JP4351582B2 - Automatic shut-off valve for heat storage circuit - Google Patents

Automatic shut-off valve for heat storage circuit Download PDF

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JP4351582B2
JP4351582B2 JP2004151910A JP2004151910A JP4351582B2 JP 4351582 B2 JP4351582 B2 JP 4351582B2 JP 2004151910 A JP2004151910 A JP 2004151910A JP 2004151910 A JP2004151910 A JP 2004151910A JP 4351582 B2 JP4351582 B2 JP 4351582B2
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heat storage
valve
heat
flow path
heat medium
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知英 工藤
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Honda Motor Co Ltd
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Description

本発明は、熱媒体を流す管路に蓄熱ユニットを設けた蓄熱回路に関するものである。   The present invention relates to a heat storage circuit in which a heat storage unit is provided in a pipe line through which a heat medium flows.

一般に、蓄熱回路は、発熱源の熱を蓄熱ユニットで蓄熱させ、蓄熱ユニットを管路で加熱装置に接続し、この加熱装置からの戻り管路を発熱源に接続する。   Generally, a heat storage circuit stores heat of a heat source with a heat storage unit, connects the heat storage unit to a heating device with a pipe, and connects a return pipe from the heating device to the heat source.

従来の蓄熱回路として、自動車の蓄熱回路が知られている(例えば、特許文献1参照。)。
特開平4−231847号公報(第4頁、図1)
As a conventional heat storage circuit, an automobile heat storage circuit is known (see, for example, Patent Document 1).
JP-A-4-231847 (page 4, FIG. 1)

特許文献1を次図に基づいて説明する。
図9は従来の技術の基本原理を説明する図であり、加熱及び冷却回路100は、冷却回路101にラジエータ102を備え、エンジン回路103にエンジン104を備え、その他、三方弁105、水ポンプ106、冷却器戻り回路107、接続ダクト108とからなり、さらに、加熱回路109に蓄熱手段110、加熱熱交換器111、加熱戻り手段112、弁113を設けたものである。
Patent document 1 is demonstrated based on the following figure.
FIG. 9 is a diagram for explaining the basic principle of the prior art. In the heating and cooling circuit 100, a cooling circuit 101 includes a radiator 102, an engine circuit 103 includes an engine 104, and a three-way valve 105, a water pump 106, and the like. And a cooler return circuit 107 and a connection duct 108, and further, a heat storage means 110, a heating heat exchanger 111, a heating return means 112, and a valve 113 are provided in the heating circuit 109.

エンジン104の中を通過する熱媒体は、三方弁105に進み、もし作動温度に達していなければ水ポンプ106を介してエンジン104に戻る。
蓄熱手段110で熱を奪われた熱媒体は、加熱回路109を介して加熱熱交換器111に進み、加熱戻り手段112、弁113、接続ダクト108、水ポンプ106を介してエンジン104に戻る。
The heat medium passing through the engine 104 proceeds to the three-way valve 105 and returns to the engine 104 via the water pump 106 if the operating temperature has not been reached.
The heat medium deprived of heat by the heat storage means 110 proceeds to the heating heat exchanger 111 via the heating circuit 109, and returns to the engine 104 via the heating return means 112, the valve 113, the connection duct 108, and the water pump 106.

ところで、蓄熱手段110には、蓄熱物質が充填もしくは内蔵されている。蓄熱物質には各種の物が使用可能であるが、パラフィンが好んで使用される。パラフィンは金属を腐食させる心配がないからである。   Incidentally, the heat storage means 110 is filled with or contains a heat storage material. Various materials can be used as the heat storage material, but paraffin is preferred. This is because paraffin does not worry about corroding metals.

しかし、パラフィン系蓄熱物質を封じ込めている壁が破れると、2次問題が発生する。すなわち、パラフィン系蓄熱物質は、冷却水に不溶性な物質であるため洩れ出すと蓄熱回路中の機器の流路を詰まらせ、蓄熱回路の機能を低下若しくは停止させてしまう可能性がある。   However, if the wall containing the paraffin-based heat storage material is broken, a secondary problem occurs. That is, since the paraffin-based heat storage material is insoluble in the cooling water, if it leaks out, it may clog the flow path of the device in the heat storage circuit and reduce or stop the function of the heat storage circuit.

本発明は、冷却水などの熱媒体に不溶性の蓄熱物質が蓄熱回路中に洩れ出しても、蓄熱回路中の機器の機能を正常に保つことのできる蓄熱回路用自動遮断弁を提供することを課題とする。   It is an object of the present invention to provide an automatic shut-off valve for a heat storage circuit that can maintain the function of equipment in the heat storage circuit normally even if a heat storage material insoluble in a heat medium such as cooling water leaks into the heat storage circuit. Let it be an issue.

請求項1に係る発明は、冷却水などの熱媒体を流す管路に、エンジンなどの発熱源を介設し、この発熱源より下流位置にて、熱媒体に不溶性の蓄熱物質を内蔵する蓄熱ユニットを管路に介設し、発熱源の熱を蓄熱ユニットで蓄熱させることができる蓄熱回路において、
蓄熱ユニットより下流位置にて管路に自動遮断弁を設け、
この自動遮断弁は、熱媒体を通す主流路とともに熱媒体をバイパスして流すバイパス流路を備え、このバイパス流路に弁を開く弁開機構を介設し、且つこの弁開機構より上流位置にてパイパス流路に、蓄熱ユニットから蓄熱物質が洩れ出したときに、この不溶性の蓄熱物質を凝固させる冷却部を備え、
蓄熱物質が洩れたときに弁を閉じて熱媒体の流れを止めることができるようにしたことを特徴とする。
According to the first aspect of the present invention, a heat storage source in which a heat source such as an engine is provided in a pipe line through which a heat medium such as cooling water flows, and a heat storage material insoluble in the heat medium is incorporated at a position downstream from the heat source. In the heat storage circuit where the unit is installed in the pipeline and the heat of the heat source can be stored in the heat storage unit,
An automatic shut-off valve is provided in the pipeline at a position downstream from the heat storage unit,
This automatic shut-off valve has a bypass channel for bypassing the heat medium and a main channel for allowing the heat medium to pass therethrough, a valve opening mechanism for opening the valve in the bypass channel, and an upstream position from the valve opening mechanism. When the heat storage material leaks from the heat storage unit, the bypass passage is provided with a cooling unit that solidifies the insoluble heat storage material.
When the heat storage material leaks, the valve is closed so that the flow of the heat medium can be stopped.

自動遮断弁は、熱媒体を通す主流路とともに熱媒体をバイパスして流すバイパス流路を備えるために、蓄熱回路を流れる熱媒体を分岐して流すことができる。
その結果、この分岐した流れを利用して、弁の開閉を制御することができる。
Since the automatic shut-off valve includes a bypass flow path that bypasses the heat medium and flows along with the main flow path that passes the heat medium, the heat medium that flows through the heat storage circuit can be branched and flow.
As a result, the opening and closing of the valve can be controlled using this branched flow.

また、自動遮断弁は、バイパス流路に弁を開く弁開機構を介設したために、バイパス流路内の熱媒体の流れ方により、弁の開閉を決めることができる。
さらに、自動遮断弁は、弁開機構より上流位置のバイパス流路に冷却部を備えたので、蓄熱ユニットから不溶性の蓄熱物質が洩れてこの冷却部を通過する際に、蓄熱物質を自動的に凝固させることができる。
Moreover, since the automatic shut-off valve is provided with a valve opening mechanism that opens the valve in the bypass flow path, the opening and closing of the valve can be determined depending on how the heat medium flows in the bypass flow path.
Furthermore, since the automatic shut-off valve has a cooling part in the bypass flow path located upstream from the valve opening mechanism, when the insoluble heat storage material leaks from the heat storage unit and passes through this cooling part, the heat storage material is automatically removed. It can be solidified.

請求項1に係る発明では、冷却水などの熱媒体に不溶性の蓄熱物質が蓄熱ユニットから蓄熱回路中に洩れると、蓄熱ユニットの下流側にある自動遮断弁内に備わるバイパス流路に冷却部を設けたので、この不溶性の蓄熱物質を冷却凝固させることができる。
自動遮断弁は、バイパス流路で蓄熱物質が冷却凝固すると、バイパス流路に熱媒体が流れなくなり、このバイパス流路に介設した弁開機構の働きが停止し、弁を閉じることができる。
したがって、冷却水などの熱媒体に不溶性の蓄熱物質が蓄熱回路中に洩れ出しても、蓄熱回路中の機器の機能を正常に保つことのできる蓄熱回路用自動遮断弁を提供することができる。
In the invention according to claim 1, when a heat storage material insoluble in a heat medium such as cooling water leaks from the heat storage unit into the heat storage circuit, the cooling unit is provided in the bypass passage provided in the automatic shutoff valve on the downstream side of the heat storage unit. Since it is provided, this insoluble heat storage material can be cooled and solidified.
In the automatic shut-off valve, when the heat storage material cools and solidifies in the bypass flow path, the heat medium stops flowing in the bypass flow path, and the valve opening mechanism provided in the bypass flow path stops and the valve can be closed.
Accordingly, it is possible to provide an automatic shut-off valve for a heat storage circuit that can keep the functions of the devices in the heat storage circuit normal even when a heat storage material insoluble in a heat medium such as cooling water leaks into the heat storage circuit.

本発明を実施するための最良の形態を添付図に基づいて以下に説明する。なお、図面は符号の向きに見るものとする。
図1は本発明に係る蓄熱回路を示す図であり、蓄熱回路10は、エチレングリコール水溶液からなる冷却水などの熱媒体を流す管路11に、エンジンやモータなどの発熱源12を介設し、この発熱源12より下流位置にて、熱媒体に不溶性を示すパラフィンなどの蓄熱物質を内蔵する蓄熱ユニット13を介設し、蓄熱ユニット13より下流位置に空調装置の加熱器15を介設し、発熱源12の近傍にウォーターポンプ17を備え、さらに蓄熱ユニット13より下流位置の管路11に自動遮断弁20を設けた回路である。尚、ラジエータ14やサーモスタット16を備えた回路は発熱源12の冷却回路である。
The best mode for carrying out the present invention will be described below with reference to the accompanying drawings. The drawings are viewed in the direction of the reference numerals.
FIG. 1 is a diagram showing a heat storage circuit according to the present invention. The heat storage circuit 10 is provided with a heat source 12 such as an engine or a motor in a pipe 11 through which a heat medium such as cooling water made of an ethylene glycol aqueous solution flows. A heat storage unit 13 containing a heat storage material such as paraffin that is insoluble in the heat medium is interposed downstream of the heat source 12, and a heater 15 of the air conditioner is interposed downstream of the heat storage unit 13. In this circuit, a water pump 17 is provided in the vicinity of the heat source 12, and an automatic shut-off valve 20 is provided in the pipe line 11 at a position downstream from the heat storage unit 13. A circuit including the radiator 14 and the thermostat 16 is a cooling circuit for the heat source 12.

図2は本発明に係る自動遮断弁の分解斜視図であり、自動遮断弁20の本体21を中央で半分に割り、内側22に現れた各部位の凹部と、外側23の各部位の凸部と、中央に備わる弁開機構40とを示したものである。   FIG. 2 is an exploded perspective view of the automatic shut-off valve according to the present invention, in which the main body 21 of the automatic shut-off valve 20 is divided in half at the center, and the concave portions of the portions appearing on the inner side 22 and the convex portions of the outer side 23 And a valve opening mechanism 40 provided in the center.

自動遮断弁20は、本体21の内側22に、主流路24を設け、この主流路24の上方及び下方に第1バイパス流路25及び第2バイパス流路26を設け、この第1バイパス流路25の一部に冷却部27を設け、この冷却部27に備わるフィン28と、凹部29、31、32と、これら凹部29、31、32に収まる弁開機構40とからなるものである。
弁開機構40は、上部羽根41と下部羽根42とを連結するウォームギヤ軸43と、このウォームギヤ軸43に沿って上下に可動するねじ孔44を備えた可動弁45とからなる。
The automatic shutoff valve 20 is provided with a main flow path 24 on the inner side 22 of the main body 21, and a first bypass flow path 25 and a second bypass flow path 26 are provided above and below the main flow path 24. A cooling part 27 is provided in a part of 25, and includes a fin 28 provided in the cooling part 27, recesses 29, 31, 32, and a valve opening mechanism 40 that fits in these recesses 29, 31, 32.
The valve opening mechanism 40 includes a worm gear shaft 43 that connects the upper blade 41 and the lower blade 42, and a movable valve 45 that includes a screw hole 44 that moves up and down along the worm gear shaft 43.

図3は本発明に係る自動遮断弁の断面図であり、自動遮断弁20は、本体21の内側22に、熱媒体を通す主流路24とともに熱媒体をバイパスして流す第1バイパス流路25、第2バイパス流路26とを備え、この主流路24の凹部29と第1バイパス流路25の凹部31と第2バイパス流路26の凹部32とに弁を開く弁開機構40を介設し、且つこの弁開機構40より上流位置にて第1パイパス流路25に、蓄熱ユニット13(図1参照。)から蓄熱物質が洩れ出したときに、この不溶性の蓄熱物質を凝固させる冷却部27を備え、蓄熱物質が洩れたときに弁を閉じて熱媒体の流れを止めることができるようにしたものである。   FIG. 3 is a cross-sectional view of the automatic shutoff valve according to the present invention. The automatic shutoff valve 20 bypasses the heat medium together with the main flow path 24 through which the heat medium passes through the inner side 22 of the main body 21. And a second bypass flow path 26, and a valve opening mechanism 40 that opens a valve in the recess 29 of the main flow path 24, the recess 31 of the first bypass flow path 25, and the recess 32 of the second bypass flow path 26 is provided. In addition, when the heat storage material leaks from the heat storage unit 13 (see FIG. 1) to the first bypass passage 25 at a position upstream from the valve opening mechanism 40, a cooling unit that solidifies the insoluble heat storage material. 27, and when the heat storage material leaks, the valve is closed so that the flow of the heat medium can be stopped.

弁開機構40は、上部羽根41と下部羽根42とウォームギヤ軸43と可動弁45とからなり、上部羽根41を複数の羽根46・・・(・・・は複数を示す。以下同じ。)とこれら羽根46・・・の付け根部47とで、下部羽根42を複数の羽根48・・・とこれら羽根48・・・の付け根部49とで構成した。   The valve opening mechanism 40 includes an upper blade 41, a lower blade 42, a worm gear shaft 43, and a movable valve 45, and the upper blade 41 includes a plurality of blades 46. The lower blade 42 is composed of a plurality of blades 48... And a root portion 49 of these blades 48.

図4は蓄熱ユニットが正常運転時の自動遮断弁の作用図である。
自動遮断弁20において、熱媒体は矢印Aの如く入り、主流路24、第1バイパス流路25、第2バイパス流路26に矢印Bの如く分岐し、凹部31に収納する羽根46・・・と凹部32に収納する羽根48・・・を回転させるように作用する。このとき、可動弁45を開ける方向に動かす力が可動弁45を閉じる方向に動かす力より大きく設定されているために、羽根46・・・が矢印Cの如く回転し、羽根48・・・が矢印Cの如く回転し、これらの羽根46・・・及び羽根48・・・の付け根部47、49で連結するウォームギヤ軸43が矢印Cの如く回転し、可動弁45が矢印Dの如く上限まで動いて止まると羽根46・・・及び羽根48・・・の回転は止まり、熱媒体が矢印Eの如く下流側に流れる。
FIG. 4 is an operation diagram of the automatic shut-off valve when the heat storage unit is operating normally.
In the automatic shut-off valve 20, the heat medium enters as indicated by an arrow A, branches into the main flow path 24, the first bypass flow path 25, and the second bypass flow path 26 as indicated by an arrow B and is stored in the recess 31. And the blades 48... Stored in the recess 32 are rotated. At this time, since the force to move the movable valve 45 in the opening direction is set larger than the force to move the movable valve 45 in the closing direction, the blades 46... Rotate as indicated by the arrow C, and the blades 48. The worm gear shaft 43 is rotated as indicated by an arrow C, and the worm gear shaft 43 connected at the base portions 47 and 49 of the blades 46... And 48 is rotated as indicated by an arrow C. When it stops moving, the rotation of the blades 46... And the blades 48... Stops and the heat medium flows downstream as indicated by an arrow E.

可動弁45が開放するような構造にするための具体策は、例えば、羽根46・・・を羽根48・・・より大きくし、羽根46・・・の回転モーメントを大きくすることや、第1バイパス流路25の径を第2バイパス流路26の径よりも大きく設定して、羽根46・・・に羽根48・・・よりも多くの熱媒体流量を作用させるようにする。   Specific measures for making the movable valve 45 open are, for example, making the blades 46... Larger than the blades 48 and increasing the rotational moment of the blades 46. The diameter of the bypass flow path 25 is set larger than the diameter of the second bypass flow path 26 so that a larger amount of heat medium flow is applied to the blades 46.

このように、自動遮断弁20は、熱媒体を通す主流路24とともに熱媒体をバイパスして流す第1バイパス流路25、第2バイパス流路26を備えるために、蓄熱回路を流れる熱媒体を分岐して流すことができ、この分岐した流れを利用して、弁の開閉を制御することができる。   Thus, since the automatic shut-off valve 20 includes the first bypass flow path 25 and the second bypass flow path 26 that bypass the heat medium together with the main flow path 24 through which the heat medium passes, the heat medium flowing through the heat storage circuit is provided. The flow can be branched and the opening and closing of the valve can be controlled using this branched flow.

また、自動遮断弁20は、バイパス流路に弁を開く弁開機構40を介設したために、バイパス流路内の熱媒体の流れ方により、弁の開閉を決めることができる。   Further, since the automatic shut-off valve 20 is provided with a valve opening mechanism 40 that opens the valve in the bypass flow path, the opening and closing of the valve can be determined depending on how the heat medium flows in the bypass flow path.

図5は蓄熱回路に蓄熱物質が流れ出した場合の自動遮断弁の作用図である。
(a)で主流路24に蓄熱物質が矢印Fの如く入り、矢印Gの如く主流路24、第1バイパス流路25、第2バイパス流路26に分岐し始めた状態を示すが、この状態では、熱媒体が矢印A、B、Eの如く上流側から下流側へ流れているために、可動弁45は、矢印Dの上限への移動状態を維持したままである。
FIG. 5 is an operation diagram of the automatic shut-off valve when the heat storage material flows into the heat storage circuit.
In (a), the heat storage material enters the main flow path 24 as indicated by an arrow F, and as indicated by the arrow G, a state in which the heat storage material starts to branch into the main flow path 24, the first bypass flow path 25, and the second bypass flow path 26 is illustrated. Then, since the heat medium flows from the upstream side to the downstream side as indicated by arrows A, B, and E, the movable valve 45 remains in the state of movement to the upper limit of the arrow D.

(b)で蓄熱物質が冷却部27で冷却され、凝固した蓄熱物質51として第1バイパス流路25を塞いだ状態を示すが、この状態では、熱媒体が第1バイパス流路25に流れなくなるので、熱媒体は主流路24内の矢印A、B、Eの流れと、第2バイパス流路26内の矢印Bの流れに限定され、羽根48・・・と羽根46・・・とウォームギヤ軸43が矢印Hの如く回転し、可動弁45が矢印Jの如く下がる方向へ動く。   (B) shows a state in which the heat storage material is cooled by the cooling unit 27 and the first bypass passage 25 is blocked as the solidified heat storage material 51. In this state, the heat medium does not flow into the first bypass passage 25. Therefore, the heat medium is limited to the flow of the arrows A, B, E in the main flow path 24 and the flow of the arrow B in the second bypass flow path 26, and the blade 48 ..., the blade 46 ..., and the worm gear shaft. 43 rotates as shown by an arrow H, and the movable valve 45 moves in a direction of dropping as shown by an arrow J.

(c)で(b)の状態から可動弁45が下限まで下がり、完全に主流路24及び第2バイパス流路26を塞いだ状態を示す。
自動遮断弁20は、熱媒体が矢印AからBへ、蓄熱物質が矢印FからGへ流れ続けようとするが、可動弁45が矢印Jの如く下限で留まるので、やがてこれら流体の流れを止めることができる。
In (c), the movable valve 45 is lowered from the state (b) to the lower limit, and the main flow path 24 and the second bypass flow path 26 are completely blocked.
The automatic shut-off valve 20 tries to keep the heat medium flowing from the arrow A to B and the heat storage material from the arrow F to G. However, since the movable valve 45 stays at the lower limit as shown by the arrow J, the flow of these fluids eventually stops. be able to.

このように、自動遮断弁20は、第1バイパス流路25で蓄熱物質が冷却凝固すると、第1バイパス流路25に熱媒体が流れなくなり、この第1バイパス流路25に介設した弁開機構40の弁を開く働きが停止し、弁を閉じることができる。   As described above, when the heat storage material cools and solidifies in the first bypass flow path 25, the automatic shutoff valve 20 stops the heat medium from flowing into the first bypass flow path 25, and the valve opened in the first bypass flow path 25 is opened. The opening of the valve of the mechanism 40 stops and the valve can be closed.

その結果、蓄熱回路10は作動しなくなり、蓄熱回路10の各部品機能を損なう虞が無くなる。
したがって、冷却水などの熱媒体に不溶性の蓄熱物質が蓄熱回路中に洩れ出しても、蓄熱回路中の機器の機能を正常に保つことのできる蓄熱回路用自動遮断弁を提供することができる。
As a result, the heat storage circuit 10 does not operate, and there is no possibility that the function of each component of the heat storage circuit 10 is impaired.
Accordingly, it is possible to provide an automatic shut-off valve for a heat storage circuit that can keep the functions of the devices in the heat storage circuit normal even when a heat storage material insoluble in a heat medium such as cooling water leaks into the heat storage circuit.

図6は図3の別実施例を示す図であり、自動遮断弁60は、本体61の内側62に、熱媒体を通す主流路63とともに熱媒体をバイパスして流すバイパス流路64を備え、このバイパス流路64に蓄熱ユニット13(図1参照。)から蓄熱物質が洩れ出したときに、この不溶性の蓄熱物質を凝固させる冷却部65を備え、この冷却部65で図の背面側に延びたフィン66と、バイパス流路64の凹部67の凹部内壁68に嵌合するように弁開機構70を介設し、この弁開機構70より上流位置に設けた冷却部65で蓄熱物質が洩れたときに蓄熱物質を凝固し、弁を閉じて熱媒体の流れを止めることができるようにしたものである。   FIG. 6 is a diagram showing another embodiment of FIG. 3, and the automatic shut-off valve 60 includes a bypass channel 64 that bypasses the heat medium and flows along with the main channel 63 that passes the heat medium inside the main body 61. The bypass passage 64 includes a cooling unit 65 that solidifies the insoluble heat storage material when the heat storage material leaks from the heat storage unit 13 (see FIG. 1). The cooling unit 65 extends to the back side of the drawing. The valve opening mechanism 70 is provided so as to fit the fin 66 and the recess inner wall 68 of the recess 67 of the bypass flow path 64, and the heat storage material leaks in the cooling unit 65 provided upstream of the valve opening mechanism 70. The heat storage material is solidified and the flow of the heat medium can be stopped by closing the valve.

弁開機構70は、ピストン71のばね収納部72の外壁73を凹部内壁68に沿わせ、ばね収納部72の内壁74に沿うように圧縮コイルばね75を介設し、ばね収納部72の先に設けた押し棒76の先端部77で球78を押さえつけるように構成したものである。
79は球78で主流路63を塞ぐときに球78と嵌合するパッキンである。
The valve opening mechanism 70 has an outer wall 73 of the spring accommodating portion 72 of the piston 71 along the inner wall 68 of the recess, and a compression coil spring 75 interposed along the inner wall 74 of the spring accommodating portion 72. The ball 78 is configured to be pressed by the tip portion 77 of the push rod 76 provided in FIG.
Reference numeral 79 denotes a packing that fits with the sphere 78 when the sphere 78 closes the main flow path 63.

図7は蓄熱ユニットが正常運転時の図6の自動遮断弁の作用図である。
自動遮断弁60において、熱媒体は矢印Kの如く入り、主流路63とバイパス流路64とに矢印Lの如く分岐する。
このとき、弁開機構70では、ピストン71のばね収納部72の底面81の面積Sが押し棒76の付け根の面積Sより大きいので、これら面積Sと圧力を掛けた力F(圧縮コイルばね75の反力とピストン71の押力の合成した力)と、このFに反発する面積Sと圧力を掛けた力Fにおいて、F>Fの関係があるので、圧縮コイルばね75が矢印Mの如く下方へ、また、ピストン71が矢印Nの如く下方へ動き、押し棒76の先端部77で球78を押付けた状態を維持し、熱媒体は矢印Pの如く下流側に流れる。
FIG. 7 is an operation diagram of the automatic shut-off valve of FIG. 6 when the heat storage unit is operating normally.
In the automatic shut-off valve 60, the heat medium enters as indicated by an arrow K, and branches into the main flow path 63 and the bypass flow path 64 as indicated by an arrow L.
At this time, the valve opening mechanism 70, the area S 1 of the bottom surface 81 of the spring housing portion 72 of the piston 71 is larger than the base area S 2 of the push rod 76, the force F 1 by multiplying these areas S 1 and the pressure ( Since there is a relationship of F 1 > F 2 in the force F 2 applied with pressure and the area S 2 repelling F 1 , the combined force of the reaction force of the compression coil spring 75 and the pressing force of the piston 71, The compression coil spring 75 moves downward as indicated by an arrow M, and the piston 71 moves downward as indicated by an arrow N, maintaining the state in which the ball 78 is pressed by the tip 77 of the push rod 76, and the heat medium is indicated by an arrow P. Flows downstream.

弁開機構70は、ピストン71と圧縮コイルばね75と球78とからなり、バイパス流路64が1つで良いので、比較的簡単な機構で弁の開閉を行うことができる。   The valve opening mechanism 70 includes a piston 71, a compression coil spring 75, and a ball 78, and only one bypass flow path 64 is required. Therefore, the valve can be opened and closed with a relatively simple mechanism.

図8は蓄熱回路に蓄熱物質が流れ出した場合の図6の自動遮断弁の作用図である。
(a)で主流路63に蓄熱物質が矢印Qの如く入り、矢印Rの如く主流路63、バイパス流路64に分岐し始めた状態を示すが、この状態では、熱媒体が矢印K、L、Pの如く上流側から下流側へ流れているために、圧縮コイルばね75が矢印Mの如く下方へ動く状態と、ピストン71が矢印Nの如く下方へ動く状態とを維持したままである。
FIG. 8 is an operation diagram of the automatic shut-off valve of FIG. 6 when a heat storage material flows out into the heat storage circuit.
(A) shows a state in which the heat storage material enters the main flow path 63 as indicated by the arrow Q and starts to branch into the main flow path 63 and the bypass flow path 64 as indicated by the arrow R. In this state, the heat medium is indicated by the arrows K and L. , P flows from the upstream side to the downstream side, so that the state where the compression coil spring 75 moves downward as indicated by the arrow M and the state where the piston 71 moves downward as indicated by the arrow N are maintained.

(b)で蓄熱物質が冷却部65で冷却され、凝固した蓄熱物質82としてバイパス流路64を塞いだ状態を示す。
この状態では、熱媒体がバイパス流路64に流れなくなるので、圧縮コイルばね75の押力は有るが、ピストン71の下方への押力が弱い状態となる。
(B) shows a state where the heat storage material is cooled by the cooling unit 65 and the bypass flow path 64 is blocked as the solidified heat storage material 82.
In this state, since the heat medium does not flow into the bypass flow path 64, there is a pressing force of the compression coil spring 75, but the pressing force downward of the piston 71 is weak.

球78に注目すると、球78の上方には熱媒体が矢印K、L、Pの如く流れ、その流速は大きい。一方、球78の下方には狭い隙間があるが、この隙間に流れる熱媒体の流速は小さい。   When attention is paid to the sphere 78, the heat medium flows above the sphere 78 as indicated by arrows K, L, and P, and the flow velocity is large. On the other hand, there is a narrow gap below the sphere 78, but the flow rate of the heat medium flowing through this gap is small.

動圧+静圧=全圧で定義することのできる、全圧は球78の上と下では差がない。動圧は流速の二乗に比例する。球78の上方では、流速が大きいため動圧が大きく、結果として静圧が小さくなる。球78の下方では、流速が小さいため動圧が小さく、結果として静圧が大きくなる。静圧の差により球78に上向きの力が作用し、球78は矢印Tの如く上昇する。   The total pressure, which can be defined as dynamic pressure + static pressure = total pressure, has no difference above and below the sphere 78. The dynamic pressure is proportional to the square of the flow velocity. Above the sphere 78, since the flow velocity is large, the dynamic pressure is large, and as a result, the static pressure is small. Below the sphere 78, since the flow velocity is small, the dynamic pressure is small, and as a result, the static pressure is large. Due to the difference in static pressure, an upward force acts on the sphere 78, and the sphere 78 rises as shown by an arrow T.

(c)で(b)の状態から球78が上限まで上がり、完全に主流路63を塞いだ状態を示す。
自動遮断弁60では、熱媒体が矢印KからLへ、蓄熱物質が矢印QからRへ流れ続けようとするが、球78が矢印Tの如く上限で留まり、ピストン71で圧縮コイルばね75の働きを抑制し続けるので、やがてこれら流体の流れを止めることができる。
(C) shows a state in which the sphere 78 has risen from the state of (b) to the upper limit and the main channel 63 is completely blocked.
In the automatic shut-off valve 60, the heat medium continues to flow from the arrow K to L and the heat storage material continues to flow from the arrow Q to R. However, the ball 78 remains at the upper limit as indicated by the arrow T, and the piston 71 works as a compression coil spring 75. The flow of these fluids can be stopped before long.

その結果、蓄熱回路10は作動しなくなり、蓄熱回路10の各部品機能を損なう虞が無くなる。
したがって、冷却水などの熱媒体に不溶性の蓄熱物質が蓄熱回路中に洩れ出しても、蓄熱回路中の機器の機能を正常に保つことのできる蓄熱回路用自動遮断弁を提供することができる。
As a result, the heat storage circuit 10 does not operate, and there is no possibility that the function of each component of the heat storage circuit 10 is impaired.
Accordingly, it is possible to provide an automatic shut-off valve for a heat storage circuit that can keep the functions of the devices in the heat storage circuit normal even when a heat storage material insoluble in a heat medium such as cooling water leaks into the heat storage circuit.

尚、本発明の自動遮断弁20、60は、冷却部27、65での冷却方式を空気で冷却する冷却フィンとしたが、冷却フィンに代えて蓄熱物質の凝固温度よりも低温の流体で冷却させるようにしても差し支えない。   In the automatic shut-off valves 20 and 60 of the present invention, the cooling method in the cooling units 27 and 65 is a cooling fin that cools with air. It does not matter even if it is made to do.

本発明の蓄熱回路用自動遮断弁は、蓄熱回路に好適である。   The automatic shutoff valve for a heat storage circuit of the present invention is suitable for a heat storage circuit.

本発明に係る蓄熱回路を示す図である。It is a figure which shows the thermal storage circuit which concerns on this invention. 本発明に係る自動遮断弁の分解斜視図である。It is a disassembled perspective view of the automatic shutoff valve concerning the present invention. 本発明に係る自動遮断弁の断面図である。It is sectional drawing of the automatic cutoff valve which concerns on this invention. 蓄熱ユニットが正常運転時の自動遮断弁の作用図である。It is an effect | action figure of the automatic cutoff valve at the time of a heat storage unit operating normally. 蓄熱回路に蓄熱物質が流れ出した場合の自動遮断弁の作用図である。It is an action figure of an automatic shut-off valve when a thermal storage substance flows out into a thermal storage circuit. 図3の別実施例を示す図である。It is a figure which shows another Example of FIG. 蓄熱ユニットが正常運転時の図6の自動遮断弁の作用図である。It is an effect | action figure of the automatic cutoff valve of FIG. 6 at the time of a heat storage unit operating normally. 蓄熱回路に蓄熱物質が流れ出した場合の図6の自動遮断弁の作用図である。It is an effect | action figure of the automatic cutoff valve of FIG. 6 when a thermal storage substance flows out into a thermal storage circuit. 従来の技術の基本原理を説明する図である。It is a figure explaining the basic principle of the prior art.

符号の説明Explanation of symbols

10…蓄熱回路 、13…蓄熱ユニット 、20…自動遮断弁 、24…主流路 、25…第1バイパス流路 、26…第2バイパス流路 、27…冷却部 、40…弁開機構 、41…上部羽根 、42…下部羽根 、43…ウォームギヤ軸 、45…可動弁 、60…自動遮断弁 、63…主流路 、64…バイパス流路 、65…冷却部 、70…弁開機構 、71…ピストン 、75…圧縮コイルばね 、78…球。   DESCRIPTION OF SYMBOLS 10 ... Thermal storage circuit, 13 ... Thermal storage unit, 20 ... Automatic shut-off valve, 24 ... Main flow path, 25 ... 1st bypass flow path, 26 ... 2nd bypass flow path, 27 ... Cooling part, 40 ... Valve opening mechanism, 41 ... Upper blade, 42 ... Lower blade, 43 ... Worm gear shaft, 45 ... Movable valve, 60 ... Automatic shutoff valve, 63 ... Main flow path, 64 ... Bypass flow path, 65 ... Cooling section, 70 ... Valve opening mechanism, 71 ... Piston, 75: Compression coil spring, 78 ... Sphere.

Claims (1)

冷却水などの熱媒体を流す管路に、エンジンなどの発熱源を介設し、この発熱源より下流位置にて、前記熱媒体に不溶性の蓄熱物質を内蔵する蓄熱ユニットを前記管路に介設し、発熱源の熱を蓄熱ユニットで蓄熱させることができる蓄熱回路において、
前記蓄熱ユニットより下流位置にて前記管路に自動遮断弁を設け、
この自動遮断弁は、熱媒体を通す主流路とともに熱媒体をバイパスして流すバイパス流路を備え、このバイパス流路に弁を開く弁開機構を介設し、且つこの弁開機構より上流位置にてパイパス流路に、蓄熱ユニットから前記蓄熱物質が洩れ出したときに、この不溶性の蓄熱物質を凝固させる冷却部を備え、
蓄熱物質が洩れたときに弁を閉じて熱媒体の流れを止めることができるようにしたことを特徴とする蓄熱回路用自動遮断弁。
A heat source such as an engine is provided in a pipe for flowing a heat medium such as cooling water, and a heat storage unit containing a heat storage material insoluble in the heat medium is provided in the pipe at a position downstream from the heat source. In the heat storage circuit that can store the heat of the heat source in the heat storage unit,
An automatic shut-off valve is provided in the pipeline at a position downstream from the heat storage unit,
This automatic shut-off valve has a bypass channel for bypassing the heat medium and a main channel for allowing the heat medium to pass therethrough, a valve opening mechanism for opening the valve in the bypass channel, and an upstream position from the valve opening mechanism. In the bypass flow path, when the heat storage material leaks from the heat storage unit, a cooling unit for solidifying the insoluble heat storage material is provided,
An automatic shut-off valve for a heat storage circuit, characterized in that when the heat storage material leaks, the valve can be closed to stop the flow of the heat medium.
JP2004151910A 2004-05-21 2004-05-21 Automatic shut-off valve for heat storage circuit Expired - Fee Related JP4351582B2 (en)

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