JP2013217521A - Latent heat recovery type evaporative water heater - Google Patents

Latent heat recovery type evaporative water heater Download PDF

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JP2013217521A
JP2013217521A JP2012086281A JP2012086281A JP2013217521A JP 2013217521 A JP2013217521 A JP 2013217521A JP 2012086281 A JP2012086281 A JP 2012086281A JP 2012086281 A JP2012086281 A JP 2012086281A JP 2013217521 A JP2013217521 A JP 2013217521A
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heat exchanger
primary
heater
combustion
water supply
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Susumu Abe
進 阿部
Katsunori Kato
克則 加藤
Takahiro Nunokawa
隆弘 布川
Teruaki Kojima
輝明 小島
Taketoshi Tamura
竹年 田村
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Corona Corp
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Corona Corp
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Abstract

PROBLEM TO BE SOLVED: To provide a latent heat recovery type evaporative oil water heater which prevents freezing of retained water inside heat receiving tubes without providing a dedicated heater for preventing freezing which heats the heat receiving tubes of a primary heat exchanger and a secondary heat exchanger.SOLUTION: In a latent heat recovery type evaporative oil water heater 1 which includes a burner configured with an evaporating unit 7 which has heaters 4 and 6 for heating and which evaporates a fuel, and a combustion unit 10 which combusts the fuel evaporated at the evaporating unit 7, a primary heat exchanger 23 which recovers sensible heat from a combustion gas generated by combustion of the burner to heat water flowing through a primary heat receiving tube 22, a secondary heat exchanger 25 which recovers latent heat from the combustion gas which has passed through the primary heat exchanger 23 to heat water flowing through a secondary heat receiving tube 24, and a temperature detecting unit 36 which detects a freezing prevention temperature, in which the primary heat exchanger 23 is arranged above the burner, and the secondary heat exchanger 25 are arranged above the primary heat exchanger 23, and when the freezing prevention temperature is detected upon stop of operation of the latent heat recovery type evaporative oil water heater 1, the heaters 4 and 6 for heating are powered on.

Description

この発明は、潜熱回収型気化式石油給湯装置の凍結防止に関するものである。   The present invention relates to the prevention of freezing of a latent heat recovery type vaporized petroleum hot water supply apparatus.

従来の給湯装置では、熱交換効率を向上させるために、バーナの燃焼により発生する燃焼ガスから顕熱を回収し一次受熱管を流通する水を加熱する一次熱交換器と、一次熱交換器を通過した後の燃焼ガスから潜熱を回収し二次受熱管を流通する水を加熱する二次熱交換器とを備えた潜熱回収型給湯装置が普及してきている。   In a conventional hot water supply apparatus, in order to improve heat exchange efficiency, a primary heat exchanger that recovers sensible heat from combustion gas generated by combustion of a burner and heats water flowing through a primary heat receiving pipe, and a primary heat exchanger are provided. A latent heat recovery type hot water supply apparatus having a secondary heat exchanger that recovers latent heat from the combustion gas after passing through and heats water flowing through a secondary heat receiving pipe has become widespread.

このような潜熱回収型給湯装置において、一次熱交換器の一次受熱管内の水の凍結を防止するために一次受熱管に凍結防止用ヒータを添設して(例えば、特許文献1参照。)、低温環境の使用下において凍結防止ヒータを用いて凍結防止を図るもの、二次熱交換器の二次受熱管内の水の凍結を防止するために二次受熱管に凍結防止用ヒータを添設して(例えば、特許文献2参照。)、低温環境の使用下において凍結防止ヒータを用いて凍結防止を図るものがあった。   In such a latent heat recovery type hot water supply apparatus, in order to prevent the water in the primary heat receiving pipe of the primary heat exchanger from freezing, a heater for freezing prevention is added to the primary heat receiving pipe (for example, refer to Patent Document 1). Anti-freezing heaters are used to prevent freezing in low-temperature environments. To prevent freezing of water in the secondary heat receiving pipe of the secondary heat exchanger, an anti-freezing heater is added to the secondary heat receiving pipe. (For example, refer to Patent Document 2), there are some that use a freeze prevention heater to prevent freezing in a low temperature environment.

特開2006−105468号公報JP 2006-105468 A 特開2000−199648号公報JP 2000-199648 A

ところで、この潜熱回収型給湯装置では、凍結防止用ヒータを用いることによって、一次熱交換器の一次受熱管内の水および二次熱交換器の二次受熱管内の水の凍結を防止することはできるが、一次受熱管内の水および二次受熱管内の水の凍結を防止するためにそれぞれ専用の凍結防止用ヒータを添設しなければならず、凍結防止用ヒータを添設した分、部品コストが高くなると共に、凍結防止用ヒータの組み付けが増えて作業が煩雑となり、さらに、部品故障のリスクが増すという問題点を有するものであった。   By the way, in this latent heat recovery type hot water supply apparatus, freezing of water in the primary heat receiving pipe of the primary heat exchanger and water in the secondary heat receiving pipe of the secondary heat exchanger can be prevented by using a freezing prevention heater. However, in order to prevent the water in the primary heat receiving pipe and the water in the secondary heat receiving pipe from freezing, a dedicated anti-freezing heater must be provided, and the parts cost is reduced by the addition of the anti-freezing heater. In addition to the increase in the number of components, the assembly of the anti-freezing heater is increased, which complicates the work, and further increases the risk of component failure.

この発明は、上記課題を解決するために、特に請求項1ではその構成を、加熱用ヒータを備え燃油を気化させる気化部と、この気化部で気化させた燃油を燃焼させる燃焼部とで構成されるバーナと、該バーナの燃焼により発生した燃焼ガスから顕熱を回収し一次受熱管を流通する水を加熱する一次熱交換器と、該一次熱交換器を通過した後の前記燃焼ガスから潜熱を回収し二次受熱管を流通する水を加熱する二次熱交換器と、凍結防止温度を検出する温度検出手段とを備え、前記バーナの上方に前記一次熱交換器を配置し、前記一次熱交換器の上方に前記二次熱交換器を配置した潜熱回収型気化式石油給湯装置であって、該潜熱回収型気化式石油給湯装置を遠隔操作するリモコンの運転スイッチがオフされ、前記潜熱回収型気化式石油給湯装置の運転が停止している時に、前記温度検出手段が前記凍結防止温度を検出した場合は、前記加熱用ヒータをオンするものとした。   In order to solve the above-described problems, the present invention is particularly configured in claim 1 by a vaporization section that includes a heater and vaporizes the fuel oil, and a combustion section that burns the fuel oil vaporized by the vaporization section. A burner, a primary heat exchanger that recovers sensible heat from the combustion gas generated by the combustion of the burner and heats water flowing through the primary heat receiving pipe, and the combustion gas after passing through the primary heat exchanger A secondary heat exchanger that recovers the latent heat and heats the water flowing through the secondary heat receiving pipe; and a temperature detecting means that detects a freezing prevention temperature, and the primary heat exchanger is disposed above the burner, A latent heat recovery vaporization type petroleum hot water supply apparatus in which the secondary heat exchanger is disposed above a primary heat exchanger, wherein an operation switch of a remote control for remotely operating the latent heat recovery type vaporization type petroleum hot water supply apparatus is turned off, Latent heat recovery type vaporized oil water heater When the operation is stopped or when the temperature detecting means detects the antifreeze temperature was assumed to turn on the heater.

この発明の請求項1によれば、潜熱回収型気化式石油給湯装置を遠隔操作するリモコンの運転スイッチがオフされ、潜熱回収型気化式石油給湯装置の運転が停止している時に、温度検出手段が凍結防止温度を検出した場合は、加熱用ヒータをオンすることで、気化部ひいてはバーナが加熱される。そして、このバーナで加熱された空気は上昇し、バーナの上方に位置する一次受熱管および二次受熱管を加熱するので、一次受熱管内に滞留する水および二次受熱管内に滞留する水の凍結防止を確実に行うことができ、一次受熱管および二次受熱管内の水の凍結を防止するための専用の凍結防止用ヒータを設ける必要がなく部品コストを抑えることができると共に、凍結防止用ヒータの組み付け作業を不要とすることができ、さらに、部品故障のリスクを低減させることができるものである。   According to the first aspect of the present invention, when the operation switch of the remote controller for remotely operating the latent heat recovery type vaporization type petroleum hot water supply device is turned off and the operation of the latent heat recovery type vaporization type petroleum hot water supply device is stopped, the temperature detection means However, when the anti-freezing temperature is detected, the heater is turned on to heat the vaporizing section and the burner. The air heated by the burner rises and heats the primary heat receiving pipe and the secondary heat receiving pipe located above the burner, so that the water staying in the primary heat receiving pipe and the water staying in the secondary heat receiving pipe are frozen. Can be reliably prevented, and it is not necessary to provide a dedicated anti-freezing heater for preventing freezing of water in the primary heat receiving pipe and the secondary heat receiving pipe. Assembly work can be eliminated, and the risk of component failure can be reduced.

この発明の一実施形態の潜熱回収型気化式給湯装置を示す概略構成図。BRIEF DESCRIPTION OF THE DRAWINGS The schematic block diagram which shows the latent-heat-recovery type vaporization type hot water supply apparatus of one Embodiment of this invention.

次に、この発明の一実施形態の給湯装置を図1に基づき説明する。
1は本実施形態の潜熱回収型気化式石油給湯装置、2は石油等の燃油を気化するアルミダイキャスト製の気化器で、気化器2底部には気化ガスの流出口3を有しているものである。4は気化器2に備えられ燃油を気化可能な温度まで加熱する加熱用ヒータとしての気化器ヒータ、5は気化器2下部で流出口3と連通し気化器2で気化された気化ガスと一次空気とを予混合するアルミダイキャスト製の混合室、6は混合室5底部に設けられ混合室5を加熱して流出口3から流入してくる気化ガスの液化を防止し気化を促進する加熱用ヒータとしての混合室ヒータで、上述した気化器2と混合室5とで燃油を気化させる気化部7を形成するものである。
Next, a hot water supply apparatus according to an embodiment of the present invention will be described with reference to FIG.
Reference numeral 1 denotes a latent heat recovery type vaporization type oil hot water supply apparatus of the present embodiment, 2 denotes an aluminum die-cast vaporizer that vaporizes fuel such as petroleum, and has a vaporized gas outlet 3 at the bottom of the vaporizer 2. Is. A vaporizer heater 4 is provided in the vaporizer 2 and heats the fuel oil to a temperature at which vaporization can be vaporized. A vaporizer 5 is connected to the outlet 3 at the lower portion of the vaporizer 2 and is vaporized in the vaporizer 2 and primary. An aluminum die-cast mixing chamber 6 for premixing with air is provided at the bottom of the mixing chamber 5 to heat the mixing chamber 5 and prevent liquefaction of the vaporized gas flowing in from the outlet 3 to promote vaporization. A vaporizing section 7 for vaporizing fuel oil is formed by the vaporizer 2 and the mixing chamber 5 described above.

8は気化器2の温度を検出する気化温度センサ、9は混合室5の温度を検出する混合室温度センサ、10は混合室5上部で気化器2の背面側に備えられ、混合室5で予混合された予混合ガスを燃焼させる燃焼部で、この燃焼部10と気化部7とでバーナを構成するものである。また、11は気化器2と一体的に形成され、気化器2背面で燃焼部10上に突出した複数個の吸熱フィンで、燃焼時には燃焼熱を気化熱として気化器2にフィードバックして、気化器ヒータ4の通電量を極力抑えるものである。   8 is a vaporizing temperature sensor for detecting the temperature of the vaporizer 2, 9 is a mixing chamber temperature sensor for detecting the temperature of the mixing chamber 5, and 10 is provided on the back side of the vaporizer 2 above the mixing chamber 5. In the combustion section that burns the premixed premixed gas, the combustion section 10 and the vaporization section 7 constitute a burner. Reference numeral 11 denotes a plurality of endothermic fins that are formed integrally with the carburetor 2 and project on the combustion unit 10 at the back of the carburetor 2. During combustion, the combustion heat is fed back to the carburetor 2 as vaporization heat and vaporized. The energization amount of the heater 4 is suppressed as much as possible.

12は気化器2に燃油を噴霧するノズル、13はノズル12に送油管14を介して燃油を圧送する電磁ポンプ、15は燃焼ファンで、送風路16を介して気化器2の入口および燃焼部10とカバー枠17との間の空気室18とに連通し、吸込口19より吸引した燃焼空気を、気化器2には予混合用の一次空気として供給し、空気室18には気化器2側方を通り混合室5の下方から燃焼部10で燃焼される二次空気として供給するものである。   12 is a nozzle for spraying fuel oil on the vaporizer 2, 13 is an electromagnetic pump for pumping fuel oil to the nozzle 12 via an oil feed pipe 14, 15 is a combustion fan, and an inlet and a combustion section of the vaporizer 2 via an air passage 16. Combustion air that is communicated with the air chamber 18 between the cover 10 and the cover frame 17 and sucked from the suction port 19 is supplied to the carburetor 2 as primary air for premixing, and the carburetor 2 is supplied to the air chamber 18. It is supplied as secondary air that passes through the side and is combusted in the combustion section 10 from below the mixing chamber 5.

20は燃焼室21内に収容された熱交換器で、この熱交換器20は、燃焼部10の燃焼により発生した燃焼ガスから顕熱を回収し一次受熱管22を流通する水を加熱するフィンチューブ式の一次熱交換器23と、一次熱交換器23を通過した後の燃焼ガスから潜熱を回収し二次受熱管24を流通する水を加熱する二次熱交換器25とから構成され、燃焼部10の上方に一次熱交換器23が配置され、一次熱交換器23の上方に二次熱交換器25が配置されているものであり、一次熱交換器23、二次熱交換器25の順に通過した燃焼ガスは排気口26より給湯装置1外に排気されるものである。   20 is a heat exchanger accommodated in the combustion chamber 21, and this heat exchanger 20 collects sensible heat from the combustion gas generated by the combustion of the combustion unit 10 and heats the water flowing through the primary heat receiving pipe 22. It is composed of a tube-type primary heat exchanger 23 and a secondary heat exchanger 25 that recovers latent heat from the combustion gas after passing through the primary heat exchanger 23 and heats water flowing through the secondary heat receiving pipe 24, A primary heat exchanger 23 is disposed above the combustion unit 10, and a secondary heat exchanger 25 is disposed above the primary heat exchanger 23, and the primary heat exchanger 23 and the secondary heat exchanger 25 are disposed. The combustion gas that has passed through in this order is exhausted out of the hot water supply device 1 through the exhaust port 26.

27は燃焼ガス中の水蒸気が二次熱交換器25の二次受熱管24を流通する水と熱交換して露点以下の温度となることにより生成されるドレンを回収するドレン受けで、ドレン受け27は、一次熱交換器23の上方且つ二次熱交換器25の下方に配置されているものであり、ここでは、二次熱交換器25を構成する耐食性を有する筐体(図示せず)の底板がドレン受け27となっているものである。また、28はドレン受け27で回収されたドレンを中和装置29に導くドレン配管である。   27 is a drain receiver that recovers the drain that is generated when the water vapor in the combustion gas exchanges heat with the water flowing through the secondary heat receiving pipe 24 of the secondary heat exchanger 25 to a temperature below the dew point. 27 is disposed above the primary heat exchanger 23 and below the secondary heat exchanger 25, and here, a corrosion-resistant housing (not shown) constituting the secondary heat exchanger 25. The bottom plate is a drain receiver 27. Reference numeral 28 denotes a drain pipe for guiding the drain collected by the drain receiver 27 to the neutralizing device 29.

30は給水源から供給される水を熱交換器20に流通させる給水管、31は熱交換器20で加熱された湯を流通させ、所定箇所に設けられた給湯栓(図示せず)に湯を供給する給湯管、32は給水管30から分岐した給水バイパス管であり、一次受熱管22と二次受熱管24と給水管30と給湯管31と給水バイパス管32とで水が流通する給湯回路を構成するものである。   30 is a water supply pipe for circulating water supplied from a water supply source to the heat exchanger 20, 31 is for circulating hot water heated by the heat exchanger 20, and hot water is supplied to a hot water tap (not shown) provided at a predetermined location. The hot water supply pipe 32 is a water supply bypass pipe branched from the water supply pipe 30, and the hot water supply water flows through the primary heat receiving pipe 22, the secondary heat receiving pipe 24, the water supply pipe 30, the hot water supply pipe 31, and the water supply bypass pipe 32. It constitutes a circuit.

33は給湯管31と給水バイパス管32との接続部に設けられ、給湯管31からの湯と給水バイパス管32からの水とを混合し、その混合比を可変できる混合弁、34は給水管30に設けられ給水温度を検出する温度検出手段としての給水温度センサ、35は給水管30に設けられ流量を検出する流量センサ、36は給湯管31に設けられ熱交換器20で加熱された湯の温度を検出する温度検出手段としての熱交出口温度センサ、37は給湯管31に設けられ混合弁33で混合された湯の温度を検出する温度検出手段としての給湯温度センサである。   A mixing valve 33 is provided at a connection portion between the hot water supply pipe 31 and the water supply bypass pipe 32, mixes hot water from the hot water supply pipe 31 and water from the water supply bypass pipe 32, and varies a mixing ratio thereof. 30 is a water supply temperature sensor serving as a temperature detecting means for detecting the water supply temperature, 35 is a flow sensor for detecting the flow rate provided in the water supply pipe 30, and 36 is a hot water provided in the hot water supply pipe 31 and heated by the heat exchanger 20. Reference numeral 37 denotes a heat exchange outlet temperature sensor as temperature detecting means for detecting the temperature of the hot water, and reference numeral 37 denotes a hot water supply temperature sensor as temperature detecting means for detecting the temperature of the hot water provided in the hot water supply pipe 31 and mixed by the mixing valve 33.

38はマイクロコンピュータを主体として、この潜熱回収型気化式石油給湯装置1の各センサの信号を受け、気化器ヒータ4や混合室ヒータ6や燃焼ファン15等の各アクチュエータの駆動を制御する制御手段である。   38 is a control means for controlling the driving of the actuators such as the vaporizer heater 4, the mixing chamber heater 6 and the combustion fan 15 by receiving signals from the sensors of the latent heat recovery type vaporized petroleum hot water supply apparatus 1 mainly using a microcomputer. It is.

39は前記制御手段38と通信可能に接続され、潜熱回収型気化式石油給湯装置1の遠隔操作を行うリモコンで、リモコン39は潜熱回収型気化式石油給湯装置1の運転のオンオフを指示する運転スイッチ40や、給湯温度を設定するための給湯温度設定スイッチなどからなる操作部41や、潜熱回収型気化式石油給湯装置1の状態や給湯設定温度などを表示する表示部42を備えているものである。   A remote control 39 is communicably connected to the control means 38 and remotely controls the latent heat recovery vaporization type petroleum hot water supply apparatus 1. The remote control 39 is an operation for instructing on / off of the operation of the latent heat recovery type vaporization petroleum hot water supply apparatus 1. An operation unit 41 including a switch 40, a hot water supply temperature setting switch for setting a hot water supply temperature, and a display unit 42 for displaying the state of the latent heat recovery type vaporized petroleum hot water supply device 1 and the hot water supply set temperature. It is.

次に、この一実施形態の潜熱回収型気化式石油給湯装置1の動作について説明する。
前記リモコン39の運転スイッチ40がオンされると、前記制御手段38は、気化温度センサ8の検出する温度に基づき気化器ヒータ4を制御すると共に、混合室温度センサ9の検出する温度に基づき混合室ヒータ6を制御し、気化器2および混合室5の予熱を行い、気化器2が燃油を気化可能な温度、例えば気化器2の温度が220℃〜250℃に維持され、混合室5の温度が125℃〜130℃に維持されるスタンバイ状態となる。このスタンバイ状態では、燃焼要求が発生した場合には素早くバーナを着火でき、必要最低限の温度を維持することでスタンバイ時の消費電力を低減することができるものである。
Next, the operation of the latent heat recovery type vaporized petroleum hot water supply device 1 of this embodiment will be described.
When the operation switch 40 of the remote control 39 is turned on, the control means 38 controls the vaporizer heater 4 based on the temperature detected by the vaporization temperature sensor 8 and mixes based on the temperature detected by the mixing chamber temperature sensor 9. The chamber heater 6 is controlled to preheat the vaporizer 2 and the mixing chamber 5, the temperature at which the vaporizer 2 can vaporize the fuel oil, for example, the temperature of the vaporizer 2 is maintained at 220 ° C. to 250 ° C. It will be in the standby state in which temperature is maintained at 125 to 130 degreeC. In this standby state, when a combustion request is generated, the burner can be ignited quickly, and the power consumption during standby can be reduced by maintaining the necessary minimum temperature.

前記スタンバイ状態において、給湯栓が開栓され、流量センサ35が最低作動流量以上の流量を検出して燃焼要求が発生したと前記制御手段38が判断すると、気化器ヒータ4および混合室ヒータ6を強制的にオンして着火性を良くし、電磁ポンプ13および燃焼ファン15を駆動させて、気化器2で気化された気化ガスと一次空気とを混合室5で予混合し、予混合ガスを燃焼部10より噴出して燃焼を開始させるものである。   In the standby state, when the hot water tap is opened and the flow rate sensor 35 detects a flow rate equal to or higher than the minimum operating flow rate and the control means 38 determines that a combustion request has occurred, the vaporizer heater 4 and the mixing chamber heater 6 are turned on. The ignitability is improved by forcibly turning on, the electromagnetic pump 13 and the combustion fan 15 are driven, the vaporized gas vaporized in the vaporizer 2 and the primary air are premixed in the mixing chamber 5, and the premixed gas is It is ejected from the combustion section 10 to start combustion.

前記バーナの燃焼により発生した燃焼ガスは、一次熱交換器23を流通し、一次熱交換器23を通過した後、二次熱交換器25を流通し、二次熱交換器25を通過した後、排気口26から潜熱回収型気化式石油給湯装置1外へ排出されるものである。また、給水源から供給された水は、給水管30から二次受熱管24に導かれ、二次受熱管24から一次受熱管22へ順に流通して、ここで燃焼ガスとの熱交換により加熱され、そして、一次受熱管22から給湯管31へ導かれ、混合弁33の開度調整によって給湯設定温度に温調された湯が最終的に給湯栓から給湯されるものである。   The combustion gas generated by the combustion of the burner flows through the primary heat exchanger 23, passes through the primary heat exchanger 23, passes through the secondary heat exchanger 25, and passes through the secondary heat exchanger 25. The exhaust gas is discharged from the exhaust port 26 to the outside of the latent heat recovery-type vaporized petroleum water heater 1. Further, the water supplied from the water supply source is led from the water supply pipe 30 to the secondary heat receiving pipe 24 and flows in order from the secondary heat receiving pipe 24 to the primary heat receiving pipe 22 where it is heated by heat exchange with the combustion gas. Then, the hot water led from the primary heat receiving pipe 22 to the hot water supply pipe 31 and adjusted to the hot water supply set temperature by adjusting the opening of the mixing valve 33 is finally supplied from the hot water tap.

この時、二次熱交換器25において、二次受熱管24を流通する水と燃焼ガスとが熱交換され、燃焼ガス中の水蒸気が露点以下となることにより生成されたドレンはドレン受け27で回収され、ドレン配管28を介して、内部に中和剤が充填された中和装置29に流入し、中和装置29内で中和処理された後、中和装置29外に排出され、所定箇所の下水に排水されるものである。   At this time, in the secondary heat exchanger 25, the water flowing through the secondary heat receiving pipe 24 and the combustion gas are subjected to heat exchange, and the drain generated by the water vapor in the combustion gas being below the dew point is the drain receiver 27. It is collected and flows through a drain pipe 28 into a neutralizing device 29 filled with a neutralizing agent, neutralized in the neutralizing device 29, and then discharged to the outside of the neutralizing device 29. It is drained into the sewage.

次に、低温環境下での潜熱回収型気化式石油給湯装置1の状況について説明すると、冬季等で外気温度が低い時であって、リモコン39の運転スイッチ40がオフされて潜熱回収型気化式石油給湯装置1の運転が停止している状態が長時間続いた時、潜熱回収型気化式石油給湯装置1内の温度は潜熱回収型気化式石油給湯装置1外の外気温度に近似し、一次受熱管22、二次受熱管24では水の流通がないため、一次受熱管22内および二次受熱管24内に滞留している水は凍結する可能性がある。   Next, the situation of the latent heat recovery type vaporization type petroleum hot water supply device 1 in a low temperature environment will be described. When the outside air temperature is low in winter or the like, the operation switch 40 of the remote control 39 is turned off and the latent heat recovery type vaporization type is obtained. When the operation of the oil hot water supply device 1 is stopped for a long time, the temperature in the latent heat recovery vaporization type oil hot water supply device 1 approximates to the outside air temperature outside the latent heat recovery type vaporization type oil hot water supply device 1 and is primary. Since there is no circulation of water in the heat receiving pipe 22 and the secondary heat receiving pipe 24, the water staying in the primary heat receiving pipe 22 and the secondary heat receiving pipe 24 may be frozen.

ここで、上記のように、リモコン39の運転スイッチ40がオフされて潜熱回収型気化式石油給湯装置1の運転が停止している時において、熱交出口温度センサ36の検出する温度が、凍結のおそれがある予め設定された凍結防止温度を検出した場合、前記制御手段38は気化器ヒータ4をオンさせる。そうすると、気化器ヒータ4により気化器2が加熱され、気化器2の熱が燃焼部10および吸熱フィン11に伝熱し、燃焼部10および吸熱フィン11を介して効率的に放熱され、その熱によって燃焼部10上の空気が加熱される。この加熱された空気は燃焼室21内へ上昇し、燃焼部10の上方すなわちバーナの上方で燃焼室21内に位置する一次受熱管22および二次受熱管24を加熱するものである。それによって、一次受熱管22内に滞留する水および二次受熱管24内に滞留する水の凍結防止を確実に行うことができ、燃油を気化するための気化器2に備えられた気化器ヒータ4を凍結防止に使用するので、一次受熱管22および二次受熱管24内の水の凍結を防止するための専用の凍結防止用ヒータを設ける必要がなく部品コストを抑えることができると共に、凍結防止用ヒータの組み付け作業を不要とすることができ、さらに、凍結防止用ヒータを設ける必要がないことから部品故障のリスクを低減させることができるものである。   Here, as described above, when the operation switch 40 of the remote control 39 is turned off and the operation of the latent heat recovery vaporization type petroleum hot water supply device 1 is stopped, the temperature detected by the heat exchange outlet temperature sensor 36 is frozen. When the preset anti-freezing temperature is detected, the control means 38 turns on the vaporizer heater 4. Then, the vaporizer 2 is heated by the vaporizer heater 4, the heat of the vaporizer 2 is transferred to the combustion unit 10 and the heat absorption fins 11, and is efficiently dissipated through the combustion unit 10 and the heat absorption fins 11. The air on the combustion unit 10 is heated. The heated air rises into the combustion chamber 21 and heats the primary heat receiving pipe 22 and the secondary heat receiving pipe 24 located in the combustion chamber 21 above the combustion section 10, that is, above the burner. Thereby, it is possible to reliably prevent freezing of the water staying in the primary heat receiving pipe 22 and the water staying in the secondary heat receiving pipe 24, and the vaporizer heater provided in the vaporizer 2 for vaporizing the fuel oil. 4 is used for anti-freezing, so it is not necessary to provide a dedicated anti-freezing heater for preventing freezing of water in the primary heat receiving pipe 22 and the secondary heat receiving pipe 24, and the cost of parts can be reduced. The assembly work of the prevention heater can be made unnecessary, and further, the risk of component failure can be reduced since it is not necessary to provide a freeze prevention heater.

なお、本発明は先に説明した一実施形態に限定されるものではなく、本実施形態では、凍結防止温度を検出する温度検出手段を熱交出口温度センサ36としたが、温度検出手段は、冬季等で外気温度が低く、潜熱回収型気化式石油給湯装置1の運転が停止している時に、一次受熱管22、二次受熱管24内に滞留している水が凍結するおそれがあるか否かを判断するための温度を検出できるものであればよく、熱交出口温度センサ36の代わりに、潜熱回収型気化式石油給湯装置1内の給水温度センサ34や給湯温度センサ37を凍結防止温度を検出する温度検出手段としてもよく、また、潜熱回収型気化式石油給湯装置1内の雰囲気温度を検出する専用の温度センサを設けて、それを凍結防止温度を検出する温度検出手段としてもよいものである。   The present invention is not limited to the above-described embodiment. In this embodiment, the temperature detection means for detecting the antifreezing temperature is the heat exchange outlet temperature sensor 36, but the temperature detection means is Whether the water staying in the primary heat receiving pipe 22 and the secondary heat receiving pipe 24 may freeze when the outside air temperature is low and the operation of the latent heat recovery type vaporized petroleum water heater 1 is stopped in winter or the like What is necessary is just to be able to detect the temperature for judging whether or not, and instead of the heat exchange outlet temperature sensor 36, the water supply temperature sensor 34 and the hot water supply temperature sensor 37 in the latent heat recovery type vaporized hot water supply apparatus 1 are prevented from freezing. The temperature detecting means for detecting the temperature may be used, or a dedicated temperature sensor for detecting the ambient temperature in the latent heat recovery type vaporized petroleum hot water supply apparatus 1 may be provided and used as a temperature detecting means for detecting the anti-freezing temperature. good thing A.

また、本実施形態では、熱交出口温度センサ36の検出する温度が、凍結のおそれがある予め設定された凍結防止温度を検出した場合、気化器ヒータ4をオンするようにしたが、気化器ヒータ4の代わりに混合室ヒータ6をオンするようにしてもよく、そうすることで、混合室ヒータ6により混合室5が加熱され、混合室5内の空気が加熱される。そして、この加熱された空気は混合室5上部の燃焼部10を介して燃焼室21内へ上昇し、燃焼部10の上方すなわちバーナの上方で燃焼室21内に位置する一次受熱管22および二次受熱管24を加熱するものである。それによって、気化器ヒータ4をオンした時と同様に、一次受熱管22内に滞留する水および二次受熱管24内に滞留する水の凍結防止を確実に行うことができ、混合室5底部に備えられた混合室ヒータ6を凍結防止に使用するので、一次受熱管22および二次受熱管24内の水の凍結を防止するための専用の凍結防止用ヒータを設ける必要がなく部品コストを抑えることができると共に、凍結防止用ヒータの組み付け作業を不要とすることができ、さらに、凍結防止用ヒータを設ける必要がないことから部品故障のリスクを低減させることができるものである。   In the present embodiment, the vaporizer heater 4 is turned on when the temperature detected by the heat exchange outlet temperature sensor 36 detects a preset anti-freezing temperature that may cause freezing. The mixing chamber heater 6 may be turned on instead of the heater 4, and by doing so, the mixing chamber 5 is heated by the mixing chamber heater 6 and the air in the mixing chamber 5 is heated. Then, the heated air rises into the combustion chamber 21 through the combustion section 10 at the top of the mixing chamber 5, and the primary heat receiving pipe 22 and the second pipe located in the combustion chamber 21 above the combustion section 10, that is, above the burner. The next heat receiving pipe 24 is heated. As a result, similarly to when the vaporizer heater 4 is turned on, it is possible to reliably prevent freezing of the water staying in the primary heat receiving pipe 22 and the water staying in the secondary heat receiving pipe 24, and the bottom of the mixing chamber 5 Since the mixing chamber heater 6 provided in the above is used for antifreezing, it is not necessary to provide a dedicated antifreezing heater for preventing freezing of the water in the primary heat receiving pipe 22 and the secondary heat receiving pipe 24, thereby reducing the component cost. In addition to being able to suppress, it is possible to eliminate the work of assembling the anti-freezing heater, and further, since it is not necessary to provide the anti-freezing heater, the risk of component failure can be reduced.

1 潜熱回収型気化式石油給湯装置
2 気化器
4 気化器ヒータ
5 混合室
6 混合室ヒータ
7 気化部
10 燃焼部
22 一次受熱管
23 一次熱交換器
24 二次受熱管
25 二次熱交換器
36 熱交出口温度センサ
39 リモコン
40 運転スイッチ
DESCRIPTION OF SYMBOLS 1 Latent heat recovery type vaporization type petroleum hot water supply device 2 Vaporizer 4 Vaporizer heater 5 Mixing chamber 6 Mixing chamber heater 7 Vaporization unit 10 Combustion unit 22 Primary heat receiving pipe 23 Primary heat exchanger 24 Secondary heat receiving pipe 25 Secondary heat exchanger 36 Heat exchange outlet temperature sensor 39 Remote control 40 Operation switch

Claims (1)

加熱用ヒータを備え燃油を気化させる気化部と、この気化部で気化させた燃油を燃焼させる燃焼部とで構成されるバーナと、該バーナの燃焼により発生した燃焼ガスから顕熱を回収し一次受熱管を流通する水を加熱する一次熱交換器と、該一次熱交換器を通過した後の前記燃焼ガスから潜熱を回収し二次受熱管を流通する水を加熱する二次熱交換器と、凍結防止温度を検出する温度検出手段とを備え、前記バーナの上方に前記一次熱交換器を配置し、前記一次熱交換器の上方に前記二次熱交換器を配置した潜熱回収型気化式石油給湯装置であって、該潜熱回収型気化式石油給湯装置を遠隔操作するリモコンの運転スイッチがオフされ、前記潜熱回収型気化式石油給湯装置の運転が停止している時に、前記温度検出手段が前記凍結防止温度を検出した場合は、前記加熱用ヒータをオンするようにしたことを特徴とする潜熱回収型気化式石油給湯装置。   A sensible heat is recovered from the combustion gas generated by combustion of the burner comprising a heater for heating and a vaporizing section for vaporizing the fuel oil, a combustion section for burning the fuel oil vaporized in the vaporization section, and primary A primary heat exchanger that heats water flowing through the heat receiving pipe, and a secondary heat exchanger that recovers latent heat from the combustion gas after passing through the primary heat exchanger and heats the water flowing through the secondary heat receiving pipe. A latent heat recovery type vaporization type comprising: a temperature detection means for detecting an anti-freezing temperature; the primary heat exchanger is disposed above the burner; and the secondary heat exchanger is disposed above the primary heat exchanger. When the operation switch of the remote controller for remotely operating the latent heat recovery type vaporization type petroleum hot water supply device is turned off and the operation of the latent heat recovery type vaporization type petroleum hot water supply device is stopped, the temperature detection means Detects the anti-freezing temperature. If you, latent heat recovery type evaporative oil water heater is characterized in that so as to turn on the heater.
JP2012086281A 2012-04-05 2012-04-05 Latent heat recovery type evaporative water heater Pending JP2013217521A (en)

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JP2016061469A (en) * 2014-09-17 2016-04-25 株式会社コロナ Evaporative oil water heater

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