300 may further include a contact pressure unit 320. As shown in FIGS. 4 and 5, the contact pressure unit 320, the channel forming member 310 is heated by the heating unit 400 so that the heating channel R is formed between the heating unit 400 and the channel forming member 310. 400.

これにより、流路形成部材310が加熱部400に嵌合方式により嵌め込まれて流路形成部材310と加熱部400との間に加熱流路Rが形成される場合に比べて、加熱流路Rの変形を最小化することができる。   Thereby, the heating flow path R is compared with the case where the flow path forming member 310 is fitted into the heating unit 400 by the fitting method and the heating flow path R is formed between the flow path forming member 310 and the heating unit 400. Can be minimized.

したがって、加熱流路を流動する水が局部的に過熱されて外部に排出されるときに、水飛びの発生を最小化することができ、局部的に過熱して排出されるときに飛来した水でユーザーが火傷するなどの事故を防止することができる。   Therefore, when the water flowing through the heating channel is locally overheated and discharged to the outside, it is possible to minimize the occurrence of water jump, and the water that has jumped when locally heated and discharged Can prevent accidents such as user burns.

この目的のために、密着加圧部320は加圧部材321を含むことができる。加圧部材321は、図3及び図4に示したように、流路形成部材310の挿入部311に挿入されることができる。そして、加圧部材321は、流路形成部材310を加熱部400側に加圧することができる。   For this purpose, the contact pressure unit 320 can include a pressure member 321. The pressing member 321 can be inserted into the insertion portion 311 of the flow path forming member 310 as shown in FIGS. 3 and 4. The pressurizing member 321 can pressurize the flow path forming member 310 toward the heating unit 400.

これにより、図5に示したように、流路形成部材310が自らの弾性によって膨張して、流路形成部材310の流路形成溝312以外の部分が加熱部400に密着されることができる。   As a result, as shown in FIG. 5, the flow path forming member 310 is expanded by its own elasticity, and a portion other than the flow path forming groove 312 of the flow path forming member 310 can be in close contact with the heating unit 400. .

このような加圧部材321は複数個設けることができる。例えば、図2に示したように、加圧部材321は2個とすることができる。しかしながら、加圧部材321の個数は、特に限定されることはなく、いかなる個数の加圧部材321を設けてもよい。   A plurality of such pressure members 321 can be provided. For example, as shown in FIG. 2, the number of the pressure members 321 can be two. However, the number of pressure members 321 is not particularly limited, and any number of pressure members 321 may be provided.

また、加圧部材321は、互いに合わさると、流路形成部材310の挿入部311の形状に対応する中空の円筒状、楕円筒、または多角筒を形成することができる。例えば、図2に示したように、2個の加圧部材321は中空の円筒を縦方向に2等分した形状であるため、互いに合わさると中空の円筒を形成することができる。   Further, when the pressurizing members 321 are combined with each other, a hollow cylindrical shape, an elliptical cylinder, or a polygonal cylinder corresponding to the shape of the insertion portion 311 of the flow path forming member 310 can be formed. For example, as shown in FIG. 2, the two pressure members 321 have a shape obtained by dividing a hollow cylinder into two equal parts in the vertical direction, so that when they are combined, a hollow cylinder can be formed.

しかしながら、上述のように、加圧部材321は3個以上であってもよく、また、互いに合わせて楕円筒または多角筒を形成することもできる。   However, as described above, the number of the pressure members 321 may be three or more, and may be combined with each other to form an elliptical cylinder or a polygonal cylinder.

上述の構成の加圧部材321は、図4及び図5に示したように、全ての加圧部材321が流路形成部材310の挿入部311に挿入された状態で、流路形成部材310を放射状に、すなわち、半径方向外側に加圧することができる。そして、これにより、上述のように流路形成部材310の流路形成溝312以外の部分が弾性によって膨張して加熱部400に密着されることができる。   As shown in FIGS. 4 and 5, the pressurizing member 321 having the above-described configuration is configured so that all the pressurizing members 321 are inserted into the insertion portions 311 of the flow path forming member 310. It is possible to pressurize radially, ie radially outward. As a result, as described above, the portion other than the flow path forming groove 312 of the flow path forming member 310 can be elastically expanded and brought into close contact with the heating unit 400.

密着加圧部320は加圧力作用部材322をさらに含むことができる。加圧力作用部材322は加圧部材321に加圧力を作用させることができる。   The contact pressure unit 320 may further include a pressure application member 322. The pressure application member 322 can apply pressure to the pressure member 321.

そのために、加圧力作用部材322は、図2に示したように、複数個の加圧部材321が合わさって形成される中空の円筒、楕円筒、または多角筒に対応する円柱、楕円柱、または多角柱の形状を有することができる。   Therefore, as shown in FIG. 2, the pressure application member 322 is a hollow cylinder, an elliptic cylinder, or a column corresponding to a cylindrical cylinder, an elliptic cylinder, or an elliptic cylinder formed by combining a plurality of pressure members 321. It can have a polygonal column shape.

また、加圧力作用部材322の外径D1は、加圧部材321が合わさって成る中空の円筒、楕円筒、または多角筒の内径D2より大きくすることができる。   Further, the outer diameter D1 of the pressure application member 322 can be made larger than the inner diameter D2 of the hollow cylinder, the elliptic cylinder, or the polygonal cylinder formed by combining the pressure members 321.

これにより、図4及び図5に示したように、流路形成部材310の挿入部311に挿入された複数個の加圧部材321が成す中空の円筒、楕円筒、または多角筒に加圧力作用部材322が挿入されると、加圧部材321に加圧力が作用し、加圧部材321が拡がると同時に流路形成部材310を半径方向外側に加圧するようになる。   As a result, as shown in FIGS. 4 and 5, a pressurizing action is applied to a hollow cylinder, an elliptic cylinder, or a polygonal cylinder formed by a plurality of pressure members 321 inserted into the insertion portion 311 of the flow path forming member 310. When the member 322 is inserted, pressure is applied to the pressure member 321, and the pressure member 321 expands and simultaneously pressurizes the flow path forming member 310 radially outward.

加熱部400は、流動部300内を流動する水を加熱することができる。すなわち、図6に示したように、加熱部400は、流路形成部材310の流路形成溝312とともに形成した加熱流路R内を流動する水を加熱することができる。   The heating unit 400 can heat the water flowing in the fluidizing unit 300. That is, as shown in FIG. 6, the heating unit 400 can heat the water flowing in the heating flow path R formed together with the flow path forming groove 312 of the flow path forming member 310.

このように加熱流路Rを流動する水を加熱部400により直接加熱するため、比較的早い時間内に水を所望の所定温度まで加熱することができる。   Thus, since the water which flows through the heating flow path R is directly heated by the heating unit 400, the water can be heated to a desired predetermined temperature within a relatively early time.

加熱部400は、加熱部材410と、ヒーター420と、を含むことができる。   The heating unit 400 may include a heating member 410 and a heater 420.

加熱部材410の内部には流路形成部材310を配置することができる。これにより、流路形成部材310の流路形成溝312以外の部分が流路形成部材310の内面に密着されて加熱流路Rを形成することができる。   A flow path forming member 310 can be disposed inside the heating member 410. As a result, a portion other than the flow path forming groove 312 of the flow path forming member 310 is in close contact with the inner surface of the flow path forming member 310, so that the heating flow path R can be formed.

加熱部材410は、図2に示したように、例えば、中空の円筒形状とすることができる。しかしながら、加熱部材410の形状は、特に限定されることはなく、中空の楕円筒状または多角筒状など、流路形成部材310を内部に配置できる形状であれば、いかなる形状とすることができる。   As shown in FIG. 2, the heating member 410 can have, for example, a hollow cylindrical shape. However, the shape of the heating member 410 is not particularly limited, and can be any shape as long as the flow path forming member 310 can be disposed inside, such as a hollow elliptical cylindrical shape or a polygonal cylindrical shape. .

加熱部材410はステンレススチールにより形成することができる。これにより、加熱部材410の熱伝導率が高く、後述のヒーター420によって比較的速く加熱されるため、加熱流路Rを流動する水をより迅速に加熱することができる。さらに、加熱部材410が水によって腐食することがない。   The heating member 410 can be formed of stainless steel. Thereby, since the heat conductivity of the heating member 410 is high and is heated relatively quickly by the heater 420 described later, the water flowing through the heating flow path R can be heated more quickly. Further, the heating member 410 is not corroded by water.

しかしながら、加熱部材410を形成する素材は、特に限定されることはなく、熱伝導率が高く、水に対して耐腐食性を有するものであれば、いかなる素材を使用することができる。   However, the material for forming the heating member 410 is not particularly limited, and any material can be used as long as it has high thermal conductivity and is resistant to water.

ヒーター420は、図2に示したように、加熱部材410に取り付けることができる。さらに、ヒーター420は、加熱部材410を加熱することができる。このようなヒーター420は、面状発熱型のヒーターとすることができる。しかしながら、ヒーター420は、特に限定されることはなく、加熱部材410を加熱できるものであれば、電熱線などの周知のいかなるものとすることができる。   The heater 420 can be attached to the heating member 410 as shown in FIG. Further, the heater 420 can heat the heating member 410. Such a heater 420 may be a planar heating type heater. However, the heater 420 is not particularly limited, and may be any known one such as a heating wire as long as the heating member 410 can be heated.

図6に示したように、加熱部400で加熱された水、すなわち、温水は、出水部500を通って外部に排出されることができる。   As shown in FIG. 6, the water heated by the heating unit 400, that is, warm water can be discharged to the outside through the water discharge unit 500.

この目的のために、出水部500には、出水流路510を形成することができる。   For this purpose, a water outlet channel 510 can be formed in the water outlet 500.

出水流路510は、例えば、図3に示したようにL字状とすることができる。しかしながら、出水流路510の形状は、特に限定されることはなく、加熱部400で加熱された水を外部に排出できる形状であれば、いかなる形状とすることができる。   For example, the outlet channel 510 may be L-shaped as shown in FIG. However, the shape of the water discharge channel 510 is not particularly limited, and can be any shape as long as the water heated by the heating unit 400 can be discharged to the outside.

出水部500は、出水ニップル520を含むことができる。出水ニップル520には、上述の出水流路510の一部を形成することができる。さらに、出水ニップル520は、例えば、取付部材(不図示)などによってコックや蛇口などの排出部材(不図示)に連結されることができる。   The water discharge unit 500 can include a water discharge nipple 520. A part of the water discharge channel 510 described above can be formed in the water discharge nipple 520. Further, the water discharge nipple 520 can be connected to a discharge member (not shown) such as a cock or a faucet by an attachment member (not shown), for example.

これにより、図6に示したように、加熱流路Rを流動する間に加熱部400によって加熱された水、すなわち、温水は、出水流路510に移動し、その後出水ニップル520の出水流路510を介して外部に排出されることができる。   Accordingly, as shown in FIG. 6, the water heated by the heating unit 400 while flowing through the heating channel R, that is, hot water moves to the outlet channel 510, and then the outlet channel of the outlet nipple 520. It can be discharged to the outside via 510.

出水部500にも、密封部材挿入溝530を形成することができる。密封部材挿入溝530には、例えば、図2及び図3に示されたようなOリングなどの密封部材Oを挿入することができる。これにより、出水部500と、出水部500を覆う後述のカバー部600に含まれる出水側カバー部材620との間をシールすることができる。   A sealing member insertion groove 530 can also be formed in the water discharge part 500. For example, a sealing member O such as an O-ring as shown in FIGS. 2 and 3 can be inserted into the sealing member insertion groove 530. Thereby, it is possible to seal between the water discharge part 500 and the water discharge side cover member 620 included in a cover part 600 described later that covers the water discharge part 500.

出水部500も、温度センサー(不図示)を含むことができる。温度センサーは、出水部500の出水流路510を流動する水の温度を測定するために、出水部500に設けることができる。   The water outlet 500 can also include a temperature sensor (not shown). The temperature sensor can be provided in the water outlet 500 to measure the temperature of the water flowing through the water outlet channel 510 of the water outlet 500.

例えば、温度センサーは、出水部500の出水ニップル520に設けることができる。しかしながら、温度センサーの出水部500に設ける位置は、特に限定されることはなく、出水部500のいかなる位置に設けることができる。   For example, the temperature sensor can be provided in the water discharge nipple 520 of the water discharge unit 500. However, the position provided in the water outlet 500 of the temperature sensor is not particularly limited, and can be provided in any position of the water outlet 500.

また、温度センサーによって測定された出水流路510を流動する水の温度は、例えば、上述の加熱部400によって加熱流路Rを流動する水を加熱するときに、水を過熱しないように、加熱部400での発熱量を調節するために用いることができる。   Further, the temperature of the water flowing through the outlet channel 510 measured by the temperature sensor is, for example, heated so as not to overheat the water when the water flowing through the heating channel R is heated by the heating unit 400 described above. It can be used to adjust the amount of heat generated in the portion 400.

本発明による瞬間加熱装置100の一実施形態は、図1及び図2に示したように、カバー部600をさらに含むことができる。   As shown in FIGS. 1 and 2, the embodiment of the instantaneous heating device 100 according to the present invention may further include a cover part 600.

カバー部600は、図1及び図3に示したように、入水部200、加熱部400、及び出水部500を覆うことができる。このようなカバー部600により、入水部200に入水される水の圧力が比較的高い場合にも、入水部200、流動部300、加熱部400、及び出水部500の間の連結を安定させることができる。   As shown in FIGS. 1 and 3, the cover unit 600 can cover the water inlet 200, the heater 400, and the water outlet 500. Such a cover part 600 stabilizes the connection between the water inlet part 200, the flow part 300, the heating part 400, and the water outlet part 500 even when the pressure of water entering the water inlet part 200 is relatively high. Can do.

図1に示したように、このようなカバー部600は、入水側カバー部材610及び出水側カバー部材620を含むことができる。   As shown in FIG. 1, the cover unit 600 may include a water inlet side cover member 610 and a water outlet side cover member 620.

入水側カバー部材610は、図3に示したように、入水部200、及び加熱部400の一部を覆うことができる。そのために、入水側カバー部材610は、上部が開放した円筒形状を有することができる。しかしながら、入水側カバー部材610の形状は、特に限定されることはなく、入水部200及び加熱部400の一部を覆う形状であれば、いかなる形状とすることができる。   As shown in FIG. 3, the water inlet side cover member 610 can cover a part of the water inlet 200 and the heating part 400. Therefore, the water-inside cover member 610 can have a cylindrical shape with an open top. However, the shape of the water-inside cover member 610 is not particularly limited, and can be any shape as long as it covers a part of the water-inflow unit 200 and the heating unit 400.

図3に示したように、入水側カバー部材610、例えば、入水側カバー部材610の下面には第1露出孔611が形成されることができる。これにより、入水部200の入水ニップル220が第1露出孔611を通過して外部に露出することができる。そして、これにより、コックやフォーセットなどの排出部材を容易に入水ニップル220に連結させることができる。   As shown in FIG. 3, the first exposure hole 611 may be formed in the lower surface of the water-inside cover member 610, for example, the water-inside cover member 610. Accordingly, the water inlet nipple 220 of the water inlet 200 can pass through the first exposure hole 611 and be exposed to the outside. And thereby, discharge members, such as a cock and a faucet, can be easily connected with the water entering nipple 220. FIG.

入水側カバー部材610、例えば、入水側カバー部材610の開放した上部の内側には、結合溝612を形成することができる。結合溝612は、図2に示したようにL字状とすることができる。   A coupling groove 612 can be formed on the inside of the water inlet side cover member 610, for example, the opened upper portion of the water inlet side cover member 610. The coupling groove 612 may be L-shaped as shown in FIG.

結合溝612には、出水側カバー部材620に形成された後述の結合突起622を挿入することができる。これにより、入水側カバー部材610に出水側カバー部材620を結合することができる。   A coupling protrusion 622, which will be described later, formed on the water discharge side cover member 620 can be inserted into the coupling groove 612. Thereby, the water outlet side cover member 620 can be coupled to the water inlet side cover member 610.

結合溝612の形状は、特に限定されることはなく、出水側カバー部材620の結合突起622を挿入し、入水側カバー部材610に出水側カバー部材620を結合できる形状であれば、周知のいかなる形状とすることができる。   The shape of the coupling groove 612 is not particularly limited, and any known shape can be used as long as the coupling protrusion 622 of the water discharge side cover member 620 is inserted and the water discharge side cover member 620 can be coupled to the water inlet side cover member 610. It can be a shape.

出水側カバー部材620は、入水側カバー部材610に結合することができる。さらに、出水側カバー部材620は、加熱部400の残りの部分及び出水部500を覆うことができる。   The water outlet side cover member 620 can be coupled to the water inlet side cover member 610. Furthermore, the water discharge side cover member 620 can cover the remaining part of the heating unit 400 and the water discharge unit 500.

そのために、出水側カバー部材620は、下部が開放した円筒形状を有することができる。しかしながら、出水側カバー部材620の形状は、特に限定されることはなく、入水側カバー部材610に結合し、加熱部400の残りの部分及び出水部500を覆うことができるものであれば、いかなる形状とすることができる。   Therefore, the water discharge side cover member 620 can have a cylindrical shape with an open bottom. However, the shape of the water discharge side cover member 620 is not particularly limited as long as it can be connected to the water intake side cover member 610 and cover the remaining portion of the heating unit 400 and the water discharge unit 500. It can be a shape.

図3に示したように、出水側カバー部材620、例えば、出水側カバー部材620の上面には、第2露出孔621を形成することができる。これにより、出水部500の出水ニップル520が第2露出孔621を通過して外部に露出することができる。そして、これにより、出水ニップル520を容易に水供給源に連結することができる。   As shown in FIG. 3, the second exposure hole 621 can be formed on the upper surface of the water discharge side cover member 620, for example, the water discharge side cover member 620. Accordingly, the water discharge nipple 520 of the water discharge unit 500 can pass through the second exposure hole 621 and be exposed to the outside. Thus, the water discharge nipple 520 can be easily connected to the water supply source.

出水側カバー部材620、例えば、出水側カバー部材620の開放した下部の外側には、結合突起622を形成することができる。   A coupling protrusion 622 can be formed on the outside of the lower portion of the water discharge side cover member 620, for example, the opened lower portion of the water discharge side cover member 620.

また、出水側カバー部材620の下部は、入水側カバー部材610の上部に挿入することができる。そして、出水側カバー部材620の結合突起622を入水側カバー部材610の上述の結合溝612に挿入して、出水側カバー部材620を入水側カバー部材610に結合することができる。   Further, the lower part of the water discharge side cover member 620 can be inserted into the upper part of the water inlet side cover member 610. Then, the water discharge side cover member 620 can be coupled to the water inlet side cover member 610 by inserting the coupling protrusion 622 of the water outlet side cover member 620 into the above-described coupling groove 612 of the water inlet side cover member 610.

結合突起622の形状は、特に限定されることはなく、入水側カバー部材610の結合溝612に挿入できる形状であれば、いかなる形状とすることができる。   The shape of the coupling protrusion 622 is not particularly limited, and can be any shape as long as it can be inserted into the coupling groove 612 of the water-inflow side cover member 610.

出水側カバー部材620には、設置孔623を形成することができる。設置孔623には、バイメタル(不図示)を設けるか、または、ヒーター420に連結される電線などを通すことができる。   An installation hole 623 can be formed in the water discharge side cover member 620. The installation hole 623 can be provided with a bimetal (not shown), or an electric wire connected to the heater 420 can be passed therethrough.

以上のように、本発明による瞬間加熱装置を用いると、密着加圧部により流路形成部材が加熱部に密着されて、加熱部と流路形成部材との間に水が流動しながら加熱される加熱流路を形成することができ、加熱流路の変形を最小化することができる。また、加熱流路を流動する水が局部的に過熱して外部に排出されるときに水飛びが生じるのを最小化することができ、過熱により飛来した水でユーザーが火傷するなどの事故を防止することができる。   As described above, when the instantaneous heating apparatus according to the present invention is used, the flow path forming member is brought into close contact with the heating portion by the contact pressure unit, and water is heated while flowing between the heating unit and the flow path forming member. The heating channel can be formed, and deformation of the heating channel can be minimized. In addition, it is possible to minimize the occurrence of water splash when the water flowing through the heating channel is locally overheated and discharged to the outside. Can be prevented.

上記のように説明した瞬間加熱装置は、上記で説明された実施形態の構成が限定されて適用されるものではなく、上記実施形態が多様に変形され得るように、各実施形態の全部または一部を選択的に組み合わせて構成することもできる。   The instantaneous heating device described above is not applied with the configuration of the embodiment described above being limited, and all or one of the embodiments can be modified so that the embodiment can be variously modified. It can also be configured by selectively combining the parts.

Claims (18)

外部から水が流入される入水部と、
前記入水部に流入された水が流動する流動部と、
前記流動部を流動する水を加熱する加熱部と、
前記加熱部によって加熱された水が外部に排出される出水部と、を含み、
前記流動部は、前記加熱部の内部に配置される流路形成部材と、前記加熱部と流路形成部材との間に加熱流路が形成されるように前記流路形成部材を前記加熱部に密着させる密着加圧部と、を含む、瞬間加熱装置。
A water inlet where water is introduced from the outside;
A fluidized part in which water flowing into the water inlet part flows;
A heating section for heating water flowing through the fluid section;
A water discharge part from which water heated by the heating part is discharged to the outside,
The flow section includes a flow path forming member disposed inside the heating section, and the flow path forming member is disposed between the heating section and the flow path forming member. An instantaneous heating device, comprising: a contact pressure unit that is in close contact with the substrate.
前記密着加圧部は、前記流路形成部材の内部に形成された挿入部に挿入され、前記流路形成部材を前記加熱部側に加圧する加圧部材を含む、請求項1に記載の瞬間加熱装置。   2. The moment according to claim 1, wherein the contact pressure unit includes a pressure member that is inserted into an insertion unit formed inside the flow path forming member and pressurizes the flow path forming member toward the heating unit. Heating device. 前記密着加圧部は、前記加圧部材に加圧力を作用させる加圧力作用部材をさらに含む、請求項2に記載の瞬間加熱装置。   The instantaneous heating device according to claim 2, wherein the contact pressure unit further includes a pressure application member that applies pressure to the pressure member. 前記加圧部材は複数個であり、互いに合わさると、前記挿入部の形状に対応する中空の円筒、楕円筒、または多角筒を形成するものである、請求項3に記載の瞬間加熱装置。   4. The instantaneous heating device according to claim 3, wherein a plurality of the pressure members are formed to form a hollow cylinder, an elliptic cylinder, or a polygonal cylinder corresponding to the shape of the insertion portion when combined with each other. 前記加圧力作用部材は、前記複数個の加圧部材が合わさって形成される中空の円筒、楕円筒、または多角筒に対応する円柱、楕円柱、または多角柱の形状を有する、請求項4に記載の瞬間加熱装置。   5. The pressurizing member has a shape of a hollow cylinder, an elliptic cylinder, or a column, an elliptic cylinder, or a polygon cylinder corresponding to a hollow cylinder, an elliptic cylinder, or a polygon cylinder formed by combining the plurality of pressure members. The described instantaneous heating device. 前記加圧力作用部材の外径は、前記加圧部材が合わさって形成される中空の円筒、楕円筒、または多角筒の内径より大きい、請求項5に記載の瞬間加熱装置。   The instantaneous heating device according to claim 5, wherein an outer diameter of the pressurizing member is larger than an inner diameter of a hollow cylinder, an elliptic cylinder, or a polygonal cylinder formed by combining the pressurizing members. 前記加圧力作用部材は、前記挿入部に形成された嵌合孔に嵌合される嵌合突起を有する、請求項3に記載の瞬間加熱装置。   The instantaneous heating device according to claim 3, wherein the pressurizing member has a fitting protrusion that is fitted into a fitting hole formed in the insertion portion. 前記流路形成部材はシリコンからなる、請求項1に記載の瞬間加熱装置。   The instantaneous heating device according to claim 1, wherein the flow path forming member is made of silicon. 前記加熱流路を形成する流路形成溝が、前記流路形成部材の外周に形成されている、請求項1に記載の瞬間加熱装置。   The instantaneous heating device according to claim 1, wherein a flow path forming groove that forms the heating flow path is formed on an outer periphery of the flow path forming member. 前記流路形成溝は螺旋状である、請求項9に記載の瞬間加熱装置。   The instantaneous heating device according to claim 9, wherein the flow path forming groove has a spiral shape. 前記入水部と出水部には、それぞれ入水流路と出水流路が形成されている、請求項1に記載の瞬間加熱装置。   The instantaneous heating device according to claim 1, wherein an inlet channel and an outlet channel are formed in the inlet part and the outlet part, respectively. 前記入水部の一部と出水部の一部は、前記流路形成部材の内部に形成された挿入部の一方の側と他方の側にそれぞれ挿入される、請求項11に記載の瞬間加熱装置。   The instantaneous heating according to claim 11, wherein a part of the water inlet part and a part of the water outlet part are respectively inserted into one side and the other side of an insertion part formed inside the flow path forming member. apparatus. 前記流路形成部材の一方の側と他方の側には、前記入水流路及び出水流路と前記加熱流路とをそれぞれ連結する第1連結孔と第2連結孔がそれぞれ形成されている、請求項11に記載の瞬間加熱装置。   A first connection hole and a second connection hole are formed on one side and the other side of the flow path forming member, respectively, for connecting the water flow path, the water flow path, and the heating flow path, respectively. The instantaneous heating device according to claim 11. 前記入水部または出水部は、前記入水流路や出水流路を流動する水の温度を測定する温度センサーを含む、請求項11に記載の瞬間加熱装置。   The instantaneous heating device according to claim 11, wherein the water inlet or the water outlet includes a temperature sensor that measures a temperature of water flowing through the water inlet channel or the water outlet channel. 前記加熱部は、
前記流路形成部材が内部に配置される加熱部材と、
前記加熱部材に取り付けられて前記加熱部材を加熱するヒーターと、を含む、請求項1に記載の瞬間加熱装置。
The heating unit is
A heating member in which the flow path forming member is disposed;
The instantaneous heating device according to claim 1, further comprising: a heater attached to the heating member to heat the heating member.
前記ヒーターは面状発熱型のヒーターである、請求項15に記載の瞬間加熱装置。   The instantaneous heater according to claim 15, wherein the heater is a planar heating type heater. 前記入水部、加熱部、及び出水部を覆うカバー部をさらに含む、請求項1に記載の瞬間加熱装置。   The instantaneous heating device according to claim 1, further comprising a cover that covers the water inlet, the heater, and the water outlet. 前記カバー部は、
前記入水部、及び前記加熱部の一部を覆う入水側カバー部材と、
前記入水側カバー部材に結合され、前記加熱部の残りの部分及び出水部を覆う出水側カバー部材と、を含む、請求項17に記載の瞬間加熱装置。
The cover part is
A water inlet side cover member that covers a part of the water inlet and the heating unit;
The instantaneous heating device according to claim 17, further comprising: a water discharge side cover member coupled to the water inlet side cover member and covering the remaining part of the heating unit and the water discharge unit.
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