JP2016153763A - Volume measuring device, endoscope washing and disinfecting device having volume measuring device and volume measuring method - Google Patents

Volume measuring device, endoscope washing and disinfecting device having volume measuring device and volume measuring method Download PDF

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JP2016153763A
JP2016153763A JP2015032102A JP2015032102A JP2016153763A JP 2016153763 A JP2016153763 A JP 2016153763A JP 2015032102 A JP2015032102 A JP 2015032102A JP 2015032102 A JP2015032102 A JP 2015032102A JP 2016153763 A JP2016153763 A JP 2016153763A
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JP6381130B2 (en
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章裕 宮下
Akihiro Miyashita
章裕 宮下
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Olympus Corp
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Abstract

PROBLEM TO BE SOLVED: To provide a volume measuring device capable of more accurately measuring the volume of an object to be measured, an endoscope washing and disinfecting device having the volume measuring device and a volume measuring method.SOLUTION: A volume measuring device 1 includes: a pressure pump 21a for pressurizing a container 3 capable of storing an object 5 to be measured and liquid 34; a pressure sensor 22a for measuring the internal pressure of the object 5 to be measured; a water gauge 32 for detecting the water level of the liquid 34 stored in the container 3; a liquid introduction part 4a; a liquid discharge part 4b; a pressure sensor 22b for measuring the internal pressure of the container 3; and a control part 27. The control part 27 adjusts liquid quantity 34 in the container 3 such that the internal pressure of the object 5 to be measured matches the internal pressure of the container 3 (S2 to S4), and calculates the volume of the object 5 to be measured from the information of the water level of the liquid 34 in the container 3 (S5 to S6).SELECTED DRAWING: Figure 1

Description

本発明は、容積測定装置、容積測定装置を備えた内視鏡洗浄消毒装置及び容積測定方法に関する。   The present invention relates to a volume measuring device, an endoscope cleaning / disinfecting device including the volume measuring device, and a volume measuring method.

従来、気密性を有する被測定物に対し、内部の容積を測定することが行われている。例えば、被測定物の容積の測定方法の一つとして、特開平8−159911号公報には、リークテスタにより、加圧により被測定物を含む閉鎖系の容積を一定量減少させ、容積の減少量と容量減少前後の気体の圧力変化量とを用いて、ボイルの法則に従って、被測定物の容積を求めることが示されている。   Conventionally, measuring the internal volume of an object to be measured having airtightness has been performed. For example, as one method for measuring the volume of an object to be measured, JP-A-8-159911 discloses that a leak tester reduces the volume of a closed system including the object to be measured by a certain amount by pressurization, thereby reducing the volume. It is shown that the volume of the object to be measured is obtained according to Boyle's law using the pressure change amount of the gas before and after the capacity reduction.

特開平8−159911号公報JP-A-8-159911

しかしながら、特開平8−159911号公報に記載の被測定物の容積の測定方法では、被測定物の内部の気体の温度が考慮されていない。気体の温度は、気体の体積及び/又は圧力と関係するため、特開平8−159911号公報に記載の方法では、被測定物の容積を正確に測定できない問題がある。   However, in the method for measuring the volume of an object to be measured described in JP-A-8-159911, the temperature of the gas inside the object to be measured is not taken into consideration. Since the temperature of the gas is related to the volume and / or pressure of the gas, the method described in JP-A-8-159911 has a problem that the volume of the object to be measured cannot be measured accurately.

本発明は、上述の課題を解決するためのものであり、より正確に被測定物の容積を測定することができる容積測定装置、容積測定装置を備えた内視鏡洗浄消毒装置及び容積測定方法を提供することを目的とする。   The present invention is for solving the above-described problems, and is capable of measuring the volume of the object to be measured more accurately, an endoscope cleaning / disinfecting apparatus including the volume measuring apparatus, and a volume measuring method. The purpose is to provide.

本発明の一態様の容積測定装置は、被測定物に連通して前記被測定物に気体を導入することで前記被測定物の内部を加圧する第1加圧部と、前記被測定物の内圧を測定する第1圧力センサと、液体を貯留可能な容器と、前記容器に貯留された前記液体の水位を検知する水位計と、前記容器に前記液体を導入する液体導入部と、前記容器から前記液体を排出する液体排出部と、前記容器に連通し、前記被測定物に導入される前記気体と同じ種類かつ同じ温度の気体を導入することで前記容器の内部を加圧する第2加圧部と、前記容器の内圧を測定する第2圧力センサと、前記第1圧力センサと、前記第2圧力センサとから取得される各内圧の情報に基づき、前記被測定物の内圧と、前記容器の内圧とが一致するように、前記液体導入部と前記液体排出部とを制御して前記容器の内部の液体量を調整する液体調整部と、前記液体調整部によって前記液体量が調整された前記容器の前記液体の前記水位の情報から前記被測定物の容積を算出する容積算出部と、を含む。   A volume measuring apparatus according to an aspect of the present invention includes a first pressurizing unit that pressurizes the inside of the measurement object by introducing gas into the measurement object in communication with the measurement object, A first pressure sensor for measuring an internal pressure; a container capable of storing a liquid; a water level meter for detecting a water level of the liquid stored in the container; a liquid introducing unit for introducing the liquid into the container; and the container A liquid discharger that discharges the liquid from the container, and a second controller that communicates with the container and pressurizes the interior of the container by introducing a gas of the same type and temperature as the gas introduced to the object to be measured. A pressure part, a second pressure sensor for measuring the internal pressure of the container, the first pressure sensor, and an internal pressure of the object to be measured based on information of each internal pressure acquired from the second pressure sensor; The liquid introduction part and the liquid so that the internal pressure of the container matches. A liquid adjustment unit that controls the discharge unit to adjust the amount of liquid inside the container; and the information on the water level of the liquid in the container in which the liquid amount is adjusted by the liquid adjustment unit. A volume calculation unit that calculates the volume.

本発明の一態様の容積測定装置を備えた内視鏡洗浄消毒装置は、被測定物に連通して前記被測定物に気体を導入することで前記被測定物の内部を加圧する第1加圧部と、前記被測定物の内圧を測定する第1圧力センサと、液体を貯留可能な容器と、前記容器に貯留された前記液体の水位を検知する水位計と、前記容器に前記液体を導入する液体導入部と、前記容器から前記液体を排出する液体排出部と、前記容器に連通し、前記被測定物に導入される前記気体と同じ種類かつ同じ温度の気体を導入することで前記容器の内部を加圧する第2加圧部と、前記容器の内圧を測定する第2圧力センサと、前記第1圧力センサと、前記第2圧力センサとから取得される各内圧の情報に基づき、前記被測定物の内圧と、前記容器の内圧とが一致するように、前記液体導入部と前記液体排出部とを制御して前記容器の内部の液体量を調整する液体調整部と、前記液体調整部によって前記液体量が調整された前記容器の前記液体の前記水位の情報から前記被測定物の容積を算出する容積算出部と、を含む。   An endoscope cleaning / disinfecting apparatus provided with a volume measuring device according to an aspect of the present invention is configured to communicate with a measurement object and introduce a gas into the measurement object to pressurize the inside of the measurement object. A pressure part, a first pressure sensor for measuring the internal pressure of the object to be measured, a container capable of storing liquid, a water level meter for detecting the water level of the liquid stored in the container, and the liquid in the container Introducing a liquid of the same type and the same temperature as the gas introduced into the object to be measured, the liquid introducing part to be introduced, the liquid discharging part for discharging the liquid from the container, and the container. Based on the information of each internal pressure acquired from the 2nd pressurization part which pressurizes the inside of a container, the 2nd pressure sensor which measures the internal pressure of the container, the 1st pressure sensor, and the 2nd pressure sensor, The internal pressure of the object to be measured is matched with the internal pressure of the container A liquid adjusting unit that controls the liquid introducing unit and the liquid discharging unit to adjust the amount of liquid inside the container; and the water level of the liquid in the container in which the liquid amount is adjusted by the liquid adjusting unit A volume calculation unit that calculates the volume of the object to be measured from the information.

本発明の一態様の容積測定方法は、被測定物に連通して前記被測定物に気体を導入することで前記被測定物の内部を加圧し、液体を貯留可能な容器に前記液体を貯留し、前記容器に連通し、前記被測定物に導入される前記気体と同じ種類かつ同じ温度の気体を導入することで前記容器の内部を加圧し、加圧された前記被測定物の内圧を測定し、加圧された前記容器の内圧を測定し、測定された前記被測定物の内圧と、測定された前記容器の内圧との情報に基づき、前記被測定物の内圧と、前記容器の内圧とが一致するように、前記容器内の液体量を調整し、前記液体量が調整された前記液体の水位の情報に基づいて、前記被測定物の容積を算出する。   In the volume measuring method of one embodiment of the present invention, the inside of the measurement object is pressurized by introducing gas into the measurement object through communication with the measurement object, and the liquid is stored in a container capable of storing the liquid. Then, the inside of the container is pressurized by introducing a gas of the same type and the same temperature as the gas introduced into the object to be measured, and the internal pressure of the pressurized object to be measured is reduced. Measure and measure the internal pressure of the pressurized container, and based on the information of the measured internal pressure of the measured object and the measured internal pressure of the container, the internal pressure of the measured object, The amount of liquid in the container is adjusted so that the internal pressure matches, and the volume of the object to be measured is calculated based on the information on the water level of the liquid in which the amount of liquid is adjusted.

本発明によれば、より正確に被測定物の容積を測定することができる容積測定装置及び容積測定装置を備えた内視鏡洗浄消毒装置を提供することができる。   ADVANTAGE OF THE INVENTION According to this invention, the endoscope washing | cleaning disinfection apparatus provided with the volume measuring apparatus and volume measuring apparatus which can measure the volume of a to-be-measured object more correctly can be provided.

本発明の実施の形態に係る容積測定装置の構成図である。It is a lineblock diagram of the volume measuring device concerning an embodiment of the invention. 本発明の実施の形態に係る水位計の模式図である。It is a schematic diagram of the water level meter which concerns on embodiment of this invention. 本発明の実施の形態に係る加圧ポンプを2つ有する容積測定装置の構成図である。It is a lineblock diagram of the volume measuring device which has two pressurization pumps concerning an embodiment of the invention. 本発明の実施の形態に係る容積測定装置の処理の流れを示すフローチャートである。It is a flowchart which shows the flow of a process of the volume measuring apparatus which concerns on embodiment of this invention. 本発明の実施の形態に係る被測定物とマスター容器の内部の気体と圧力の関係を説明する説明図である。It is explanatory drawing explaining the relationship between the to-be-measured object which concerns on embodiment of this invention, the gas inside a master container, and a pressure. 本発明の実施の形態に係る被測定物とマスター容器の内部の気体と圧力の関係を説明する説明図である。It is explanatory drawing explaining the relationship between the to-be-measured object which concerns on embodiment of this invention, the gas inside a master container, and a pressure. 本発明の実施の形態に係る被測定物とマスター容器の内部の気体と圧力の関係を説明する説明図である。It is explanatory drawing explaining the relationship between the to-be-measured object which concerns on embodiment of this invention, the gas inside a master container, and a pressure. 本発明の実施の形態に係る容積測定装置を備えた内視鏡洗浄消毒装置の構成図である。1 is a configuration diagram of an endoscope cleaning / disinfecting apparatus provided with a volume measuring apparatus according to an embodiment of the present invention. FIG.

以下、図面を参照しながら本発明の実施の形態を説明する。   Hereinafter, embodiments of the present invention will be described with reference to the drawings.

(構成)
図1は、本発明の実施の形態に係る容積測定装置の構成図である。図1に示すように、本実施の形態に係る容積測定装置1は、容積測定装置本体2(以下、「装置本体2」という。)と、装置本体2に接続される液体を貯留可能なマスター容器3と、マスター容器3に接続される給排水ポンプ装置4とを有して構成される。装置本体2には、さらに、測定対象となる被測定物5が接続される。
(Constitution)
FIG. 1 is a configuration diagram of a volume measuring apparatus according to an embodiment of the present invention. As shown in FIG. 1, a volume measuring device 1 according to the present embodiment includes a volume measuring device main body 2 (hereinafter referred to as “device main body 2”) and a master capable of storing a liquid connected to the device main body 2. A container 3 and a water supply / drainage pump device 4 connected to the master container 3 are provided. A device under test 5 to be measured is further connected to the apparatus main body 2.

装置本体2には、被測定物5に連通して被測定物5に気体を所定量だけ導入することで被測定物5の内部を加圧する加圧部として、加圧ポンプ21aと、分岐管路25bを介して接続される締切弁23aとが設けられている。続いて、締切弁23aは、分岐管路25cを介して接続ポート24aと接続され、分岐管路25cには被測定物の内圧を測定する圧力センサ22aが接続されている。   The apparatus main body 2 includes a pressurizing pump 21a and a branch pipe as a pressurizing unit that pressurizes the inside of the measured object 5 by introducing a predetermined amount of gas into the measured object 5 in communication with the measured object 5. A cutoff valve 23a connected via the passage 25b is provided. Subsequently, the cutoff valve 23a is connected to the connection port 24a via the branch pipe 25c, and a pressure sensor 22a for measuring the internal pressure of the object to be measured is connected to the branch pipe 25c.

また、装置本体2には、被測定物5に導入した気体と同じ種類及び同じ温度の気体を同じ量だけ導入することでマスター容器3の内部を加圧する加圧部として、加圧ポンプ21aと、分岐管路25bを介して接続される締切弁23bとが設けられている。続いて、締切弁23bは、分岐管路25dを介して接続ポート24bと接続され、分岐管路25dにはマスター容器3の内圧を測定する圧力センサ22bが接続されている。ただし、圧力センサの配置位置は分岐管路25dに限定されず、例えばマスター容器3に配置してもよい。   In addition, as a pressurizing unit that pressurizes the inside of the master container 3 by introducing the same amount and the same amount of gas as the gas introduced into the measurement object 5 into the apparatus main body 2, a pressurizing pump 21 a And a cutoff valve 23b connected via the branch pipe 25b. Subsequently, the cutoff valve 23b is connected to the connection port 24b via the branch pipe 25d, and a pressure sensor 22b for measuring the internal pressure of the master container 3 is connected to the branch pipe 25d. However, the arrangement position of the pressure sensor is not limited to the branch pipeline 25d, and may be arranged in the master container 3, for example.

加圧ポンプ21aの一端は、管路25aを介して大気に開放される。   One end of the pressurizing pump 21a is opened to the atmosphere via the pipe line 25a.

以上のような構成により、加圧ポンプ21aは、大気から取り込まれた気体を所定量だけ被測定物5に導入することにより被測定物5の内部を加圧可能であり、また、被測定物5内に導入した気体と同じ種類及び同じ温度の気体を同じ量だけ導入することによりマスター容器3の内部を加圧可能である。   With the above-described configuration, the pressurizing pump 21a can pressurize the inside of the measurement object 5 by introducing a predetermined amount of gas taken from the atmosphere into the measurement object 5, and the measurement object The inside of the master container 3 can be pressurized by introducing the same amount and the same amount of gas of the same type and temperature as that of the gas introduced into the vessel 5.

装置本体2には、排気弁26aが設けられ、一端が分岐管路25bに接続され、他端が管路25eを介して大気に開放されている。   The apparatus main body 2 is provided with an exhaust valve 26a, one end is connected to the branch pipe 25b, and the other end is opened to the atmosphere via the pipe 25e.

なお、被測定物5の内部及びマスター容器3の内部を加圧する加圧部は、加圧ポンプ等を含む構成であれば良く、本実施の形態の構成に限定されるものではない。   In addition, the pressurization part which pressurizes the inside of the to-be-measured object 5 and the inside of the master container 3 should just be a structure containing a pressurization pump etc., and is not limited to the structure of this Embodiment.

装置本体2には、中央処理装置(CPU)28と図示しない記憶部(ROM、RAM)等を含んで構成される制御部27が設けられている。制御部27は、加圧ポンプ21aと、2つの圧力センサ22a、22bと、2つの締切弁23a、23bと、排気弁26aと、マスター容器3の水位計32(後述)と、マスター容器3に接続された液体導入部4aと液体排出部4bを有する給排水ポンプ装置4とに電気的に接続されている。制御部27は、信号の送受信により、加圧ポンプ21a、締切弁23a、23b及び排気弁26aの動作を制御可能である。   The apparatus main body 2 is provided with a control unit 27 including a central processing unit (CPU) 28 and a storage unit (ROM, RAM) (not shown). The control unit 27 includes a pressurizing pump 21a, two pressure sensors 22a and 22b, two shutoff valves 23a and 23b, an exhaust valve 26a, a water level gauge 32 (described later) of the master container 3, and a master container 3. It is electrically connected to the water supply / drainage pump device 4 having the connected liquid introduction part 4a and liquid discharge part 4b. The control unit 27 can control the operations of the pressurization pump 21a, the cutoff valves 23a and 23b, and the exhaust valve 26a by transmitting and receiving signals.

制御部27は、液体調整部27aと容積算出部27bを含む。制御部27は、信号の送受信により、圧力センサ22aから被測定物5の内圧の情報を測定結果として取得することが可能であり、圧力センサ22bからマスター容器3の内圧の情報を測定結果として取得することが可能であり、水位計32からマスター容器内の液体34の水位の情報を取得可能である。被測定物5の内圧の情報と、マスター容器3の内圧の情報は、液体調整部27aにおいて利用され、水位の情報は、容積算出部27bにおいて利用される。   The control unit 27 includes a liquid adjustment unit 27a and a volume calculation unit 27b. The control unit 27 can acquire information on the internal pressure of the object to be measured 5 from the pressure sensor 22a as a measurement result by transmitting and receiving signals, and acquire information on the internal pressure of the master container 3 from the pressure sensor 22b as a measurement result. The water level information of the liquid 34 in the master container can be acquired from the water level meter 32. Information on the internal pressure of the object to be measured 5 and information on the internal pressure of the master container 3 are used in the liquid adjusting unit 27a, and information on the water level is used in the volume calculating unit 27b.

液体調整部27aは、マスター容器3の液体34の貯留量を調整する処理部であり、ここでは、制御部27のCPU28等により構成される。液体調整部27aは、給排水ポンプ装置4に、駆動信号を送信して液体導入部4aと液体排出部4bの動作を制御することにより、マスター容器3の液体34の給水又は排水を行って、マスター容器3内の液体34の量を調整可能である。   The liquid adjusting unit 27 a is a processing unit that adjusts the amount of liquid 34 stored in the master container 3, and here is configured by the CPU 28 of the control unit 27 and the like. The liquid adjustment unit 27a transmits or drives a drive signal to the water supply / drainage pump device 4 to control the operation of the liquid introduction unit 4a and the liquid discharge unit 4b, thereby supplying or draining the liquid 34 in the master container 3 to obtain a master. The amount of the liquid 34 in the container 3 can be adjusted.

液体調整部27aは、圧力センサ22aと圧力センサ22bで測定された各内圧の情報から、得られた2つの内圧の状態が一致状態又は不一致状態にあるかどうかの判定を行う。   The liquid adjusting unit 27a determines whether or not the two obtained internal pressure states are in a coincidence state or a disagreement state from information on the internal pressures measured by the pressure sensor 22a and the pressure sensor 22b.

容積算出部27bは、被測定物5の内部空間の容積(以下、被測定物の容積という)を算出する処理部であり、ここでは、制御部27のCPU28等により構成される。容積算出部27bは、水位計32で測定されたマスター容器3の水位の情報から被測定物5の内部空間の容積を算出する。   The volume calculation unit 27b is a processing unit that calculates the volume of the internal space of the object to be measured 5 (hereinafter referred to as the volume of the object to be measured), and is configured by the CPU 28 of the control unit 27 and the like here. The volume calculation unit 27 b calculates the volume of the internal space of the DUT 5 from the water level information of the master container 3 measured by the water level gauge 32.

制御部27には、各種指示が与えられる操作部27cが接続されている。操作部27cは、例えば操作パネルである。   An operation unit 27c to which various instructions are given is connected to the control unit 27. The operation unit 27c is, for example, an operation panel.

制御部27には、各種情報を表示する表示部27dが接続されている。表示部27dには、圧力センサ22aにおいて測定される被測定物5の内圧と、圧力センサ22bで測定されるマスター容器3の内圧と、被測定物5の内圧とマスター容器3の内圧の一致状態又は不一致状態の判定結果と、被測定物5の容積の算出結果等が表示される。   The control unit 27 is connected to a display unit 27d that displays various types of information. On the display unit 27d, the internal pressure of the object to be measured 5 measured by the pressure sensor 22a, the internal pressure of the master container 3 measured by the pressure sensor 22b, and the coincidence state of the internal pressure of the object to be measured 5 and the internal pressure of the master container 3 are displayed. Alternatively, the determination result of the inconsistency state, the calculation result of the volume of the object to be measured 5 and the like are displayed.

マスター容器3は、容器本体31と、マスター容器3に貯留された液体34の水位を検知する水位計32とを有する。   The master container 3 includes a container main body 31 and a water level meter 32 that detects the water level of the liquid 34 stored in the master container 3.

容器本体31は、外部管路33aを介して装置本体2の接続ポート24bに接続される。また、容器本体31は、給水管33bを介して給排水ポンプ装置4の液体導入部4aに接続され、また、排水管33cを介して給排水ポンプ装置4の液体排出部4bに接続される。   The container main body 31 is connected to the connection port 24b of the apparatus main body 2 via the external conduit 33a. Moreover, the container main body 31 is connected to the liquid introduction part 4a of the water supply / drainage pump device 4 via the water supply pipe 33b, and is connected to the liquid discharge part 4b of the water supply / drainage pump apparatus 4 via the drainage pipe 33c.

容器本体31は、例えば、樹脂や金属等の材質で構成され、水等の液体34を貯留可能な気密性のある容器として構成される。容器本体31の形状は、例えば、四角形筒状や円筒状等である。   The container body 31 is made of a material such as resin or metal, and is configured as an airtight container capable of storing a liquid 34 such as water. The shape of the container body 31 is, for example, a quadrangular cylinder or a cylinder.

図2は、本発明の実施の形態に係る水位計の模式図である。水位計32は、例えば、液体34に浮かぶリング状のフロート32aと、リング状のフロート32aの中心孔32bに挿通されるステム32cとを有して構成される。フロート32aには、磁石等により構成されたスイッチ切替部36が設けられている。また、ステム32cには、リードスイッチ等により構成された複数のスイッチ37が上下方向に沿って配設されている。各スイッチ37は、スイッチ切替部36から発せられる電界、磁界又は電磁的信号に応じてオン状態又はオフ状態に切り替わる。   FIG. 2 is a schematic diagram of a water level meter according to an embodiment of the present invention. The water level gauge 32 includes, for example, a ring-shaped float 32a floating in the liquid 34, and a stem 32c inserted through a center hole 32b of the ring-shaped float 32a. The float 32a is provided with a switch switching unit 36 composed of a magnet or the like. In addition, a plurality of switches 37 constituted by reed switches or the like are arranged on the stem 32c along the vertical direction. Each switch 37 is switched to an on state or an off state in accordance with an electric field, a magnetic field, or an electromagnetic signal generated from the switch switching unit 36.

なお、図2においては、スイッチ37は、37a、37b、37c、37d、37e、37f、37gの7つとして示されているが、スイッチは、7つに限定されるものではない。また、以下、いずれか一つのスイッチ、あるいは7つのスイッチを示すときには、スイッチ37という。   In FIG. 2, the switch 37 is shown as seven switches 37a, 37b, 37c, 37d, 37e, 37f, and 37g, but the number of switches is not limited to seven. Hereinafter, any one switch or seven switches will be referred to as a switch 37.

このような構成によれば、スイッチ切替部36は、フロート32aと共に、液体34の水位に合わせてステム32cに沿って上下に移動する。スイッチ切替部36は、上下に移動した結果、例えば、図2の場合、近接しているスイッチ37bに対して所定強度以上の磁界を印加し、スイッチ37bをオン状態にする。このとき、スイッチ切替部36は、離隔している他の各スイッチ37a、37c、37d、37e、37f、37gに対して所定強度未満の磁界を印加することになるので、他のスイッチ37a、37c、37d、37e、37f、37gは、オフ状態となる。水位計32は、オン状態とされたスイッチ37の情報を含む信号を、水位の情報として、接続ポート24cを介して制御部27に供給する。図2においては、スイッチ37bがオン状態とされているので、水位計32は、スイッチ37bがオン状態の情報を含む信号を、水位の情報として、接続ポート24cを介して制御部27に供給する。
ただし、本発明に適用される水位センサは上述のフロートセンサに限定されず、例えば、検知水位の異なる複数の電極式のセンサを併用したものを水位センサとすることもできる。
According to such a configuration, the switch switching unit 36 moves up and down along the stem 32c in accordance with the water level of the liquid 34 together with the float 32a. As a result of moving up and down, for example, in the case of FIG. 2, the switch switching unit 36 applies a magnetic field having a predetermined strength or more to the adjacent switch 37 b to turn on the switch 37 b. At this time, the switch switching unit 36 applies a magnetic field of less than a predetermined strength to the other separated switches 37a, 37c, 37d, 37e, 37f, and 37g, and therefore the other switches 37a and 37c. , 37d, 37e, 37f, and 37g are turned off. The water level gauge 32 supplies a signal including information on the switch 37 that is turned on to the control unit 27 through the connection port 24c as information on the water level. In FIG. 2, since the switch 37b is turned on, the water level gauge 32 supplies a signal including information on the switch 37b to the control unit 27 via the connection port 24c as information on the water level. .
However, the water level sensor applied to the present invention is not limited to the above-described float sensor. For example, a water level sensor may be a combination of a plurality of electrode type sensors having different detection water levels.

図1に戻り、給排水ポンプ装置4は、マスター容器3に液体34を導入する液体導入部4aと、マスター容器3から液体を排出する液体排出部4bとを有する。給排水ポンプ装置4の液体導入部4aは、液体排出部4bから回収された液体及び図示しない水道などの給水口からの液体を、給水管33bを介して容器本体31に供給する。給排水ポンプ装置4の液体排出部4bは、容器本体31の液体34を、排水管33cを介して回収し、図示しない排水口から排出する。また、給排水ポンプ装置4は、接続ポート24cを介して制御部27に電気的に接続され、制御部27が有する液体調整部27aによって給排水の制御が可能とされ、マスター容器3内の液体34の貯留量を調整可能としている。   Returning to FIG. 1, the water supply / drainage pump device 4 includes a liquid introduction part 4 a for introducing the liquid 34 into the master container 3 and a liquid discharge part 4 b for discharging the liquid from the master container 3. The liquid introduction part 4a of the water supply / drainage pump device 4 supplies the liquid collected from the liquid discharge part 4b and the liquid from a water supply port such as a water tap (not shown) to the container body 31 via the water supply pipe 33b. The liquid discharge part 4b of the water supply / drainage pump device 4 collects the liquid 34 in the container main body 31 through the drain pipe 33c and discharges it from a drain outlet (not shown). In addition, the water supply / drainage pump device 4 is electrically connected to the control unit 27 via the connection port 24c, and the water supply / drainage control is enabled by the liquid adjusting unit 27a included in the control unit 27, and the liquid 34 in the master container 3 is controlled. The storage volume can be adjusted.

被測定物5には、口金51が設けられている。被測定物5は、口金51に接続された外部管路52を介し、装置本体2の接続ポート24aに接続される。   A base 51 is provided on the DUT 5. The DUT 5 is connected to the connection port 24 a of the apparatus main body 2 via the external pipe line 52 connected to the base 51.

なお、図1の場合、被測定物5を加圧する加圧部と、マスター容器3を加圧する加圧部とは、共通する一つの加圧ポンプ21aを有して構成するものであるが、分岐管路25bから締切弁23aを介して被測定物5内を加圧するための加圧ポンプと、分岐管路25bから締切弁23bを介して容器本体31内を加圧するための加圧ポンプとを別個にしてもよい。   In the case of FIG. 1, the pressurizing unit that pressurizes the object to be measured 5 and the pressurizing unit that pressurizes the master container 3 have a single pressurizing pump 21 a in common. A pressurizing pump for pressurizing the object to be measured 5 from the branch line 25b through the shutoff valve 23a, and a pressurizing pump for pressurizing the inside of the container body 31 from the branch pipe 25b through the shutoff valve 23b May be separated.

図3は、本発明の実施の形態に係る加圧ポンプを2つ有する容積測定装置の構成図である。図3に示す容積測定装置1aは、容積測定装置本体2a(以下、「装置本体2a」という。)に設けられた2つの加圧ポンプ21b、21cを有し、加圧ポンプ21bにより、被測定物5に大気から取り込まれた気体を所定量だけ導入することで被測定物5の内部を加圧可能であり、加圧ポンプ21cにより、被測定物5に導入した気体と同じ種類及び同じ温度の大気から取り込まれた気体を同じ量だけ導入することでマスター容器3の内部を加圧可能である。加圧ポンプ21bと21cは、それぞれの一端が管路25aを介して大気に開放される。   FIG. 3 is a configuration diagram of a volume measuring device having two pressurizing pumps according to the embodiment of the present invention. A volume measuring device 1a shown in FIG. 3 has two pressurizing pumps 21b and 21c provided in a volume measuring device main body 2a (hereinafter, referred to as “device main body 2a”), and is measured by the pressurizing pump 21b. The inside of the object to be measured 5 can be pressurized by introducing a predetermined amount of gas taken from the atmosphere into the object 5, and the same type and the same temperature as the gas introduced into the object to be measured 5 by the pressurizing pump 21c. The inside of the master container 3 can be pressurized by introducing the same amount of gas taken in from the atmosphere. One end of each of the pressurizing pumps 21b and 21c is opened to the atmosphere via the conduit 25a.

すなわち、装置本体2aには、被測定物5に連通して被測定物5に所定量だけ気体を導入することにより被測定物5を加圧する加圧部として、加圧ポンプ21bと、分岐管路25bを介して接続される締切弁23aとが設けられている。   That is, the apparatus main body 2a includes a pressurizing pump 21b and a branch pipe as a pressurizing unit that pressurizes the device under test 5 by introducing a predetermined amount of gas into the device under test 5 in communication with the device under test 5. A cutoff valve 23a connected via the passage 25b is provided.

装置本体2aには、被測定物5に導入した気体と同じ種類及び同じ温度の気体を同じ量だけ導入することによりマスター容器3の内部を加圧する加圧部として、加圧ポンプ21cと、分岐管路25fを介して接続される締切弁23bとが設けられている。   A pressure pump 21c and a branch are provided in the apparatus main body 2a as a pressurizing unit that pressurizes the inside of the master container 3 by introducing the same amount and the same amount of gas as the gas introduced into the object 5 to be measured. A cutoff valve 23b connected via a pipe line 25f is provided.

装置本体2aには、排気弁26bが設けられ、一端が分岐管路25bに接続され、他端が管路25eを介して大気に開放されている。また、装置本体2aには、排気弁26cが設けられ、一端が分岐管路25fに接続され、他端が管路25eを介して大気に開放されている。   The apparatus main body 2a is provided with an exhaust valve 26b, one end is connected to the branch pipe 25b, and the other end is opened to the atmosphere via the pipe 25e. Further, the apparatus main body 2a is provided with an exhaust valve 26c, one end is connected to the branch pipe 25f, and the other end is opened to the atmosphere via the pipe 25e.

制御部27は、加圧ポンプ21b、21cと排気弁26b、26cとに電気的に接続され、信号の送受信により加圧ポンプ21b、21cと排気弁26b、26cの動作を制御可能となっている。   The control unit 27 is electrically connected to the pressurizing pumps 21b and 21c and the exhaust valves 26b and 26c, and can control operations of the pressurizing pumps 21b and 21c and the exhaust valves 26b and 26c by transmitting and receiving signals. .

図3に示すような2つの加圧ポンプを有した構成によれば、加圧ポンプ21bは、被測定物5に連通可能であり、加圧ポンプ21cは、マスター容器3に連通可能であり、加圧ポンプ21bと21cは、それぞれ被測定物5とマスター容器3とを別体の加圧ポンプで同時に加圧可能となるので、被測定物5の容積の測定時間の短縮が可能となる。
(作用)
図4は、発明の実施の形態に係る容積測定装置の処理の流れを示すフローチャートである。なお、以下の説明は、図1の容積測定装置1の構成を参照して行う。
According to the configuration having two pressurizing pumps as shown in FIG. 3, the pressurizing pump 21b can communicate with the object to be measured 5, and the pressurizing pump 21c can communicate with the master container 3. Since the pressurizing pumps 21b and 21c can pressurize the object to be measured 5 and the master container 3 simultaneously with separate pressurization pumps, the measurement time of the volume of the object to be measured 5 can be shortened.
(Function)
FIG. 4 is a flowchart showing a process flow of the volume measuring apparatus according to the embodiment of the invention. The following description will be given with reference to the configuration of the volume measuring apparatus 1 in FIG.

容積測定装置1の使用者(以下、「使用者」という)が、操作部27cから測定開始の指示を入力すると、制御部27のCPU28は、図示しないROM等の記憶部に予め記録されたプログラムを読み出してRAMに展開し、図4のフローチャートで示された処理の実行を開始する。   When a user of the volume measuring apparatus 1 (hereinafter referred to as “user”) inputs a measurement start instruction from the operation unit 27c, the CPU 28 of the control unit 27 stores a program recorded in advance in a storage unit such as a ROM (not shown). Is expanded in the RAM, and the execution of the processing shown in the flowchart of FIG. 4 is started.

なお、容積測定開始時におけるマスター容器3の液体34の初期貯留量と、被測定物5に対して導入する気体の所定量は、ROM等のメモリに予め記憶されて設定されているようにしてもよい。また、液体調整部27aは、使用者により、操作部27cを操作して入力された被測定物5の識別情報に基づき、マスター容器3内の液体の初期貯留量と、被測定物5に導入する気体の所定量が決定可能とされてもよい。   The initial storage amount of the liquid 34 in the master container 3 and the predetermined amount of gas introduced into the object to be measured 5 at the start of volume measurement are set in advance in a memory such as a ROM. Also good. In addition, the liquid adjustment unit 27a is introduced into the device under test 5 and the initial storage amount of the liquid in the master container 3 based on the identification information of the device under test 5 input by operating the operation unit 27c by the user. A predetermined amount of gas to be performed may be determined.

制御部27は、被測定物5内を大気に開放した後、被測定物5内を気密状態にして、所定量の気体を、被測定物5内に導入する(ステップ(以下Sと略す)1)。   The control unit 27 opens the object to be measured 5 to the atmosphere, then places the object to be measured 5 in an airtight state, and introduces a predetermined amount of gas into the object to be measured 5 (step (hereinafter abbreviated as S)). 1).

具体的には、制御部27は、締切弁23aと、排気弁26aに対して弁を開状態にする信号を送信し、締切弁23aと、排気弁26aを開状態にする。その結果、装置本体2に接続された被測定物5内は、大気に開放され、大気圧になる。   Specifically, the control unit 27 transmits a signal for opening the valve to the cutoff valve 23a and the exhaust valve 26a, and opens the cutoff valve 23a and the exhaust valve 26a. As a result, the inside of the device under test 5 connected to the apparatus main body 2 is opened to the atmosphere and becomes atmospheric pressure.

その後、制御部27は、締切弁23bと排気弁26aに対して弁を閉状態にする信号を送信し、締切弁23bと排気弁26aとを閉状態にし、加圧ポンプ21aと被測定物5が連通状態において、被測定物5内を気密状態にする。   Thereafter, the control unit 27 transmits a signal for closing the shutoff valve 23b and the exhaust valve 26a to the shutoff valve 23b and the exhaust valve 26a, and closes the shutoff valve 23b and the exhaust valve 26a. In the communication state, the object to be measured 5 is made airtight.

制御部27は、加圧ポンプ21aに対して駆動信号を送信し、加圧ポンプ21aを駆動し、被測定物5に対して所定量の気体(ここでは空気)を導入する。   The control unit 27 transmits a drive signal to the pressurizing pump 21 a, drives the pressurizing pump 21 a, and introduces a predetermined amount of gas (air here) to the object to be measured 5.

制御部27は、締切弁23aに対して弁を閉状態にする信号を送信し、締切弁23aを閉状態にし、加圧ポンプ21aと被測定物5とを非連通状態とする。   The control unit 27 transmits a signal for closing the valve to the cutoff valve 23a, closes the cutoff valve 23a, and puts the pressurizing pump 21a and the DUT 5 into a non-communication state.

続いて、液体調整部27aは、マスター容器3内が加圧される前に、マスター容器3内の液体量を調整し、その後、加圧ポンプ21aは、マスター容器3内を気密状態にして、上述した被測定物5内に導入した気体と、同じ温度、同じ種類、かつ同じ量の気体をマスター容器3内に導入する(S2)。貯留される液体34の量は、予め決まっており、ここでは、初回と、2回目以降で異なっている。   Subsequently, the liquid adjusting unit 27a adjusts the amount of liquid in the master container 3 before the inside of the master container 3 is pressurized, and then the pressurizing pump 21a makes the inside of the master container 3 airtight, The same temperature, the same kind, and the same amount of gas as the gas introduced into the measurement object 5 described above are introduced into the master container 3 (S2). The amount of the liquid 34 to be stored is determined in advance, and is different here between the first time and the second time.

具体的には、制御部27は、締切弁23bと排気弁26aに対して弁を開状態にする信号を送信し、締切弁23bと排気弁26aとを開状態にする。その結果、装置本体2に接続されたマスター容器3は、大気に開放され、大気圧になる。   Specifically, the control unit 27 transmits a signal for opening the valve to the cutoff valve 23b and the exhaust valve 26a, thereby opening the cutoff valve 23b and the exhaust valve 26a. As a result, the master container 3 connected to the apparatus main body 2 is opened to the atmosphere and becomes atmospheric pressure.

初回については、液体調整部27aは、給排水ポンプ装置4に対して駆動信号を送信し、給排水ポンプ装置4を駆動させて給水又は排水を行い、マスター容器3に初期値として設定された初期貯留量の液体34(ここでは水)を貯留する。   About the first time, the liquid adjustment part 27a transmits a drive signal with respect to the water supply / drainage pump apparatus 4, drives the water supply / drainage pump apparatus 4, performs water supply or drainage, and the initial storage amount set to the master container 3 as an initial value The liquid 34 (water here) is stored.

2回目以降については、液体調整部27aは、マスター容器3内の液体34の貯留量を、後述するS3において判定された被測定物5の内圧とマスター容器3の内圧の差に応じて決定する。例えば、S3において比較された結果、被測定物5の内圧がマスター容器3の内圧よりも高いときは、液体調整部27aは、次回の液体34の貯留量を、現在のマスター容器3内の液体34の貯留量よりも予め設定された所定の増量分だけ多い量に決定する。逆に、S3において比較された結果、被測定物5の内圧がマスター容器3の内圧よりも低いときは、液体調整部27aは、次回の液体34の貯留量を、現在のマスター容器3内の液体34の貯留量よりも予め設定された所定の減量分だけ少ない量に決定する。なお、増量分又は減量分は、使用者により、操作部を介して設定変更が可能とされてもよい。   For the second and subsequent times, the liquid adjusting unit 27a determines the storage amount of the liquid 34 in the master container 3 according to the difference between the internal pressure of the measured object 5 and the internal pressure of the master container 3 determined in S3 described later. . For example, as a result of the comparison in S3, when the internal pressure of the object to be measured 5 is higher than the internal pressure of the master container 3, the liquid adjustment unit 27a determines the next storage amount of the liquid 34 as the liquid in the current master container 3. The amount is determined to be larger than the amount 34 stored by a predetermined increase. On the contrary, when the internal pressure of the DUT 5 is lower than the internal pressure of the master container 3 as a result of the comparison in S3, the liquid adjusting unit 27a determines the next storage amount of the liquid 34 in the current master container 3. The amount is determined to be smaller than the storage amount of the liquid 34 by a predetermined reduction amount set in advance. Note that the increase or decrease may be changed by the user via the operation unit.

その後、制御部27は、締切弁23aと排気弁26aに対して弁を閉状態とさせる信号を送信し、締切弁23aと排気弁26aを閉状態にし、加圧ポンプ21aとマスター容器3を連通状態とさせ、マスター容器3内を気密状態にする。   Thereafter, the control unit 27 transmits a signal for closing the shutoff valve 23a and the exhaust valve 26a, closes the shutoff valve 23a and the exhaust valve 26a, and connects the pressurizing pump 21a and the master container 3 to each other. The master container 3 is airtight.

制御部27は、加圧ポンプ21aに対して駆動信号を送信し、加圧ポンプ21aを駆動し、マスター容器3に、被測定物5に導入した気体と同じ種類(空気)、同じ温度かつ同じ量の気体を導入する。   The control unit 27 transmits a drive signal to the pressurizing pump 21a, drives the pressurizing pump 21a, and the same type (air), the same temperature and the same as the gas introduced into the object to be measured 5 in the master container 3. An amount of gas is introduced.

ここで、マスター容器3に導入される気体についての「同じ温度」とは、被測定物5に導入された気体と同様に、加圧ポンプ21aに取り込まれた大気の温度から得られる温度である。具体的には、「同じ温度」は、被測定物5に導入された気体に対し、概ね±1℃の範囲の温度であり、好ましくは、±0.5℃の範囲の温度である。   Here, the “same temperature” of the gas introduced into the master container 3 is a temperature obtained from the temperature of the atmosphere taken into the pressurizing pump 21a, similarly to the gas introduced into the object 5 to be measured. . Specifically, the “same temperature” is a temperature in the range of about ± 1 ° C., preferably in the range of ± 0.5 ° C., with respect to the gas introduced into the DUT 5.

マスター容器3に導入される気体の「同じ量」とは、制御部27が有する図示しないタイマ等を用いて、制御部27が加圧ポンプ21aに駆動信号を送信し、被測定物5に対する駆動時間と同じ駆動時間だけ加圧ポンプを駆動して得られる量である。   The “same amount” of the gas introduced into the master container 3 means that the control unit 27 transmits a drive signal to the pressurizing pump 21a using a timer (not shown) included in the control unit 27 to drive the object 5 to be measured. This is an amount obtained by driving the pressure pump for the same drive time as the time.

その後、制御部27は、締切弁23bに弁を閉状態にする信号を送信し、締切弁23bを閉状態にし、加圧ポンプ21aとマスター容器3とを非連通状態とする。   Thereafter, the control unit 27 transmits a signal for closing the valve to the cutoff valve 23b, closes the cutoff valve 23b, and brings the pressurizing pump 21a and the master container 3 into a non-communication state.

液体調整部27aは、マスター容器3内が加圧された後、マスター容器3内の液体の貯留量を維持したまま、被測定物5の内圧とマスター容器3の内圧の一致状態又は不一致状態の判定を行う(S3)。   After the inside of the master container 3 is pressurized, the liquid adjusting unit 27a maintains the liquid storage amount in the master container 3 while keeping the internal pressure of the object to be measured 5 and the internal pressure of the master container 3 in agreement or inconsistency. A determination is made (S3).

具体的には、圧力センサ22aは、被測定物5の内圧を測定し、その測定結果を制御部27に送信し、また、圧力センサ22bは、マスター容器3の内圧を測定し、その測定結果を制御部27に送信する。液体調整部27aは、被測定物5とマスター容器3の2つの内圧の情報を制御部27から取得し、2つの内圧が一致状態又は不一致状態にあるかを判定する。   Specifically, the pressure sensor 22a measures the internal pressure of the object 5 to be measured, and transmits the measurement result to the control unit 27. The pressure sensor 22b measures the internal pressure of the master container 3, and the measurement result. Is transmitted to the control unit 27. The liquid adjustment unit 27a acquires information on the two internal pressures of the DUT 5 and the master container 3 from the control unit 27, and determines whether the two internal pressures are in a coincidence state or a disagreement state.

液体調整部27aは、被測定物5の内圧とマスター容器3の内圧が不一致状態にあると判定した場合、表示部27dに表示信号を送信して2つの内圧が不一致状態にあることを表示し、2つの内圧の差から次回の液体の貯留量を決定し、処理は、S1(被測定物5内の加圧処理)に戻る。S1から処理が開始されることにより、被測定物5内の気体の再導入とマスター容器3の気体の再導入が時間を置かずに続けて行われ、その結果、マスター容器3には、被測定物5と同じ温度の気体がより確実に再導入されることとなり、ひいては、被測定物5の容積の測定をより正確なものとすることができる。   When it is determined that the internal pressure of the object to be measured 5 and the internal pressure of the master container 3 are in a mismatch state, the liquid adjustment unit 27a transmits a display signal to the display unit 27d to display that the two internal pressures are in a mismatch state. The next storage amount of the liquid is determined from the difference between the two internal pressures, and the process returns to S1 (pressurization process in the object to be measured 5). By starting the process from S1, the reintroduction of the gas in the object to be measured 5 and the reintroduction of the gas in the master container 3 are performed without taking any time. The gas having the same temperature as that of the measurement object 5 is reintroduced more reliably, and as a result, the measurement of the volume of the measurement object 5 can be made more accurate.

なお、被測定物5の内圧とマスター容器3の内圧が不一致状態にあると判定される場合、図4において二点鎖線Tで示すように、処理は、S2(マスター容器の加圧処理)に戻るようにしてもよい。S2から処理が開始されることにより、S1(被測定物5内の加圧処理)に要する時間がかからず、図4に示す容積測定処理に関する一連の処理の時間は短縮される。   In addition, when it determines with the internal pressure of the to-be-measured object 5 and the internal pressure of the master container 3 being in a disagreement state, as shown by the dashed-two dotted line T in FIG. 4, a process is S2 (pressurization process of a master container). You may make it return. By starting the process from S2, the time required for S1 (the pressurizing process in the object to be measured 5) is not required, and the time for a series of processes relating to the volume measuring process shown in FIG. 4 is shortened.

また、液体調整部27aは、マスター容器3内が加圧された後、被測定物5の内圧とマスター容器3の内圧が不一致状態にあると判定される場合(S3においてNO)、処理がS2に戻るのではなく、給排水ポンプ装置4を駆動させ、マスター容器3内の液体34の貯留量を調整し、被測定物5とマスター容器3の内圧を一致状態にさせるようにしてもよい。   In addition, the liquid adjusting unit 27a determines that the internal pressure of the object to be measured 5 and the internal pressure of the master container 3 are in an inconsistent state after the inside of the master container 3 is pressurized (NO in S3), the process is S2 Instead of returning to the above, the water supply / drainage pump device 4 may be driven to adjust the storage amount of the liquid 34 in the master container 3 so that the internal pressures of the object 5 to be measured and the master container 3 coincide with each other.

具体的には、液体調整部27aは、被測定物5の方がマスター容器3よりも内圧が高い場合は、互いの内圧が一致状態になるまで、給排水ポンプ装置4に対し、給水の駆動信号を送信してマスター容器3に給水を行い、一方、被測定物5の方がマスター容器3よりも内圧が低い場合、互いの内圧が一致状態になるまで、給排水ポンプ装置4に対して排水の駆動信号を送信し、マスター容器3から排水を行ってもよい。このようにすることで、S1(被測定物5内の加圧処理)とS2(マスター容器3内加圧処理)の処理に要する時間がかからず、容積測定処理に関する一連の処理の時間は短縮される。   Specifically, when the measured object 5 has a higher internal pressure than the master container 3, the liquid adjusting unit 27a sends a water supply drive signal to the water supply / drainage pump device 4 until the internal pressures of the liquid adjustment unit 27a match each other. Is transmitted to the master container 3, while when the internal pressure of the object to be measured 5 is lower than that of the master container 3, the water supply / drainage pump device 4 is drained until the internal pressures of the measured object 5 are equal to each other. A drive signal may be transmitted to drain water from the master container 3. By doing in this way, it does not take time for processing of S1 (pressurization process in the to-be-measured object 5) and S2 (pressurization process in the master container 3), and the time of a series of processes regarding a volume measurement process is Shortened.

以上のように、S2〜S3の処理が、圧力センサ22aと22bから取得される内圧の情報に基づき、被測定物5の内圧とマスター容器3の内圧とが一致するように、液体導入部4aと液体排出部4bとを制御してマスター容器3内の液体34の液体量を調整する液体調整部27aを構成する。   As described above, the processes of S2 to S3 are performed based on the internal pressure information acquired from the pressure sensors 22a and 22b, so that the internal pressure of the object to be measured 5 matches the internal pressure of the master container 3. And a liquid discharger 4b to control the liquid amount of the liquid 34 in the master container 3 is configured.

液体調整部27aにより、被測定物5の内圧とマスター容器3の内圧が一致状態にあると判定される場合、処理は、S4に進む。   When it is determined by the liquid adjustment unit 27a that the internal pressure of the DUT 5 and the internal pressure of the master container 3 are in agreement, the process proceeds to S4.

なお、液体調整部27aは、被測定物5の内圧とマスター容器3の内圧の一致状態又は不一致状態の判定を、被測定物5の内圧とマスター容器3の内圧が一致するか否かに基づいて行うのではなく、2つの内圧の差が測定誤差等を考慮した所定の許容差以内にあるか否かに基づいて行うようにしてもよい。   The liquid adjustment unit 27a determines whether the internal pressure of the object to be measured 5 matches the internal pressure of the master container 3 or not based on whether the internal pressure of the object to be measured 5 matches the internal pressure of the master container 3. Rather than being performed, it may be performed based on whether or not the difference between the two internal pressures is within a predetermined tolerance considering the measurement error or the like.

制御部27は、マスター容器3の水位の情報を取得する(S4)。上述したように、水位計32は、マスター容器3内の液体34の貯留量に応じた水位の情報を制御部27へ出力する。   The control unit 27 acquires information on the water level of the master container 3 (S4). As described above, the water level gauge 32 outputs information on the water level corresponding to the storage amount of the liquid 34 in the master container 3 to the control unit 27.

容積算出部27bは、マスター容器3の水位の情報に基づきマスター容器3内気体の体積を算出し、マスター容器3内の気体の体積に基づき被測定物5の容積を算出する(S5)。   The volume calculation unit 27b calculates the volume of the gas in the master container 3 based on the water level information of the master container 3, and calculates the volume of the measurement object 5 based on the volume of the gas in the master container 3 (S5).

ここで、被測定物5の容積は、被測定物5の内圧とマスター容器3の内圧は一致状態となっているため、被測定物5内の気体の体積と等しい。従って、被測定物5の容積は、マスター容器3内の気体の体積を算出することによって得られる。   Here, the volume of the object to be measured 5 is equal to the volume of the gas in the object to be measured 5 because the internal pressure of the object to be measured 5 and the internal pressure of the master container 3 are in agreement. Therefore, the volume of the DUT 5 can be obtained by calculating the volume of the gas in the master container 3.

マスター容器3内の気体の体積(すなわち、被測定物5の容積)Vは、容器本体31の水平断面の面積Sと、容器本体31における気体が収容されている部分の高さhとを乗算することによって得られる。高さhは、予め設定される容器本体31の天面の高さh1から水位計で取得される液体34の水位h2を減算することによって得られる。マスター容器3内の気体の体積Vは、次の式で表される。   The volume of gas in the master container 3 (that is, the volume of the object 5 to be measured) V is multiplied by the area S of the horizontal section of the container body 31 and the height h of the container body 31 in which the gas is accommodated. It is obtained by doing. The height h is obtained by subtracting the water level h2 of the liquid 34 obtained by the water level gauge from the height h1 of the top surface of the container body 31 set in advance. The volume V of the gas in the master container 3 is expressed by the following formula.

V=S×(h1−h2)
なお、ここでは、マスター容器3に接続された管路(分岐管路25dと、外部管路33aと、給水管33b)の容積と、被測定物5に接続された管路(分岐管路25cと外部管路52)の容積と、ステム32cの体積と、フロート32aの水面から浮出た部分の体積とを計算に含めていないが、被測定物5の容積をより正確に算出するため、マスター容器3内の気体の体積Vに対し、マスター容器3に接続された管路(分岐管路25d、外部管路33a及び給水管33b)の容積を加算し、さらに、被測定物5に接続された管路(分岐管路25cと外部管路52)の容積と、ステム32cの体積と、フロート32aの水面から浮出た部分の体積とを減算してもよい。
V = S × (h1-h2)
Here, the volume of the pipeline (branch pipeline 25d, external pipeline 33a, water supply pipe 33b) connected to the master container 3 and the pipeline (branch pipeline 25c) connected to the DUT 5 are measured. And the volume of the external conduit 52), the volume of the stem 32c, and the volume of the portion that floats from the water surface of the float 32a are not included in the calculation, but in order to calculate the volume of the DUT 5 more accurately, The volume of the pipeline (branch pipeline 25d, external pipeline 33a and water supply pipe 33b) connected to the master vessel 3 is added to the volume V of the gas in the master vessel 3 and further connected to the object 5 to be measured. The volume of the pipelines (the branch pipeline 25c and the external pipeline 52), the volume of the stem 32c, and the volume of the portion that floats from the water surface of the float 32a may be subtracted.

容積算出部27bが被測定物5の容積を算出した後、制御部27は、表示部27dに被測定物5の容積の算出結果を表示する。   After the volume calculation unit 27b calculates the volume of the DUT 5, the control unit 27 displays the calculation result of the volume of the DUT 5 on the display unit 27d.

以上のように、S5〜S6の処理が、液体調整部27aによって貯留量が調整されたマスター容器3の液体34の水位の情報から被測定物5の容積を算出する容積算出部27bを構成する。   As described above, the processing of S5 to S6 constitutes the volume calculation unit 27b that calculates the volume of the measurement object 5 from the information on the water level of the liquid 34 in the master container 3 whose storage amount is adjusted by the liquid adjustment unit 27a. .

なお、本実施の形態における各手順の各ステップは、その性質に反しない限り、実行順序を変更し、複数同時に実行し、あるいは実行毎に異なった順序で実行してもよい。さらに、本実施の形態における各手順の各ステップの全て、あるいは一部をハードウェアにより実現してもよい。   It should be noted that each step of each procedure in the present embodiment may be executed in a different order for each execution by changing the execution order and executing a plurality of steps at the same time, as long as it does not contradict its nature. Furthermore, all or a part of each step of each procedure in the present embodiment may be realized by hardware.

図5Aは、被測定物5内の気体の体積m1と、マスター容器3内の気体の体積n1とが同じ場合を説明するための図である。図5Aの場合、被測定物5とマスター容器3とにそれぞれ10L(リットル)の気体を導入すると、被測定物5の内圧とマスター容器3の内圧がそれぞれ100Pa(パスカル)で一致する。なお、図5Aは、説明のため、被測定物5内の気体の体積m1と、マスター容器3内の気体の体積n1とが同じ体積であることを、図面による説明のため同じ面積で表し、また、管路の容積等を省略し、気体の導入量(L)と、気体の圧力(Pa)とをそれぞれ仮定の数字で示してしている。   FIG. 5A is a diagram for explaining a case where the volume m1 of the gas in the DUT 5 is the same as the volume n1 of the gas in the master container 3. In the case of FIG. 5A, when 10 L (liter) of gas is introduced into the object to be measured 5 and the master container 3, respectively, the internal pressure of the object to be measured 5 and the internal pressure of the master container 3 coincide with each other at 100 Pa (Pascal). In addition, FIG. 5A represents that the volume m1 of the gas in the DUT 5 and the volume n1 of the gas in the master container 3 are the same volume for the sake of explanation, with the same area for the explanation by the drawing, Moreover, the volume of the pipe line etc. are abbreviate | omitted and the gas introduction amount (L) and the gas pressure (Pa) are each shown by the assumed number.

以上のように、上述した実施の形態によれば、より正確に容積を測定することができる容積測定装置を提供することができる。   As described above, according to the embodiment described above, it is possible to provide a volume measuring device capable of measuring the volume more accurately.

特に、上述した実施の形態によれば、例えば内視鏡などの正確な容積の測定が求められる被測定物に対して、より正確に容積を測定することができる容積測定装置を提供することができる。   In particular, according to the above-described embodiment, it is possible to provide a volume measuring device that can measure the volume more accurately with respect to an object to be measured such as an endoscope that requires accurate volume measurement. it can.

(変形例1)
上述した実施の形態では、容積測定開始時におけるマスター容器3の液体34の初期貯留量と、被測定物に対して導入する気体の所定量は、ROM等のメモリに予め記憶されて設定されているが、被測定物5の種類などに応じて設定するようにしてもよい。
(Modification 1)
In the embodiment described above, the initial storage amount of the liquid 34 in the master container 3 at the start of volume measurement and the predetermined amount of gas introduced to the object to be measured are stored and set in advance in a memory such as a ROM. However, it may be set according to the type of the object 5 to be measured.

本変形例1によれば、制御部27が、被測定物5の機種番号又は型式等の識別情報と、それぞれ識別情報に紐付けられた、マスター容器3の液体34の初期貯留量の情報と、被測定物に対して導入する気体の所定量とを保有する格納部27e(図1において二点鎖線で示す)を有し、格納部27eには、各種の被測定物に応じたそれぞれ最適なマスター容器3の液体34の初期貯留量の情報と、被測定物5に対して導入する気体の所定量とが予め設定される。容積測定装置1の使用者が被測定物5の識別情報を操作部27cに入力することにより、液体調整部27aは、操作部27cを介して使用者により入力された識別情報を取得し、予め格納部27eに設定されている初期貯留量と、気体の導入量の情報を読み出し、初期貯留量の情報に基づいて給排水ポンプ装置4を駆動させ、容積測定開始時に、マスター容器3の液体34の貯留量を、初期貯留量に調整することが可能となり、また、被測定物5に対して導入する気体の所定量が設定される。   According to the first modification, the control unit 27 includes identification information such as the model number or model of the object to be measured 5, and information on the initial storage amount of the liquid 34 in the master container 3 associated with the identification information. And a storage unit 27e (indicated by a two-dot chain line in FIG. 1) that holds a predetermined amount of gas to be introduced to the device under test, and each of the storage units 27e is optimal for each device under test. The information on the initial storage amount of the liquid 34 in the master container 3 and the predetermined amount of gas introduced into the object to be measured 5 are set in advance. When the user of the volume measuring device 1 inputs the identification information of the object to be measured 5 to the operation unit 27c, the liquid adjustment unit 27a acquires the identification information input by the user via the operation unit 27c, and Information on the initial storage amount and the gas introduction amount set in the storage unit 27e is read out, and the water supply / drainage pump device 4 is driven based on the information on the initial storage amount. The stored amount can be adjusted to the initial stored amount, and a predetermined amount of gas to be introduced to the object to be measured 5 is set.

(変形例2)
さらに、装置本体2には、被測定物5の識別情報を読取可能とする読取部27f(図1において二点鎖線で示す)を設けてもよい。
(Modification 2)
Further, the apparatus main body 2 may be provided with a reading unit 27f (indicated by a two-dot chain line in FIG. 1) that can read the identification information of the object 5 to be measured.

本変形例2によれば、読取部27fは、被測定物5に付されたRFIDタグや2次元コード等から機種番号又は型式等の識別情報を読み取ることが可能である。液体調整部27aは、読取部27fで読み取った被測定物5の識別情報を取得し、マスター容器3内が加圧される前に、マスター容器3内の液体34の初期貯留量を決定することが可能である。この構成によれば、使用者に被測定物5の識別情報等の入力の手間をかけさせない。   According to the second modification, the reading unit 27f can read identification information such as a model number or a model from an RFID tag or a two-dimensional code attached to the measurement object 5. The liquid adjusting unit 27a acquires the identification information of the object to be measured 5 read by the reading unit 27f, and determines the initial storage amount of the liquid 34 in the master container 3 before the inside of the master container 3 is pressurized. Is possible. According to this configuration, the user is not required to input identification information or the like of the object to be measured 5.

(変形例3)
さらになお、マスター容器3は、マスター容器3の容器本体31の天面又は側壁面の一部に、マスター容器3の内圧の増減に従い変形可能であり、可撓性の高い樹脂等を材質とする変形部35(図1において二点鎖線で示す)を配設してもよい。変形部35は例えばプレート形状を有し、内圧の増減に伴い膨らんだり凹んだりする。
(Modification 3)
Furthermore, the master container 3 can be deformed on the top surface or a part of the side wall surface of the container body 31 of the master container 3 according to the increase or decrease of the internal pressure of the master container 3, and is made of a highly flexible resin or the like. A deforming portion 35 (indicated by a two-dot chain line in FIG. 1) may be provided. The deforming portion 35 has, for example, a plate shape, and swells or dents as the internal pressure increases or decreases.

本変形例3によれば、変形部35の材質は、被測定物5の熱膨張率に近い材質であることが好ましい。また、変形部35の配設面積は、被測定物5の可撓性を有する部分の表面積と近いことが好ましい。この構成によれば、例えば、内視鏡の挿入部等の可撓性の高い部分を有する被測定物5の容積を測定する場合、被測定物5の一部が内圧の上昇に従い変形することで内圧を押し下げた場合においても、可撓性の低い容器本体31の一部が可撓性の高い変形部35で構成されることにより、マスター容器3の変形部35も内圧の上昇に従い変形することで内圧を押し下げ、結果として両者の内圧の一致状態を得ることができ、ひいては、より正確な被測定物5の容積算出が可能となる。   According to the third modification, the material of the deforming portion 35 is preferably a material close to the coefficient of thermal expansion of the DUT 5. Moreover, it is preferable that the arrangement area of the deformation part 35 is close to the surface area of the flexible part of the DUT 5. According to this configuration, for example, when measuring the volume of the measurement object 5 having a highly flexible portion such as an insertion portion of an endoscope, a part of the measurement object 5 is deformed as the internal pressure increases. Even when the internal pressure is pushed down, a part of the container body 31 having low flexibility is constituted by the highly flexible deformation part 35, so that the deformation part 35 of the master container 3 is also deformed as the internal pressure increases. As a result, the internal pressure is pushed down, and as a result, it is possible to obtain a state in which both internal pressures coincide with each other. As a result, the volume of the object 5 to be measured can be calculated more accurately.

(変形例4)
上述した実施の形態では、被測定物5内の気体の体積とマスター容器3内の気体の体積とが同じになるようにして、被測定物5の容積を測定しているが、被測定物5内の気体の体積とマスター容器3内の気体の体積とが同じにならなくても、被測定物5の容積を測定することが可能である。すなわち、被測定物5内の気体の体積とマスター容器3内の気体の体積とが同じにならなくても、容積算出部27bは、被測定物5内に導入する気体の体積と、マスター容器3内に導入する気体の体積との比率の情報を取得することにより、被測定物5の容積を算出することが可能である。
(Modification 4)
In the above-described embodiment, the volume of the object to be measured 5 is measured so that the volume of the gas in the object to be measured 5 and the volume of the gas in the master container 3 are the same. Even if the volume of the gas in 5 and the volume of the gas in the master container 3 are not the same, the volume of the object to be measured 5 can be measured. That is, even if the volume of the gas in the object to be measured 5 and the volume of the gas in the master container 3 do not become the same, the volume calculation unit 27b determines the volume of the gas introduced into the object to be measured 5 and the master container. The volume of the object to be measured 5 can be calculated by acquiring information on the ratio with the volume of the gas introduced into 3.

図5Bと図5Cは、被測定物5内の気体の体積とマスター容器3内の気体の体積とを同じにしないで、被測定物5の容積を測定する場合を説明するための図である。   5B and 5C are diagrams for explaining a case where the volume of the measurement object 5 is measured without making the volume of the gas in the measurement object 5 and the volume of the gas in the master container 3 the same. .

例えば、図5Bに示すように、マスター容器3内の気体の体積n2が、被測定物5内の気体の体積m2の半分である場合に、被測定物5に10Lの気体を導入し、マスター容器3に半分である5Lの気体を導入すれば、被測定物5の内圧とマスター容器3の内圧がそれぞれ100Paで一致する。   For example, as shown in FIG. 5B, when the volume n2 of the gas in the master container 3 is half of the volume m2 of the gas in the object 5 to be measured, 10 L of gas is introduced into the object 5 to be measured. If 5 L of gas, which is a half, is introduced into the container 3, the internal pressure of the object to be measured 5 and the internal pressure of the master container 3 coincide with each other at 100 Pa.

図5Bに示すように、マスター容器3内の気体の体積n2が、被測定物5内の気体の体積m2よりも所定比率kだけ小さい場合、被測定物5に導入する気体の体積に対し、マスター容器3に導入する気体の体積が所定比率kだけ少なければ、被測定物5の内圧とマスター容器3の内圧が一致する。   As shown in FIG. 5B, when the volume n2 of the gas in the master container 3 is smaller than the volume m2 of the gas in the measurement object 5 by a predetermined ratio k, the volume of the gas introduced into the measurement object 5 is If the volume of the gas introduced into the master container 3 is small by a predetermined ratio k, the internal pressure of the object to be measured 5 and the internal pressure of the master container 3 match.

図5Bに示すようなマスター容器3の容積が、被測定物5の容積に比べて小さければ、マスター容器3内の気体の体積が小さくなるため、マスター容器3のサイズを小型化することが可能である。   If the volume of the master container 3 as shown in FIG. 5B is smaller than the volume of the object 5 to be measured, the volume of the gas in the master container 3 is reduced, so that the size of the master container 3 can be reduced. It is.

逆に、例えば、図5Cに示すように、マスター容器3内の気体の体積n3が、被測定物5内の気体の体積m3の2倍である場合、被測定物5に10Lの気体を導入し、マスター容器3に2倍である20Lの気体を導入し、被測定物5の内圧とマスター容器3の内圧がそれぞれ100Paで一致する。   Conversely, for example, as shown in FIG. 5C, when the volume n3 of the gas in the master container 3 is twice the volume m3 of the gas in the object 5 to be measured, 10 L of gas is introduced into the object 5 to be measured. Then, 20 L of double gas is introduced into the master container 3, and the internal pressure of the object to be measured 5 and the internal pressure of the master container 3 coincide with each other at 100 Pa.

図5Cに示すように、マスター容器3内の気体の体積n3が、被測定物5内の気体の体積m3よりも所定比率kだけ大きい場合、被測定物5に導入する気体の体積に対し、マスター容器3に導入する気体の体積が所定比率kだけ多いときに、被測定物5の内圧とマスター容器3の内圧が一致する。   As shown in FIG. 5C, when the volume n3 of the gas in the master container 3 is larger than the volume m3 of the gas in the measurement object 5 by a predetermined ratio k, the volume of the gas introduced into the measurement object 5 is When the volume of the gas introduced into the master container 3 is increased by a predetermined ratio k, the internal pressure of the measurement object 5 and the internal pressure of the master container 3 coincide.

図5Cに示すようなマスター容器3の容積が被測定物5の容積に比べて大きければ、マスター容器3内の気体の体積が大きくなるため、マスター容器の気体の体積の測定の精度が高められ、より細かな被測定物5の容積の測定結果が取得可能である。   If the volume of the master container 3 as shown in FIG. 5C is larger than the volume of the object 5 to be measured, the volume of the gas in the master container 3 is increased, so that the accuracy of the measurement of the volume of the gas in the master container is increased. A finer measurement result of the volume of the object to be measured 5 can be acquired.

(適用例)
次に、上述した実施の形態及び変形例の容積測定装置の適用例について説明する。ここでは、適用例として、内視鏡洗浄消毒装置を説明する。
(Application example)
Next, an application example of the volume measuring apparatus according to the above-described embodiment and modification will be described. Here, an endoscope cleaning / disinfecting apparatus will be described as an application example.

図6は、本実施の形態に係る容積測定装置1を備えた内視鏡洗浄消毒装置6(以下、「洗浄装置」という。)の構成図である。洗浄装置6は、容積測定装置1を洗浄装置6に適用した例であり、装置本体2と、マスター容器3と、給水電磁弁61と、給水切替弁62と、排水切替弁63と、排水ポンプ64と、洗浄消毒槽65とを有する。被測定物5は、内視鏡であり、被測定物5の口金51に接続された外部管路52を介し、洗浄装置6の接続ポート66に接続される。図6においては、洗浄装置6に備わる容積測定機構以外の機構については、図示を省略している。   FIG. 6 is a configuration diagram of an endoscope cleaning / disinfecting apparatus 6 (hereinafter referred to as “cleaning apparatus”) including the volume measuring apparatus 1 according to the present embodiment. The cleaning device 6 is an example in which the volume measuring device 1 is applied to the cleaning device 6, and the device main body 2, the master container 3, a water supply electromagnetic valve 61, a water supply switching valve 62, a drainage switching valve 63, and a drainage pump. 64 and a cleaning / disinfecting tank 65. The device under test 5 is an endoscope, and is connected to a connection port 66 of the cleaning device 6 via an external conduit 52 connected to a base 51 of the device under test 5. In FIG. 6, the illustration of the mechanisms other than the volume measuring mechanism provided in the cleaning device 6 is omitted.

洗浄装置6には、給水電磁弁61が設けられており、給水電磁弁61は、図示しない水道等の給水口に管路66aを介して接続している。給水電磁弁61は、管路66bを介して給水切替弁62に接続される。給水切替弁62は、管路66cを介して給水ノズル67に接続され、また、管路66dを介して容器本体31に接続される。給水切替弁62の動作に応じて、容器本体31又は給水ノズル67は、選択的に水道等の給水口からの水の供給を受ける。   The cleaning device 6 is provided with a water supply electromagnetic valve 61, and the water supply electromagnetic valve 61 is connected to a water supply port such as a water supply (not shown) via a conduit 66a. The water supply electromagnetic valve 61 is connected to the water supply switching valve 62 through a pipeline 66b. The water supply switching valve 62 is connected to the water supply nozzle 67 via a pipe line 66c, and is connected to the container main body 31 via a pipe line 66d. In accordance with the operation of the water supply switching valve 62, the container body 31 or the water supply nozzle 67 selectively receives water from a water supply port such as a water supply.

また、洗浄装置6には、排水ポンプ64が設けられており、排水ポンプ64は、図示しない排水口に管路66eを介して接続されている。排水ポンプ64は、管路66fを介して排水切替弁63に接続される。排水切替弁63は、管路66gを介して洗浄消毒槽排水口68に接続され、また、管路66hを介して容器本体31に接続される。排水切替弁63の動作に応じて、容器本体31又は洗浄消毒槽排水口68は、選択的に図示しない排水口に接続される。   Further, the cleaning device 6 is provided with a drain pump 64, and the drain pump 64 is connected to a drain port (not shown) via a conduit 66e. The drainage pump 64 is connected to the drainage switching valve 63 via a pipeline 66f. The drainage switching valve 63 is connected to the cleaning / disinfecting tank drainage port 68 through the pipeline 66g, and is connected to the container body 31 through the pipeline 66h. Depending on the operation of the drainage switching valve 63, the container body 31 or the cleaning / disinfecting tank drainage port 68 is selectively connected to a drainage port (not shown).

制御部27は、給水電磁弁61と、給水切替弁62と、排水切替弁63と、排水ポンプ64とに電気的に接続され、信号の送受信により、給水電磁弁61、給水切替弁62、排水切替弁63及び排水ポンプ64の動作を制御する。   The control unit 27 is electrically connected to the water supply electromagnetic valve 61, the water supply switching valve 62, the drainage switching valve 63, and the drainage pump 64, and by transmission and reception of signals, the water supply electromagnetic valve 61, the water supply switching valve 62, the drainage The operation of the switching valve 63 and the drainage pump 64 is controlled.

容器本体31に液体34を給水する場合、制御部27は、給水切替弁62への容器本体31と水道等の給水口を接続する状態に切り替える信号と、給水電磁弁61への所定時間だけ開状態にする信号とを送信することにより、水道等の給水口と容器本体31とを連通させ、給水電磁弁61を所定時間だけ開状態とさせ、水道等の給水口から容器本体31に所定量の液体34(ここでは水)を給水する。   When supplying the liquid 34 to the container main body 31, the control unit 27 opens the signal for switching the state in which the container main body 31 and the water supply port such as water supply are connected to the water supply switching valve 62 and the water supply electromagnetic valve 61 for a predetermined time. By transmitting a signal to make a state, the water supply port such as water supply is communicated with the container main body 31, the water supply electromagnetic valve 61 is opened for a predetermined time, and a predetermined amount is supplied from the water supply port such as water supply to the container main body 31. The liquid 34 (water here) is supplied.

また、容器本体31から液体34を排水させる場合、制御部27は、排水切替弁63への容器本体31と図示しない排水口を接続する状態に切り替える信号と、排水ポンプ64への駆動信号とを送信し、容器本体31と排水口とを連通させ、容器本体31から排水口に排水をさせる。   Further, when the liquid 34 is drained from the container body 31, the control unit 27 outputs a signal for switching the container body 31 to the drain switching valve 63 and a drain port (not shown) and a drive signal to the drain pump 64. The container main body 31 and the drain outlet are communicated, and the container main body 31 is drained to the drain outlet.

なお、洗浄装置6は、給水切替弁62を切り替え、外部の給水手段である水道等の給水口と給水ノズル67とを連通させ、外部の給水手段から洗浄消毒槽65に液体34を給水することが可能である。また、洗浄装置6は、排水切替弁63を切り替え、洗浄消毒槽排水口68と排水口とを連通させ、洗浄消毒槽65の液体34を排水口に排水させることが可能である。   The cleaning device 6 switches the water supply switching valve 62 to connect a water supply port such as a water supply as an external water supply means and a water supply nozzle 67 to supply the liquid 34 to the cleaning / disinfecting tank 65 from the external water supply means. Is possible. In addition, the cleaning device 6 can switch the drain switching valve 63 to allow the cleaning / disinfecting tank drain 68 to communicate with the drain, and drain the liquid 34 in the cleaning / disinfecting tank 65 to the drain.

本実施の形態に係る容積測定装置1を備えた洗浄装置6によれば、被測定物5のより正確な容積が測定可能とされ、結果として、洗浄装置6における一処理である被測定物5のリークテスト処理において、より正確な被測定物5のリークの検知及びリーク量の測定が可能である。   According to the cleaning device 6 including the volume measuring device 1 according to the present embodiment, a more accurate volume of the measurement object 5 can be measured, and as a result, the measurement object 5 is one process in the cleaning device 6. In this leak test process, it is possible to more accurately detect the leak of the object to be measured 5 and measure the amount of leak.

本発明は、上述した実施の形態に限定されるものではなく、本発明の要旨を変えない範囲において、種々の変更、改変等が可能である。   The present invention is not limited to the above-described embodiments, and various changes and modifications can be made without departing from the scope of the present invention.

1 容積測定装置
1a 容積測定装置
2 容積測定装置本体
2a 容積測定装置本体
3 マスター容器
4 給排水ポンプ装置
4a 液体導入部
4b 液体排出部
5 被測定物
6 内視鏡洗浄消毒装置
21a 加圧ポンプ
21b 加圧ポンプ
21c 加圧ポンプ
22a 圧力センサ
22b 圧力センサ
23a 締切弁
23b 締切弁
24a 接続ポート
24b 接続ポート
24c 接続ポート
25a 管路
25b 分岐管路
25c 分岐管路
25d 分岐管路
25e 管路
25f 分岐管路
26a 排気弁
26b 排気弁
26c 排気弁
27 制御部
27a 液体調整部
27b 容積算出部
27c 操作部
27d 表示部
27e 格納部
27f 読取部
28 中央処理装置
31 容器本体
32 水位計
32a フロート
32b 中心孔
32c ステム
33a 外部管路
33b 給水管
33c 排水管
34 液体
35 変形部
36 スイッチ切替部
37 スイッチ
37a スイッチ
37b スイッチ
51 口金
52 外部管路
61 給水電磁弁
62 給水切替弁
63 排水切替弁
64 排水ポンプ
65 洗浄消毒槽
66 接続ポート
66a 管路
66b 管路
66c 管路
66d 管路
66e 管路
66f 管路
66g 管路
66h 管路
67 給水ノズル
68 洗浄消毒槽排水口
DESCRIPTION OF SYMBOLS 1 Volume measuring apparatus 1a Volume measuring apparatus 2 Volume measuring apparatus main body 2a Volume measuring apparatus main body 3 Master container 4 Water supply / drainage pump apparatus 4a Liquid introducing | transducing part 4b Liquid discharge part 5 Measured object 6 Endoscope washing / disinfecting apparatus 21a Pressurizing pump 21b Pressure pump 21c Pressure pump 22a Pressure sensor 22b Pressure sensor 23a Shutoff valve 23b Shutoff valve 24a Connection port 24b Connection port 24c Connection port 25a Pipe line 25b Branch pipe line 25c Branch pipe line 25d Branch pipe line 25e Pipe line 25f Branch pipe line 26a Exhaust valve 26b Exhaust valve 26c Exhaust valve 27 Control unit 27a Liquid adjustment unit 27b Volume calculation unit 27c Operation unit 27d Display unit 27e Storage unit 27f Reading unit 28 Central processing unit 31 Container body 32 Water level gauge 32a Float 32b Center hole 32c Stem 33a External Pipe line 33b Water supply pipe 33c Drain pipe 34 Liquid 3 5 Deformation part 36 Switch switching part 37 Switch 37a Switch 37b Switch 51 Base 52 External pipe 61 Water supply solenoid valve 62 Water supply switching valve 63 Drainage switching valve 64 Drainage pump 65 Cleaning disinfection tank 66 Connection port 66a Pipeline 66b Pipeline 66c Pipeline 66d Pipe line 66e Pipe line 66f Pipe line 66g Pipe line 66h Pipe line 67 Water supply nozzle 68 Cleaning disinfection tank drain

Claims (15)

被測定物に連通して前記被測定物に気体を導入することで前記被測定物の内部を加圧する第1加圧部と、
前記被測定物の内圧を測定する第1圧力センサと、
液体を貯留可能な容器と、
前記容器に貯留された前記液体の水位を検知する水位計と、
前記容器に前記液体を導入する液体導入部と、
前記容器から前記液体を排出する液体排出部と、
前記容器に連通し、前記被測定物に導入される前記気体と同じ種類かつ同じ温度の気体を導入することで前記容器の内部を加圧する第2加圧部と、
前記容器の内圧を測定する第2圧力センサと、
前記第1圧力センサから取得される内圧の情報と、前記第2圧力センサから取得される内圧の情報とに基づき、前記被測定物の内圧と、前記容器の内圧とが一致するように、前記液体導入部と前記液体排出部とを制御して前記容器の内部の液体量を調整する液体調整部と、
前記液体調整部によって前記液体量が調整された前記容器の前記液体の前記水位の情報から前記被測定物の容積を算出する容積算出部と、
を含むことを特徴とする容積測定装置。
A first pressurizing unit that pressurizes the interior of the measurement object by introducing gas into the measurement object in communication with the measurement object;
A first pressure sensor for measuring an internal pressure of the object to be measured;
A container capable of storing liquid;
A water level meter for detecting the water level of the liquid stored in the container;
A liquid introduction part for introducing the liquid into the container;
A liquid discharger for discharging the liquid from the container;
A second pressurizing unit communicating with the container and pressurizing the inside of the container by introducing a gas of the same type and the same temperature as the gas introduced to the object to be measured;
A second pressure sensor for measuring the internal pressure of the container;
Based on the internal pressure information acquired from the first pressure sensor and the internal pressure information acquired from the second pressure sensor, the internal pressure of the object to be measured and the internal pressure of the container match. A liquid adjusting unit that controls the liquid introducing unit and the liquid discharging unit to adjust the amount of liquid inside the container;
A volume calculation unit that calculates the volume of the object to be measured from information on the water level of the liquid in the container in which the liquid amount is adjusted by the liquid adjustment unit;
A volume measuring apparatus comprising:
前記第1加圧部と、前記第2加圧部とは、1つの加圧ポンプを共有して構成されることを特徴とする請求項1に記載の容積測定装置。   The volume measuring apparatus according to claim 1, wherein the first pressurizing unit and the second pressurizing unit are configured to share one pressurizing pump. 前記液体調整部は、前記容器の内部が加圧される前に、前記容器の内部の前記液体量を調整することを特徴とする請求項1または請求項2に記載の容積測定装置。   The volume measuring apparatus according to claim 1, wherein the liquid adjusting unit adjusts the amount of the liquid inside the container before the inside of the container is pressurized. 前記第2加圧部は、前記被測定物に導入した前記気体と同量の気体を、前記容器の内部に導入することを特徴とする請求項1または請求項2に記載の容積測定装置。   The volume measuring apparatus according to claim 1, wherein the second pressurizing unit introduces the same amount of gas as the gas introduced into the object to be measured into the container. 前記容積算出部は、前記容器の水位の情報に基づき前記容器の内部の前記気体の体積を算出し、前記容器の内部の前記気体の体積に基づき前記被測定物の容積を算出することを特徴とする請求項1または請求項2に記載の容積測定装置。   The volume calculation unit calculates a volume of the gas inside the container based on information on a water level of the container, and calculates a volume of the object to be measured based on the volume of the gas inside the container. The volume measuring device according to claim 1 or 2. 前記容積算出部は、前記被測定物の内部に導入した前記気体の体積と、前記容器の内部に導入した前記気体の体積との比率に基づき、被測定物の容積を算出することを特徴とする請求項1または請求項2に記載の容積測定装置。   The volume calculation unit calculates the volume of the object to be measured based on a ratio between the volume of the gas introduced into the object to be measured and the volume of the gas introduced into the container. The volume measuring device according to claim 1 or 2. 前記容器は、前記容器の天面又は側壁面の一部に、前記容器の内圧の増減に従い変形可能である変形部を有することを特徴とする請求項1または請求項2に記載の容積測定装置。   The volume measuring apparatus according to claim 1, wherein the container has a deformable portion that can be deformed according to an increase or decrease of an internal pressure of the container on a part of a top surface or a side wall surface of the container. . 前記液体調整部は、入力された前記被測定物の識別情報に基づき、前記容器に導入される前記液体量を決定することを特徴とする請求項1または請求項2に記載の容積測定装置。   The volume measuring device according to claim 1, wherein the liquid adjusting unit determines the amount of the liquid introduced into the container based on the input identification information of the object to be measured. 前記被測定物の前記識別情報を入力可能とする操作部を有することを特徴とする請求項8に記載の容積測定装置。   The volume measuring apparatus according to claim 8, further comprising an operation unit that enables input of the identification information of the object to be measured. 前記被測定物の前記識別情報を読取可能とする読取部を有することを特徴とする請求項8に記載の容積測定装置。   The volume measuring apparatus according to claim 8, further comprising a reading unit that can read the identification information of the object to be measured. 前記被測定物の前記識別情報に紐付けられた、前記容器の内部の前記液体量の初期値を含む情報を格納する格納部を有することを特徴とする請求項8に記載の容積測定装置。   The volume measuring apparatus according to claim 8, further comprising a storage unit that stores information including an initial value of the liquid amount inside the container, which is associated with the identification information of the object to be measured. 前記液体調整部は、前記容器の内部が加圧された後、前記容器の内部の前記液体の前記液体量を維持したまま、前記被測定物と前記容器の内圧の一致状態又は不一致状態の判定を行うことを特徴とする請求項1または請求項2に記載の容積測定装置。   After the inside of the container is pressurized, the liquid adjusting unit determines whether the measured object and the internal pressure of the container match or not while maintaining the amount of the liquid inside the container. The volume measuring device according to claim 1 or 2, wherein 前記液体調整部は、前記容器の内部が加圧された後、前記容器の内部の前記液体の前記液体量を調整し、前記被測定物と前記容器の内圧を一致状態にさせることを特徴とする請求項1または請求項2に記載の容積測定装置。   The liquid adjusting unit adjusts the liquid amount of the liquid inside the container after the inside of the container is pressurized, and makes the internal pressure of the object to be measured and the container coincide with each other. The volume measuring device according to claim 1 or 2. 請求項1または請求項2に記載の容積測定装置を含む内視鏡洗浄消毒装置。   An endoscope cleaning / disinfecting apparatus including the volume measuring apparatus according to claim 1. 被測定物に連通して前記被測定物に気体を導入することで前記被測定物の内部を加圧し、
液体を貯留可能な容器に前記液体を貯留し、
前記容器に連通し、前記被測定物に導入される前記気体と同じ種類かつ同じ温度の気体を導入することで前記容器の内部を加圧し、
加圧された前記被測定物の内圧を測定し、
加圧された前記容器の内圧を測定し、
測定された前記被測定物の内圧と、測定された前記容器の内圧との情報に基づき、前記被測定物の内圧と、前記容器の内圧とが一致するように、前記容器内の液体量を調整し、
前記液体量が調整された前記液体の水位の情報に基づいて、前記被測定物の容積を算出する、
ことを特徴とする容積測定方法。
Pressurizing the inside of the measurement object by introducing gas into the measurement object in communication with the measurement object;
Storing the liquid in a container capable of storing the liquid;
Communicating with the container, pressurizing the inside of the container by introducing a gas of the same type and the same temperature as the gas introduced into the object to be measured,
Measure the internal pressure of the pressurized object to be measured,
Measuring the internal pressure of the pressurized container,
Based on the information on the measured internal pressure of the object to be measured and the measured internal pressure of the container, the amount of liquid in the container is adjusted so that the internal pressure of the object to be measured and the internal pressure of the container match. Adjust
Calculate the volume of the object to be measured based on the water level information of the liquid whose liquid amount has been adjusted.
A volume measuring method characterized by the above.
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