WO2016151799A1 - Connection member and storage device - Google Patents

Connection member and storage device Download PDF

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Publication number
WO2016151799A1
WO2016151799A1 PCT/JP2015/059120 JP2015059120W WO2016151799A1 WO 2016151799 A1 WO2016151799 A1 WO 2016151799A1 JP 2015059120 W JP2015059120 W JP 2015059120W WO 2016151799 A1 WO2016151799 A1 WO 2016151799A1
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WO
WIPO (PCT)
Prior art keywords
storage
guide
storage member
placement surface
component
Prior art date
Application number
PCT/JP2015/059120
Other languages
French (fr)
Japanese (ja)
Inventor
昭一 藤森
寿治 清水
Original Assignee
パイオニア株式会社
株式会社パイオニアFa
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by パイオニア株式会社, 株式会社パイオニアFa filed Critical パイオニア株式会社
Priority to JP2017507247A priority Critical patent/JP6469210B2/en
Priority to PCT/JP2015/059120 priority patent/WO2016151799A1/en
Priority to CN201580078056.1A priority patent/CN107428459B/en
Publication of WO2016151799A1 publication Critical patent/WO2016151799A1/en

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65BMACHINES, APPARATUS OR DEVICES FOR, OR METHODS OF, PACKAGING ARTICLES OR MATERIALS; UNPACKING
    • B65B39/00Nozzles, funnels or guides for introducing articles or materials into containers or wrappers

Definitions

  • the present invention relates to a connection member that guides a component to a storage member and a storage device including the connection member.
  • Patent Document 1 discloses a cylindrical packaging stick in which electronic components are stored.
  • parts during production or after completion have a specific shape.
  • a part that is not preferable to be in contact with other components or a storage member such as a circuit portion or a terminal is stored in the storage member in an exposed state. Therefore, a dedicated storage member is often used depending on the state and shape of the part, the transport destination (next process or delivery destination), and the like.
  • the shape and size of the storage member are designed according to the shape and size of the component.
  • the opening dimension of a storage port may be formed in the dimension close
  • Parts such as electronic parts may be abruptly moved during storage due to the influence of static electricity or frictional resistance. As a result, for example, there is a problem that a part may be clogged at the storage port of the storage member.
  • the static electricity that may occur during storage may cause damage (electrostatic breakdown) of an internal circuit of the electronic component.
  • damage electrostatic breakdown
  • other stored components may be affected by static electricity.
  • the present invention has been made in view of the above points, and an object of the present invention is to provide a connection member that enables smooth storage of components in a storage member and a storage device including the connection member. Another object of the present invention is to provide a storage device capable of preventing internal charging of components during storage.
  • the invention according to claim 1 is a connection member that is connected to the storage port of the storage member and guides the component into the storage member, and is higher than the bottom of the storage member when connected to the storage member. And a guide part that guides movement of a component placed on the placement surface to the storage member, and the guide part has a width within the storage member at the storage side end of the guide part.
  • a guide side portion that has a narrower guide width and restricts movement in the width direction of the component, and an upper portion of the guide that restricts the height position of the component when moving on the mounting surface to less than the height in the storage member
  • the base portion has an insertion portion that is inserted into the storage member when connected to the storage port, and the upper surface of the insertion portion is a bottom portion in the storage member when connected to the storage port. It is characterized by having a height higher than that of the mounting surface.
  • the component when the connecting member according to the first aspect is connected to the storage member, the component moves on the placement surface when the connection member is connected to the storage member, or toward the inside of the storage member.
  • a supply device for supplying ionized gas when the connecting member according to the first aspect is connected to the storage member, the component moves on the placement surface when the connection member is connected to the storage member, or toward the inside of the storage member.
  • FIG. 3 is a side view schematically showing an arrangement example of connection members and storage members according to the first embodiment.
  • (A) And (b) is the top view and sectional drawing of the connection member which respectively concern on Example 1
  • (c) is typical sectional drawing of the connection member in the state in which components were mounted.
  • (A) And (b) is sectional drawing and the top view of a connection member in the state connected to the storage member, respectively.
  • FIG. 6 is a block diagram illustrating a configuration of a storage device according to a second embodiment.
  • FIG. 1A is a schematic perspective view of the connection member 10 according to the first embodiment.
  • the connection member 10 is configured to be connected to the storage port AP of the storage member ST. Further, the connection member 10 is configured to guide the component PA into the storage member ST. For clarity of illustration, the storage port AP is hatched in FIG. Further, the connecting member 10 is indicated by a thick solid line, the part PA is indicated by a thin solid line, and the storage member ST is indicated by a broken line.
  • the part PA is an electronic part after completion
  • the case where the storage member ST is a cylindrical storage component and the storage port AP is provided at the end of the storage member ST will be described.
  • a plurality of parts PA are stored along the longitudinal direction of the storage member ST.
  • the direction in which the component PA moves into the storage member ST via the storage port AP is referred to as a storage direction SD.
  • FIG. 2 is a cross-sectional view schematically showing a state in which the connection member 10 is inserted and connected to the storage member ST.
  • the connecting member 10 and the storage member ST are arranged to be inclined in the vertical direction (gravity direction) G in a connected state. That is, the storage member ST is disposed below the connection member 10.
  • the component PA placed on the connection member 10 moves by its own weight from the connection member 10 into the storage member ST and is stored in the storage member ST.
  • the part PA has a flat plate shape.
  • the part PA has a rectangular shape in a top view.
  • the part PA has a rectangular shape in a top view.
  • the part PA is stored in the storage member ST along the short side direction of the rectangle from one of the long side surfaces of the rectangle.
  • the component PA has a portion (hereinafter referred to as a non-contact portion) NG1 that is not preferably in contact with another component PA or the storage member ST during storage on one of the main surfaces (hereinafter referred to as a circuit surface). It has NG2.
  • the non-contact portions NG1 and NG2 are formed in a region excluding the edge portion on the circuit surface of the component PA.
  • the non-contact portion NG1 is an electronic element such as an IC formed at the center of the circuit surface, for example.
  • the non-contact part NG2 is, for example, a wiring formed on the side part of the electronic element.
  • the non-contact portions NG1 and NG2 are exposed on the circuit surface.
  • FIG. 1B is a perspective view of the storage member ST viewed from the storage port AP.
  • the storage member ST has a shape such that when the component PA is stored, the non-contact portions NG1 and NG2 of the component PA do not contact the inner surface of the storage member ST.
  • the storage member ST has a pair of parallel ribs RB extending in the storage direction SD at the bottom of the storage port AP.
  • the rib RB protrudes from the inner bottom surface BT of the storage member ST.
  • the part PA moves so as to slide on the rib RB in the storage member ST.
  • the frictional resistance generated in the component PA during storage is reduced.
  • a case where two ribs RB are provided in parallel will be described, but the number of ribs RB is not limited thereto.
  • connection member 10 includes a base portion 11 having a placement surface 11A having a height higher than the inner bottom surface BT of the storage member ST (the bottom portion in the storage member ST) when connected to the storage member ST.
  • connection member 10 includes a guide portion 12 that guides the movement of the component PA placed on the placement surface 11A into the storage member ST. That is, the component PA placed on the placement surface 11A of the base portion 11 moves toward the storage port AP while being guided by the guide portion 12 on the placement surface 11A.
  • the component PA is delivered from the connection member 10 to the storage member ST at the tip of the placement surface 11A.
  • 11 A of mounting surfaces function as a conveyance surface (conveyance path) of components PA.
  • FIG. 3A is a top view of the connection member 10.
  • the base part 11 has the insertion part 11B inserted in storage member ST, when connected to the storage port AP.
  • the upper surface of the insertion portion 11B is flush with the placement surface 11A.
  • the component PA moves on the upper surface of the insertion portion 11B and is stored in the storage member ST.
  • the connection member 10 and the storage member ST are reliably connected (coupled). Therefore, it becomes possible to transfer the parts PA stably.
  • the base portion 11 has a through hole 11C that penetrates the base portion 11 in a direction perpendicular to the storage direction SD.
  • the through hole 11C is provided with a sensor that detects the component PA moving on the placement surface 11A. Using this sensor, for example, the number of parts PA stored in the storage member ST can be counted.
  • FIG. 3B is a cross-sectional view of the connection member 10.
  • FIG. 3B is a cross-sectional view taken along line VV in FIG.
  • the base portion 11 has a recess 11D that is recessed from the placement surface 11A on the placement surface 11A. Since the mounting surface 11A has the recess 11D, static electricity can be prevented from being generated in the component PA moving on the mounting surface 11A. Further, by adjusting the formation area of the recess 11D, the contact area between the mounting surface 11A and the part PA can be adjusted. For example, the moving speed of the part PA can be adjusted. Further, by adjusting the formation position of the recess 11D, for example, it is possible to stably move the component PA that exists at a position where the center of gravity is biased.
  • the recessed part 11D is not provided in the formation area of the through-hole 11C. This is because if the concave portion 11D is provided in the formation region of the through hole 11C, the detection accuracy of the component PA that has passed through the formation region of the through hole 11C decreases.
  • the recess 11D is formed in the central portion in the width direction of the component PA. Thereby, in the formation region of the recess 11D, only both side portions in the width direction of the bottom surface (lower surface) of the component PA are in contact with the placement surface 11A.
  • the guide part 12 has a guide side part 12A that restricts movement of the part PA on the placement surface 11A in the width direction (lateral direction).
  • the movement width (restriction width) of the component PA on the placement surface 11A restricted by the guide side portion 12A is referred to as a guide width WG.
  • the guide side portion 12A of the guide portion 12 is configured such that the guide width WG gradually decreases along the insertion direction SD.
  • the amount of movement of the position of the part PA in the width direction becomes smaller as it approaches the storage member ST. Accordingly, the position of the part PA in the width direction is determined along the storage direction SD.
  • the guide portion 12 has a guide upper portion 12B that restricts the movement of the part PA on the placement surface 11A in the height direction.
  • the moving height (restricted height) of the component PA on the placement surface 11A limited by the guide upper portion 12B is referred to as a guide height HG.
  • the base portion 11 and the guide portion 12 of the connecting member 10 are formed on the base BS. More specifically, the base part 11 is formed on the base BS. Moreover, the guide part 12 consists of a pair of plate-shaped member fixed to the side surface of the base part 11, for example. The plate-like members constituting the guide portion 12 are arranged to face each other with the placement surface 11A interposed therebetween. Further, each of the plate-like members has a portion extending in the direction perpendicular to the placement surface 11A on the placement surface 11A, and a portion inclined from the perpendicular portion to the placement surface 11A side. The vertical portion is the guide side portion 12A, and the inclined portion is the guide upper portion 12B.
  • the guide side portion 12A is formed perpendicular to the placement surface 11A.
  • the guide upper portion 12B is inclined from the direction perpendicular to the placement surface 11A toward the placement surface 11A.
  • an angle (inner angle) formed by the guide upper portion 12B and the guide side portion 12A is referred to as an inclination angle ⁇ .
  • FIG. 3C is a cross-sectional view showing the connection member 10 in a state where the component PA is placed on the placement surface 11A.
  • FIG. 3C is a cross-sectional view similar to FIG. Moreover, in FIG.3 (c), the hatching of the component of the connection member 10 is abbreviate
  • the component PA is placed on the placement surface 11A with the non-contact portion NG1 (circuit surface) disposed above.
  • the position of the component PA in the width direction on the placement surface 11A is limited by the guide side portion 12A. Further, the position of the component PA in the height direction on the placement surface 11A is limited by the guide upper portion 12B.
  • FIG. 4A is a cross-sectional view along the storage direction SD of the connection member 10 in a state of being connected to the storage member ST.
  • FIG. 4A is a cross-sectional view taken along line WW in FIG.
  • the constituent elements of the storage member ST are indicated by broken lines, and the part PA is indicated by a thin solid line.
  • the guide upper portion 12B of the guide portion 12 is configured such that the guide height HG gradually decreases along the storage direction SD. As a result, the amount of movement of the component PA in the height direction becomes smaller as it approaches the storage member ST. Therefore, the position in the height direction of the part PA is determined along the storage direction SD.
  • the upper surface of the insertion portion 11B is flush with the placement surface 11A. That is, the upper surface of the insertion part 11B forms the mounting surface 11A.
  • the component PA is transferred from the connection member 10 to the storage member ST in the storage member ST.
  • the upper surface of the insertion part 11B is arrange
  • the insertion portion 11B has a tapered shape in which the thickness decreases along the storage direction SD.
  • the insertion portion 11B has a tapered shape while maintaining the height position of the upper surface along the storage direction SD. Since the insertion portion 11B has a tapered shape, the connection member 10 and the storage member ST are easily connected.
  • FIG. 4B is a top view of the connection member 10 in a state of being connected to the storage member ST.
  • the component PA After the component PA is placed on the placement surface 11A, it moves along the storage direction SD. Further, when the part PA passes through the through hole 11C, the passage of the part PA is detected by a sensor such as an optical sensor. Then, the part PA passes through the insertion part 11B and is then stored in the storage member ST.
  • the guide width WG of the connecting member 10 is gradually narrowed by the guide portion 12. Therefore, when the component PA moves on the mounting surface 11A of the connection member 10, the position in the width direction is gradually determined.
  • the guide height HG and the guide width WG along the storage direction SD the component PA is reliably stored in the storage member ST.
  • FIG. 5A is a diagram showing a positional relationship between the connection member 10 and the storage port AP when the storage port AP is viewed from the front.
  • the constituent elements of the storage member ST are indicated by broken lines, and the part PA is indicated by a thin solid line.
  • the part PA is hatched.
  • the guide side portion 12A has a guide width WG that is narrower than the width WA in the storage member ST at the storage side end (the end on the storage member ST side) of the guide portion 12. Therefore, the movement amount of the part PA in the storage port AP in the width direction is suppressed to be less than the opening width WA of the storage port AP. Accordingly, the component PA is smoothly stored in the storage member ST without being blocked by the storage port AP.
  • the guide upper portion 12B is configured to limit the height position of the component PA when moving on the placement surface 11A to less than the height H1 in the storage member ST from the placement surface 11A. . That is, the guide height HG is set so that the moving height of the part PA at the storage side end of the guide portion 12 is less than the height H1.
  • the guide upper portion 12B is inclined inward toward the placement surface 11A with respect to the direction perpendicular to the placement surface 11A.
  • the inclination angle ⁇ formed by the guide upper portion 12B and the guide side portion 12A is in the range of 90 ° ⁇ ⁇ 180 °. By setting it as such inclination
  • the inclination angle ⁇ is 90 °
  • the upper guide portion 12B is formed parallel to the placement surface 11A.
  • the non-contact part NG2 of the part PA may contact the guide upper part 12B.
  • the inclination angle ⁇ is set within a range of 90 ° ⁇ ⁇ 180 °. Therefore, the movement of the part PA in the height direction can be limited without the non-contact part NG2 of the part PA contacting the guide upper part 12B.
  • the inclination angle ⁇ is 90 °
  • the lower surface of the guide upper portion 12B and the part PA may be in partial contact with each other by surface contact.
  • the inclination angle ⁇ is set within a range of 90 ° ⁇ ⁇ 180 °. Therefore, the component PA moving on the placement surface 11A is brought into contact with the guide upper portion 12B by point contact or line contact. Therefore, the contact area between the guide part 12 and the part PA when the part PA is moved can be reduced.
  • the guide upper portion 12B is formed at an angle ⁇ that restricts the height position of the component PA when the component PA is most inclined on the placement surface 11A to less than the height H1 in the storage member ST.
  • FIG. 5B shows an example in which the part PA is most inclined.
  • the component PA is in contact with one of the guide side portions 12A at one end PA1 of the component (left side of FIG. 5B). Further, the component PA is inclined at the other end PA2 of the component PA until it contacts the guide upper portion 12B on the other side of the guide side portion 12A.
  • the highest moving part of the part PA that is, the height position of the part PA at the other end PA2 is less than the height H1 in the storage member ST.
  • This can be realized by adjusting the inclination angle ⁇ of the guide upper portion 12B according to the size of the part PA and the height of the placement surface 11A. Thereby, the transfer of the component PA to the storage member ST becomes smoother.
  • the other end PA2 of the component PA comes into contact with the guide upper portion 12B by point contact or line contact. Therefore, the contact area between the part PA and the guide upper part 12B is small. Further, the non-contact part NG2 of the part PA is suppressed from contacting the guide upper part 12B.
  • the connecting member 10 has a base portion 11 and a guide portion 12. Moreover, the base part 11 has the insertion part 11B inserted in storage member ST. Further, the upper surface of the insertion portion 11B is flush with the placement surface 11A. Therefore, the part PA can be smoothly transferred into the storage member ST.
  • connection member 10 As a material of the connection member 10, it is possible to use a metal or resin other than stainless steel, for example. In consideration of the manufacturing process, use environment, and the like, it is preferable to configure the connection member 10 using a metal such as stainless steel. Further, the shape of the part PA and the shape of the storage member ST in this embodiment are merely examples. Further, the component PA is not limited to an electronic component, and may be another component. [Modification] FIG. 6 is a diagram showing a modification of the first embodiment. Note that the same reference numerals are assigned to components that are the same as or equivalent to those in the above embodiment. Specifically, FIG. 6 is a cross-sectional view schematically showing the connection member 10 connected to the storage member ST1 that does not have the rib RB.
  • the housing member ST is provided with a rib RB (having the rib RB on the inner bottom surface BT).
  • the connection member 10 can also be connected to the storage member ST1 that does not have the rib RB.
  • the mounting surface 11 ⁇ / b> A of the connection member 10 is arranged at a position higher than the bottom in the storage member ST when connected to the storage member ST ⁇ b> 1.
  • the placement surface 11A only needs to be provided at a position higher than the internal bottom surface BT of the storage member ST.
  • the guide upper portion 12B only needs to be formed so that the guide height HG of the component PA is less than the height H1 from the placement surface 11A to the inner upper surface of the storage port AP.
  • the storage member ST1 can connect the connecting member 10 to the storage member ST1 that is not provided with the rib RB. Further, even if the storage member ST1 is not provided with the rib RB, the component PA can be stored smoothly and reliably in the storage member ST1.
  • the upper surface of the insertion part 11B was coplanar with the mounting surface 11A was demonstrated.
  • the upper surface of the insertion portion 11B is not limited to the case where it is flush with the placement surface 11A.
  • the upper surface of the insertion portion 11A may be disposed at a position lower than the placement surface 11A when connected to the storage port AP. That is, the upper surface of the insertion portion 11B only needs to have a height that is higher than the bottom portion in the storage member ST and lower than the placement surface 11A when connected to the storage port AP.
  • both the placement surface 11A and the upper surface of the insertion portion 11B have a height higher than the upper surface of the rib RB at the time of connection. good.
  • FIG. 7 is a block diagram illustrating a configuration of the storage device 50 according to the second embodiment.
  • the storage device 50 includes the connection member 10 according to the first embodiment and the modification. Further, the storage device 50 supplies the ionized gas toward either the component PA moving on the mounting surface 11A or the interior of the storage member ST when the connecting member 10 is connected to the storage member ST.
  • the storage device 50 includes a counting device 30 that detects the part PA placed in the connection member 10 and counts the number of the parts PA stored in the storage member ST.
  • the component PA tends to generate static electricity when it moves on the placement surface 11A and when it is stored in the storage member ST.
  • the part PA after being housed in the housing member ST is easily charged with static electricity.
  • the storage device 50 includes a supply device 20 that supplies ionized gas to the part PA moving on the mounting surface 11A, the storage member ST, or both. That is, the ionized gas is supplied to the part PA before and after being stored in the storage member ST. Therefore, the part PA is neutralized during storage. Therefore, it is possible to suppress the occurrence of static electricity in the part PA. Therefore, it is possible to ensure the quality of the part PA in the storage member ST.
  • a sensor (not shown) is disposed in a through hole 11C (see FIG. 3A) provided in the base portion 11 of the connection member 10.
  • a sensor (not shown) is disposed in a through hole 11C (see FIG. 3A) provided in the base portion 11 of the connection member 10.
  • the through hole 11C is formed in the mounting surface 11A other than the formation region of the recess 11D. Accordingly, it is possible to reliably detect the passage of the part PA. Therefore, it is possible to stably count the component PA.
  • the storage device 50 includes the counting device 30 has been described. However, the present invention is not limited to the case where the storage device 50 includes the counting device 30.

Abstract

A connection member according to the present invention is connected to a storage opening of a storage member that guides components into the storage member that has a sill part that comprises a placement surface that is higher than a bottom part of the storage member when connected to the storage member and a guide part that guides movement of components placed on the placement surface into the storage member, wherein the guide part, on a storage side edge part thereof, has a guide side part that has a guide width narrower than the width of the storage member and that limits width-wise movement of components and a guide upper part that limits the height position of components when moved to the placement surface to less than the height of the storage member, wherein the sill part has an insertion part that is inserted into the storage member when connected to the storage opening and an upper surface of the insertion part has a height greater than the bottom part of the storage member and less than or equal to the height of the placement surface when connected to the storage opening.

Description

接続部材及び収納装置Connection member and storage device
 本発明は、部品を収納部材に導く接続部材及び当該接続部材を含む収納装置に関する。 The present invention relates to a connection member that guides a component to a storage member and a storage device including the connection member.
 例えば、電子部品などの部品は、製造工程間の搬送や完成後の搬送の際には、所定の収納部材内に収納される。例えば、収納部材には複数の部品が整列して収納される。また、収納部材が1つの搬送単位として次工程や納品先に搬送される。特許文献1には、電子部品が収納される筒状の包装スティックが開示されている。 For example, parts such as electronic parts are stored in a predetermined storage member when transporting between manufacturing processes or transporting after completion. For example, the storage member stores a plurality of parts aligned. Further, the storage member is transported to the next process or delivery destination as one transport unit. Patent Document 1 discloses a cylindrical packaging stick in which electronic components are stored.
特開平9-12082号公報Japanese Patent Laid-Open No. 9-2082
 一般に、製造中や完成後の部品は特有の形状を有している。また、例えば、回路部分や端子など、他の部品や収納部材に接触することが好ましくない部分が露出した状態で収納部材に収納される場合がある。従って、部品の状態や形状、搬送先(次工程や納品先)などに応じて専用の収納部材が用いられることが多い。この場合、収納部材の形状及び寸法は部品の形状及び寸法に合わせて設計される。また、収納口の開口寸法は部品の寸法に近い寸法で形成される場合がある。従って、部品が収納部材にスムーズに収納されない場合があるという問題が一例として挙げられる。 Generally, parts during production or after completion have a specific shape. In addition, for example, there are cases in which a part that is not preferable to be in contact with other components or a storage member such as a circuit portion or a terminal is stored in the storage member in an exposed state. Therefore, a dedicated storage member is often used depending on the state and shape of the part, the transport destination (next process or delivery destination), and the like. In this case, the shape and size of the storage member are designed according to the shape and size of the component. Moreover, the opening dimension of a storage port may be formed in the dimension close | similar to the dimension of components. Therefore, the problem that a part may not be smoothly accommodated in a storage member is mentioned as an example.
 電子部品などの部品は、静電気や摩擦抵抗などの影響を受けることによって、収納時における部品の位置が不意に変動する場合がある。これによって、例えば、収納部材の収納口で部品が詰まる場合があるという問題が一例として挙げられる。また、収納時に生じうる静電気は、電子部品の内部回路の破損(静電破壊)を引き起こす場合があるという問題が一例として挙げられる。また、例えば、部品が静電気を帯びた状態で収納されると、収納済みの他の部品に静電気の影響を与える場合があるという問題が一例として挙げられる。 ∙ Parts such as electronic parts may be abruptly moved during storage due to the influence of static electricity or frictional resistance. As a result, for example, there is a problem that a part may be clogged at the storage port of the storage member. In addition, as an example, the static electricity that may occur during storage may cause damage (electrostatic breakdown) of an internal circuit of the electronic component. In addition, for example, when a component is stored in a state of being charged with static electricity, there is a problem that other stored components may be affected by static electricity.
 本発明は上記した点に鑑みてなされたものであり、部品の収納部材へのスムーズな収納を可能にする接続部材及び当該接続部材を含む収納装置を提供することを目的としている。また、本発明は、収納時の部品の内部帯電を防止することが可能な収納装置を提供することを目的としている。 The present invention has been made in view of the above points, and an object of the present invention is to provide a connection member that enables smooth storage of components in a storage member and a storage device including the connection member. Another object of the present invention is to provide a storage device capable of preventing internal charging of components during storage.
 請求項1に記載の発明は、収納部材の収納口に接続され、部品を収納部材内に導く接続部材であって、収納部材に接続された際に収納部材内の底部よりも高い載置面を有する土台部と、載置面上に載置された部品の収納部材への移動をガイドするガイド部と、を有し、ガイド部は、ガイド部の収納側端部において収納部材内の幅よりも狭いガイド幅を有して部品の幅方向の移動を制限するガイド側部と、載置面上を移動する際の部品の高さ位置を収納部材内の高さ未満に制限するガイド上部とを有し、土台部は、収納口に接続された際に収納部材内に差し込まれる差込部を有し、差込部の上面は、収納口に接続された際に収納部材内の底部よりも高くかつ載置面以下の高さを有することを特徴としている。 The invention according to claim 1 is a connection member that is connected to the storage port of the storage member and guides the component into the storage member, and is higher than the bottom of the storage member when connected to the storage member. And a guide part that guides movement of a component placed on the placement surface to the storage member, and the guide part has a width within the storage member at the storage side end of the guide part. A guide side portion that has a narrower guide width and restricts movement in the width direction of the component, and an upper portion of the guide that restricts the height position of the component when moving on the mounting surface to less than the height in the storage member The base portion has an insertion portion that is inserted into the storage member when connected to the storage port, and the upper surface of the insertion portion is a bottom portion in the storage member when connected to the storage port. It is characterized by having a height higher than that of the mounting surface.
 また、請求項10に記載の発明は、請求項1に記載の接続部材と、接続部材が収納部材に接続された際、載置面上を移動する部品及び収納部材の内部のいずれかに向けてイオン化ガスを供給する供給装置と、を有することを特徴としている。 According to a tenth aspect of the present invention, when the connecting member according to the first aspect is connected to the storage member, the component moves on the placement surface when the connection member is connected to the storage member, or toward the inside of the storage member. And a supply device for supplying ionized gas.
(a)は、実施例1に係る接続部材、当該接続部材が接続された状態の収納部材及び収納部材に収納される部品を模式的に示す斜視図であり、(b)は、収納部材の斜視図である。(A) is a perspective view which shows typically the connection member which concerns on Example 1, the storage member of the state to which the said connection member was connected, and the components accommodated in a storage member, (b) is a storage member. It is a perspective view. 実施例1に係る接続部材及び収納部材の配置例を模式的に示す側面図である。FIG. 3 is a side view schematically showing an arrangement example of connection members and storage members according to the first embodiment. (a)及び(b)は、それぞれ実施例1に係る接続部材の上面図及び断面図であり、(c)は、部品が載置された状態の接続部材の模式的な断面図である。(A) And (b) is the top view and sectional drawing of the connection member which respectively concern on Example 1, (c) is typical sectional drawing of the connection member in the state in which components were mounted. (a)及び(b)は、それぞれ収納部材に接続された状態の接続部材の断面図及び上面図である。(A) And (b) is sectional drawing and the top view of a connection member in the state connected to the storage member, respectively. (a)及び(b)は、収納部材に接続された状態の接続部材の差込部及びガイド部を模式的に示す図である。(A) And (b) is a figure which shows typically the insertion part and guide part of the connection member of the state connected to the storage member. リブが設けられていない収納部材に接続された接続部材の模式的な側面図である。It is a typical side view of the connection member connected to the storage member in which the rib is not provided. 実施例2に係る収納装置の構成を示すブロック図である。FIG. 6 is a block diagram illustrating a configuration of a storage device according to a second embodiment.
 以下、本発明の実施例について詳細に説明する。 Hereinafter, embodiments of the present invention will be described in detail.
 図1(a)は、実施例1に係る接続部材10の模式的な斜視図である。接続部材10は、収納部材STの収納口APに接続されるように構成されている。また、接続部材10は、部品PAを収納部材ST内に導くように構成されている。図の明確さのため、図1(a)においては、収納口APにハッチングを施してある。また、接続部材10を太い実線で示し、部品PAを細い実線で示し、収納部材STを破線で示している。 FIG. 1A is a schematic perspective view of the connection member 10 according to the first embodiment. The connection member 10 is configured to be connected to the storage port AP of the storage member ST. Further, the connection member 10 is configured to guide the component PA into the storage member ST. For clarity of illustration, the storage port AP is hatched in FIG. Further, the connecting member 10 is indicated by a thick solid line, the part PA is indicated by a thin solid line, and the storage member ST is indicated by a broken line.
 本実施例においては、部品PAが完成後の電子部品である場合について説明する。また、収納部材STが筒状の収納部品であり、収納部材STの端部に収納口APが設けられる場合について説明する。本実施例においては、部品PAは、収納部材STの長手方向に沿って複数個収納される。なお、本明細書においては、部品PAが収納口APを介して収納部材ST内に向かって移動する方向を収納方向SDと称する。 In this embodiment, the case where the part PA is an electronic part after completion will be described. The case where the storage member ST is a cylindrical storage component and the storage port AP is provided at the end of the storage member ST will be described. In the present embodiment, a plurality of parts PA are stored along the longitudinal direction of the storage member ST. In the present specification, the direction in which the component PA moves into the storage member ST via the storage port AP is referred to as a storage direction SD.
 なお、本実施例においては、接続部材10及び収納部材STが収納方向SDに沿って傾斜して配置される場合について説明する。図2は、接続部材10が収納部材STに差し込まれて接続された状態を模式的に示す断面図である。図2に示すように、接続部材10及び収納部材STは、接続された状態において鉛直方向(重力方向)Gに傾けて配置される。すなわち、収納部材STが接続部材10よりも下方に配置されている。そして、接続部材10に載置された部品PAは、接続部材10から収納部材ST内に向かって自重で移動し、収納部材STに収納される。 In the present embodiment, a case will be described in which the connection member 10 and the storage member ST are arranged inclined along the storage direction SD. FIG. 2 is a cross-sectional view schematically showing a state in which the connection member 10 is inserted and connected to the storage member ST. As shown in FIG. 2, the connecting member 10 and the storage member ST are arranged to be inclined in the vertical direction (gravity direction) G in a connected state. That is, the storage member ST is disposed below the connection member 10. The component PA placed on the connection member 10 moves by its own weight from the connection member 10 into the storage member ST and is stored in the storage member ST.
 ここで、図1(a)を参照して部品PAについて説明する。本実施例においては、部品PAは、平板形状を有している。また、部品PAは、上面視において矩形の形状を有している。例えば、部品PAは、上面視において長方形の形状を有している。また、部品PAは、当該長方形の長辺側の側面の一方から、当該長方形の短辺方向に沿って収納部材STに収納される。 Here, the component PA will be described with reference to FIG. In the present embodiment, the part PA has a flat plate shape. The part PA has a rectangular shape in a top view. For example, the part PA has a rectangular shape in a top view. The part PA is stored in the storage member ST along the short side direction of the rectangle from one of the long side surfaces of the rectangle.
 また、部品PAは、主面の一方(以下、回路面と称する)に、収納時において他の部品PAや収納部材STに接触することが好ましくない部分(以下、非接触部分と称する)NG1及びNG2を有している。非接触部分NG1及びNG2は、部品PAの回路面のうち、縁部を除く領域に形成されている。非接触部分NG1は、例えば回路面の中央部に形成されたICなどの電子素子である。また、非接触部分NG2は、例えば電子素子の側部に形成された配線である。非接触部分NG1及びNG2は、回路面において露出している。 In addition, the component PA has a portion (hereinafter referred to as a non-contact portion) NG1 that is not preferably in contact with another component PA or the storage member ST during storage on one of the main surfaces (hereinafter referred to as a circuit surface). It has NG2. The non-contact portions NG1 and NG2 are formed in a region excluding the edge portion on the circuit surface of the component PA. The non-contact portion NG1 is an electronic element such as an IC formed at the center of the circuit surface, for example. Further, the non-contact part NG2 is, for example, a wiring formed on the side part of the electronic element. The non-contact portions NG1 and NG2 are exposed on the circuit surface.
 図1(b)は、収納口APから見た収納部材STの斜視図である。収納部材STは、部品PAが収納された際、部品PAの非接触部分NG1及びNG2が収納部材STの内面に接触しないような形状を有している。また、収納部材STは、収納口APの底部において収納方向SDに延びる平行な一対のリブRBを有している。リブRBは、収納部材STの内部底面BTから突出している。部品PAは、収納部材ST内においてリブRB上を滑るように移動する。リブRBが設けられていることによって、収納時に部品PAに生ずる摩擦抵抗が低減される。本実施例においては、2本のリブRBが平行に設けられている場合について説明するが、リブRBの数はこれに限らない。 FIG. 1B is a perspective view of the storage member ST viewed from the storage port AP. The storage member ST has a shape such that when the component PA is stored, the non-contact portions NG1 and NG2 of the component PA do not contact the inner surface of the storage member ST. In addition, the storage member ST has a pair of parallel ribs RB extending in the storage direction SD at the bottom of the storage port AP. The rib RB protrudes from the inner bottom surface BT of the storage member ST. The part PA moves so as to slide on the rib RB in the storage member ST. By providing the rib RB, the frictional resistance generated in the component PA during storage is reduced. In the present embodiment, a case where two ribs RB are provided in parallel will be described, but the number of ribs RB is not limited thereto.
 次に、再度図1(a)を参照して接続部材10について説明する。接続部材10は、収納部材STに接続された際に収納部材STの内部底面BT(収納部材ST内の底部)よりも高い高さの載置面11Aを有する土台部11を有する。また、接続部材10は、載置面11A上に載置された部品PAの収納部材ST内への移動をガイドするガイド部12を有する。すなわち、土台部11の載置面11Aに載置された部品PAは、載置面11A上においてガイド部12にガイドされながら収納口APに向かって移動する。部品PAは、載置面11Aの先端において、接続部材10から収納部材STに受け渡される。載置面11Aは、部品PAの搬送面(搬送路)として機能する。 Next, the connecting member 10 will be described with reference to FIG. The connection member 10 includes a base portion 11 having a placement surface 11A having a height higher than the inner bottom surface BT of the storage member ST (the bottom portion in the storage member ST) when connected to the storage member ST. In addition, the connection member 10 includes a guide portion 12 that guides the movement of the component PA placed on the placement surface 11A into the storage member ST. That is, the component PA placed on the placement surface 11A of the base portion 11 moves toward the storage port AP while being guided by the guide portion 12 on the placement surface 11A. The component PA is delivered from the connection member 10 to the storage member ST at the tip of the placement surface 11A. 11 A of mounting surfaces function as a conveyance surface (conveyance path) of components PA.
 図3(a)は、接続部材10の上面図である。図3(a)に示すように、土台部11は、収納口APに接続された際に収納部材ST内に差し込まれる差込部11Bを有している。差込部11Bの上面は、載置面11Aと同一平面をなしている。部品PAは、差込部11Bの上面上を移動し、収納部材ST内に収納される。差込部11Bを設けることで、載置面11Aから収納部材STへの部品PAの移載がスムーズに行われる。また、接続部材10と収納部材STとが確実に接続(連結)される。従って、安定して部品PAの移載を行うことが可能となる。 FIG. 3A is a top view of the connection member 10. As shown to Fig.3 (a), the base part 11 has the insertion part 11B inserted in storage member ST, when connected to the storage port AP. The upper surface of the insertion portion 11B is flush with the placement surface 11A. The component PA moves on the upper surface of the insertion portion 11B and is stored in the storage member ST. By providing the insertion portion 11B, the component PA is smoothly transferred from the placement surface 11A to the storage member ST. Further, the connection member 10 and the storage member ST are reliably connected (coupled). Therefore, it becomes possible to transfer the parts PA stably.
 また、土台部11は、収納方向SDに垂直な方向に土台部11を貫通する貫通孔11Cを有している。貫通孔11Cには、例えば、載置面11A上を移動する部品PAを検知するセンサが設けられる。このセンサを用いて、例えば、収納部材STに収納された部品PAの個数などを計数することができる。 The base portion 11 has a through hole 11C that penetrates the base portion 11 in a direction perpendicular to the storage direction SD. For example, the through hole 11C is provided with a sensor that detects the component PA moving on the placement surface 11A. Using this sensor, for example, the number of parts PA stored in the storage member ST can be counted.
 図3(b)は、接続部材10の断面図である。図3(b)は、図3(a)のV-V線に沿った断面図である。図3(a)及び(b)に示すように、土台部11は、載置面11A上において載置面11Aから窪んだ凹部11Dを有している。載置面11Aが凹部11Dを有することによって、載置面11A上を移動する部品PAに静電気が生ずることを抑制することができる。また、凹部11Dの形成面積を調節することによって、載置面11Aと部品PAとの接触面積を調節することができる。例えば、部品PAの移動速度を調節することができる。また、凹部11Dの形成位置を調節することで、例えば、重心が偏った位置に存在する部品PAに対しても安定して移動させることが可能となる。 FIG. 3B is a cross-sectional view of the connection member 10. FIG. 3B is a cross-sectional view taken along line VV in FIG. As shown in FIGS. 3A and 3B, the base portion 11 has a recess 11D that is recessed from the placement surface 11A on the placement surface 11A. Since the mounting surface 11A has the recess 11D, static electricity can be prevented from being generated in the component PA moving on the mounting surface 11A. Further, by adjusting the formation area of the recess 11D, the contact area between the mounting surface 11A and the part PA can be adjusted. For example, the moving speed of the part PA can be adjusted. Further, by adjusting the formation position of the recess 11D, for example, it is possible to stably move the component PA that exists at a position where the center of gravity is biased.
 なお、貫通孔11Cの形成領域には凹部11Dは設けられていない。貫通孔11Cの形成領域に凹部11Dが設けられていると、貫通孔11Cの形成領域を通過した部品PAの検知精度が落ちるからである。また、本実施例においては、凹部11Dは、部品PAの幅方向における中央部分に形成されている。これによって、凹部11Dの形成領域においては、部品PAの底面(下面)の幅方向における両側部のみが載置面11Aに接触する。 In addition, the recessed part 11D is not provided in the formation area of the through-hole 11C. This is because if the concave portion 11D is provided in the formation region of the through hole 11C, the detection accuracy of the component PA that has passed through the formation region of the through hole 11C decreases. In the present embodiment, the recess 11D is formed in the central portion in the width direction of the component PA. Thereby, in the formation region of the recess 11D, only both side portions in the width direction of the bottom surface (lower surface) of the component PA are in contact with the placement surface 11A.
 ガイド部12は、載置面11A上の部品PAの幅方向(横方向)の移動を制限するガイド側部12Aを有する。ここでは、ガイド側部12Aが制限する部品PAの載置面11A上での移動幅(制限幅)をガイド幅WGと称する。また、図3(a)に示すように、ガイド部12のガイド側部12Aは、ガイド幅WGが挿入方向SDに沿って徐々に小さくなるように構成されている。これによって、部品PAの幅方向における位置の移動量が収納部材STに近づくに従って小さくなる。従って、収納方向SDに沿って部品PAの幅方向における位置が定まっていく。 The guide part 12 has a guide side part 12A that restricts movement of the part PA on the placement surface 11A in the width direction (lateral direction). Here, the movement width (restriction width) of the component PA on the placement surface 11A restricted by the guide side portion 12A is referred to as a guide width WG. 3A, the guide side portion 12A of the guide portion 12 is configured such that the guide width WG gradually decreases along the insertion direction SD. As a result, the amount of movement of the position of the part PA in the width direction becomes smaller as it approaches the storage member ST. Accordingly, the position of the part PA in the width direction is determined along the storage direction SD.
 また、図3(b)に示すように、ガイド部12は、載置面11A上の部品PAの高さ方向の移動を制限するガイド上部12Bを有している。ここでは、ガイド上部12Bが制限する部品PAの載置面11A上での移動高さ(制限高さ)をガイド高さHGと称する。 Further, as shown in FIG. 3B, the guide portion 12 has a guide upper portion 12B that restricts the movement of the part PA on the placement surface 11A in the height direction. Here, the moving height (restricted height) of the component PA on the placement surface 11A limited by the guide upper portion 12B is referred to as a guide height HG.
 図3(b)に示すように、接続部材10の土台部11及びガイド部12は、基部BS上に形成されている。より具体的には、土台部11は、基部BS上に形成されている。また、ガイド部12は、例えば、土台部11の側面に固定された一対の板状部材からなる。ガイド部12を構成する板状部材は、載置面11Aを挟んで互いに対向して配置されている。また、当該板状部材の各々は、載置面11A上において載置面11Aに垂直な方向に延びる部分と、当該垂直な部分から載置面11A側に傾斜した部分とを有している。当該垂直な部分がガイド側部12Aであり、傾斜した部分がガイド上部12Bである。ガイド側部12Aは載置面11Aに垂直に形成されている。また、ガイド上部12Bは、載置面11Aに垂直な方向から載置面11Aに向かって傾斜している。なお、ここでは、ガイド上部12Bとガイド側部12Aとのなす角度(内角)を傾斜角度θと称する。 As shown in FIG. 3B, the base portion 11 and the guide portion 12 of the connecting member 10 are formed on the base BS. More specifically, the base part 11 is formed on the base BS. Moreover, the guide part 12 consists of a pair of plate-shaped member fixed to the side surface of the base part 11, for example. The plate-like members constituting the guide portion 12 are arranged to face each other with the placement surface 11A interposed therebetween. Further, each of the plate-like members has a portion extending in the direction perpendicular to the placement surface 11A on the placement surface 11A, and a portion inclined from the perpendicular portion to the placement surface 11A side. The vertical portion is the guide side portion 12A, and the inclined portion is the guide upper portion 12B. The guide side portion 12A is formed perpendicular to the placement surface 11A. The guide upper portion 12B is inclined from the direction perpendicular to the placement surface 11A toward the placement surface 11A. Here, an angle (inner angle) formed by the guide upper portion 12B and the guide side portion 12A is referred to as an inclination angle θ.
 図3(c)は、載置面11A上に部品PAが載置された状態の接続部材10を示す断面図である。図3(c)は、図2(b)と同様の断面図である。また、図3(c)においては、図の明確さのため、接続部材10の構成要素のハッチングを省略し、部品PAにハッチングを施している。部品PAは、非接触部分NG1(回路面)が上方に配置された状態で載置面11A上に載置される。部品PAの載置面11A上の幅方向における位置は、ガイド側部12Aによって制限される。また、部品PAの載置面11A上の高さ方向における位置は、ガイド上部12Bによって制限される。 FIG. 3C is a cross-sectional view showing the connection member 10 in a state where the component PA is placed on the placement surface 11A. FIG. 3C is a cross-sectional view similar to FIG. Moreover, in FIG.3 (c), the hatching of the component of the connection member 10 is abbreviate | omitted and the part PA is hatched for the clarity of a figure. The component PA is placed on the placement surface 11A with the non-contact portion NG1 (circuit surface) disposed above. The position of the component PA in the width direction on the placement surface 11A is limited by the guide side portion 12A. Further, the position of the component PA in the height direction on the placement surface 11A is limited by the guide upper portion 12B.
 図4(a)は、収納部材STに接続された状態の接続部材10の収納方向SDに沿った断面図である。図4(a)は、図3(a)のW-W線に沿った断面図である。なお、図4(a)及び後述する図4(b)においては、収納部材STの構成要素を破線で示し、部品PAを細い実線で示している。図4(a)に示すように、ガイド部12のガイド上部12Bは、ガイド高さHGが収納方向SDに沿って徐々に小さくなるように構成されている。これによって、部品PAの高さ方向における移動量が収納部材STに近づくに従って小さくなる。従って、収納方向SDに沿って部品PAの高さ方向における位置が定まっていく。 FIG. 4A is a cross-sectional view along the storage direction SD of the connection member 10 in a state of being connected to the storage member ST. FIG. 4A is a cross-sectional view taken along line WW in FIG. In FIG. 4A and later-described FIG. 4B, the constituent elements of the storage member ST are indicated by broken lines, and the part PA is indicated by a thin solid line. As shown in FIG. 4A, the guide upper portion 12B of the guide portion 12 is configured such that the guide height HG gradually decreases along the storage direction SD. As a result, the amount of movement of the component PA in the height direction becomes smaller as it approaches the storage member ST. Therefore, the position in the height direction of the part PA is determined along the storage direction SD.
 また、差込部11Bの上面は、載置面11Aと同一平面をなしている。つまり、差込部11Bの上面は載置面11Aを形成している。部品PAは、収納部材ST内において、接続部材10から収納部材STに移載される。また、差込部11Bの上面は、収納部材STに差し込まれた際には、リブRBの上面よりも高い位置に配置される。従って、部品PAは、移載時にリブRBに干渉されることがない。 Further, the upper surface of the insertion portion 11B is flush with the placement surface 11A. That is, the upper surface of the insertion part 11B forms the mounting surface 11A. The component PA is transferred from the connection member 10 to the storage member ST in the storage member ST. Moreover, the upper surface of the insertion part 11B is arrange | positioned in the position higher than the upper surface of the rib RB, when inserted in the storage member ST. Therefore, the part PA is not interfered with the rib RB at the time of transfer.
 また、差込部11Bは、収納方向SDに沿って厚さが薄くなるテーパ形状をなしている。すなわち、差込部11Bは、収納方向SDに沿って、上面の高さ位置を維持したままテーパ形状をなしている。差込部11Bがテーパ形状を有していることによって、接続部材10と収納部材STとが容易に接続される。 Further, the insertion portion 11B has a tapered shape in which the thickness decreases along the storage direction SD. In other words, the insertion portion 11B has a tapered shape while maintaining the height position of the upper surface along the storage direction SD. Since the insertion portion 11B has a tapered shape, the connection member 10 and the storage member ST are easily connected.
 図4(b)は、収納部材STに接続された状態の接続部材10の上面図である。部品PAは、載置面11A上に載置された後、収納方向SDに沿って移動する。また、部品PAが貫通孔11C上を通過する際には、部品PAの通過が光学センサなどのセンサによって検知される。そして、部品PAは、差込部11Bを通過した後、収納部材ST内に収納される。 FIG. 4B is a top view of the connection member 10 in a state of being connected to the storage member ST. After the component PA is placed on the placement surface 11A, it moves along the storage direction SD. Further, when the part PA passes through the through hole 11C, the passage of the part PA is detected by a sensor such as an optical sensor. Then, the part PA passes through the insertion part 11B and is then stored in the storage member ST.
 また、図4(b)に示すように、接続部材10のガイド幅WGはガイド部12によって徐々に狭まっていく。従って、部品PAは、接続部材10の載置面11Aを移動する際、徐々に幅方向の位置が定まっていく。このようにガイド高さHG及びガイド幅WGを収納方向SDに沿って小さくしていくことで、確実に部品PAが収納部材ST内に収納される。 Further, as shown in FIG. 4B, the guide width WG of the connecting member 10 is gradually narrowed by the guide portion 12. Therefore, when the component PA moves on the mounting surface 11A of the connection member 10, the position in the width direction is gradually determined. Thus, by reducing the guide height HG and the guide width WG along the storage direction SD, the component PA is reliably stored in the storage member ST.
 図5(a)は、収納口APを正面から見たときの接続部材10及び収納口APの位置関係を示す図である。図5(a)及び後述する図5(b)においては、収納部材STの構成要素を破線で示し、部品PAを細い実線で示している。また、部品PAにハッチングを施している。まず、ガイド側部12Aは、ガイド部12の収納側端部(収納部材ST側の端部)において収納部材ST内の幅WAよりも狭いガイド幅WGを有している。従って、収納口APにおける部品PAの幅方向の移動量は、収納口APの開口幅WA未満に抑制される。従って、収納口APで詰まることなくスムーズに部品PAが収納部材STに収納される。 FIG. 5A is a diagram showing a positional relationship between the connection member 10 and the storage port AP when the storage port AP is viewed from the front. In FIG. 5A and FIG. 5B described later, the constituent elements of the storage member ST are indicated by broken lines, and the part PA is indicated by a thin solid line. In addition, the part PA is hatched. First, the guide side portion 12A has a guide width WG that is narrower than the width WA in the storage member ST at the storage side end (the end on the storage member ST side) of the guide portion 12. Therefore, the movement amount of the part PA in the storage port AP in the width direction is suppressed to be less than the opening width WA of the storage port AP. Accordingly, the component PA is smoothly stored in the storage member ST without being blocked by the storage port AP.
 また、図5(a)に示すように、収納口APの底部を基準とした場合のリブRBの上面の高さを高さH2とすると、接続時の載置面11Aの高さH3は高さH2よりも大きい。次に、ガイド上部12Bは、載置面11A上を移動する際の部品PAの高さ位置を、載置面11Aからの収納部材ST内の高さH1未満に制限するように構成されている。すなわち、ガイド高さHGは、ガイド部12の収納側端部における部品PAの移動高さが高さH1未満となるように設定される。また、ガイド上部12Bは、載置面11Aに垂直な方向に対し、載置面11Aに向かって内側に傾斜している。ガイド上部12Bとガイド側部12Aとのなす傾斜角度θは、90°<θ<180°の範囲内である。このような傾斜角度θとすることで、ガイド上部12が部品PAの非接触部分NG2(図1(a))に接触することが抑制される。 Further, as shown in FIG. 5A, when the height of the upper surface of the rib RB with respect to the bottom of the storage port AP is a height H2, the height H3 of the mounting surface 11A at the time of connection is high. Greater than H2. Next, the guide upper portion 12B is configured to limit the height position of the component PA when moving on the placement surface 11A to less than the height H1 in the storage member ST from the placement surface 11A. . That is, the guide height HG is set so that the moving height of the part PA at the storage side end of the guide portion 12 is less than the height H1. The guide upper portion 12B is inclined inward toward the placement surface 11A with respect to the direction perpendicular to the placement surface 11A. The inclination angle θ formed by the guide upper portion 12B and the guide side portion 12A is in the range of 90 ° <θ <180 °. By setting it as such inclination | tilt angle (theta), it is suppressed that the guide upper part 12 contacts the non-contact part NG2 (FIG. 1 (a)) of components PA.
 仮に、傾斜角度θを90°とした場合、ガイド上部12Bは載置面11Aに平行に形成される。この場合、部品PAの非接触部分NG2がガイド上部12Bに接触する場合がある。しかし、本実施例においては、傾斜角度θは90°<θ<180°の範囲内に設定されている。従って、ガイド上部12Bに部品PAの非接触部分NG2が接触することなく、部品PAの高さ方向の移動を制限することができる。 If the inclination angle θ is 90 °, the upper guide portion 12B is formed parallel to the placement surface 11A. In this case, the non-contact part NG2 of the part PA may contact the guide upper part 12B. However, in the present embodiment, the inclination angle θ is set within a range of 90 ° <θ <180 °. Therefore, the movement of the part PA in the height direction can be limited without the non-contact part NG2 of the part PA contacting the guide upper part 12B.
 また、傾斜角度θが90°であると、ガイド上部12Bの下面と部品PAとが部分的に面接触によって接触する場合がある。一方、本実施例においては、傾斜角度θは90°<θ<180°の範囲内に設定されている。従って、載置面11A上を移動する部品PAは、ガイド上部12Bに対して、点接触又は線接触によって接触される。従って、部品PAの移動時におけるガイド部12と部品PAとの接触領域を小さくすることができる。 Further, if the inclination angle θ is 90 °, the lower surface of the guide upper portion 12B and the part PA may be in partial contact with each other by surface contact. On the other hand, in the present embodiment, the inclination angle θ is set within a range of 90 ° <θ <180 °. Therefore, the component PA moving on the placement surface 11A is brought into contact with the guide upper portion 12B by point contact or line contact. Therefore, the contact area between the guide part 12 and the part PA when the part PA is moved can be reduced.
 また、ガイド上部12Bは、部品PAが載置面11A上において最も傾斜した場合における部品PAの高さ位置を収納部材ST内の高さH1未満に制限する角度θで形成されている。部品PAが最も傾斜した場合の例を図5(b)に示す。図5(b)に示す例においては、部品PAは、部品の一端PA1(図5(b)の左側)においてガイド側部12Aの一方に接している。さらに、部品PAは、部品PAの他端PA2において、ガイド側部12Aの他方側のガイド上部12Bに接するまで傾斜している。 The guide upper portion 12B is formed at an angle θ that restricts the height position of the component PA when the component PA is most inclined on the placement surface 11A to less than the height H1 in the storage member ST. FIG. 5B shows an example in which the part PA is most inclined. In the example shown in FIG. 5B, the component PA is in contact with one of the guide side portions 12A at one end PA1 of the component (left side of FIG. 5B). Further, the component PA is inclined at the other end PA2 of the component PA until it contacts the guide upper portion 12B on the other side of the guide side portion 12A.
 本実施例においては、この場合でも、最も部品PAの移動高さの高い部分、すなわち、部品PAの他端PA2における高さ位置は、収納部材ST内の高さH1未満となる。これは、ガイド上部12Bの傾斜角度θを部品PAのサイズや載置面11Aの高さに応じて調節することで実現することができる。これによって、部品PAの収納部材STへの移載がよりスムーズなものとなる。なお、この場合についても、部品PAの他端PA2は、点接触又は線接触によってガイド上部12Bに接触することとなる。従って、部品PAとガイド上部12Bとの接触領域は少ないものとなる。また、部品PAの非接触部分NG2がガイド上部12Bに接触することが抑制される。 In this embodiment, even in this case, the highest moving part of the part PA, that is, the height position of the part PA at the other end PA2 is less than the height H1 in the storage member ST. This can be realized by adjusting the inclination angle θ of the guide upper portion 12B according to the size of the part PA and the height of the placement surface 11A. Thereby, the transfer of the component PA to the storage member ST becomes smoother. In this case as well, the other end PA2 of the component PA comes into contact with the guide upper portion 12B by point contact or line contact. Therefore, the contact area between the part PA and the guide upper part 12B is small. Further, the non-contact part NG2 of the part PA is suppressed from contacting the guide upper part 12B.
 本実施例においては、接続部材10が土台部11及びガイド部12を有している。また、土台部11は収納部材ST内に差し込まれる差込部11Bを有している。また、差込部11Bの上面が載置面11Aと同一平面をなしている。従って、部品PAを収納部材ST内にスムーズに移載することが可能となる。 In this embodiment, the connecting member 10 has a base portion 11 and a guide portion 12. Moreover, the base part 11 has the insertion part 11B inserted in storage member ST. Further, the upper surface of the insertion portion 11B is flush with the placement surface 11A. Therefore, the part PA can be smoothly transferred into the storage member ST.
 なお、接続部材10の材料としては、例えば、ステンレス鋼の他、金属又は樹脂等を用いることが可能である。製造工程や使用環境等を考慮すると、ステンレス鋼などの金属を用いて接続部材10を構成することが好ましい。また、本実施例における部品PAの形状や収納部材STの形状は一例に過ぎない。また、部品PAは電子部品に限らず、他の部品であってもよい。
[変形例]
 図6は、上記実施例1の変形例を示す図である。なお、上記実施例と同一又は等価な構成要素については同一の参照符号を付している。具体的には、図6は、リブRBを有していない収納部材ST1に接続された接続部材10を模式的に示す断面図である。部品PAに生ずる摩擦抵抗が低減することを考慮すると、収納部材STにはリブRBが設けられている(内部底面BTにリブRBを有する)ことが好ましい。しかし、接続部材10は、リブRBを有していない収納部材ST1に対しても接続されることができる。
In addition, as a material of the connection member 10, it is possible to use a metal or resin other than stainless steel, for example. In consideration of the manufacturing process, use environment, and the like, it is preferable to configure the connection member 10 using a metal such as stainless steel. Further, the shape of the part PA and the shape of the storage member ST in this embodiment are merely examples. Further, the component PA is not limited to an electronic component, and may be another component.
[Modification]
FIG. 6 is a diagram showing a modification of the first embodiment. Note that the same reference numerals are assigned to components that are the same as or equivalent to those in the above embodiment. Specifically, FIG. 6 is a cross-sectional view schematically showing the connection member 10 connected to the storage member ST1 that does not have the rib RB. Considering that the frictional resistance generated in the part PA is reduced, it is preferable that the housing member ST is provided with a rib RB (having the rib RB on the inner bottom surface BT). However, the connection member 10 can also be connected to the storage member ST1 that does not have the rib RB.
 図6に示すように、接続部材10の載置面11Aは、収納部材ST1に接続された際には、収納部材ST内の底部よりも高い位置に配置される。収納部材ST1に接続される場合、載置面11Aは、収納部材STの内部底面BTよりも高い位置に設けられていればよい。また、ガイド上部12Bは、部品PAのガイド高さHGが載置面11Aから収納口APの内部上面までの高さH1未満となるように形成されていればよい。 As shown in FIG. 6, the mounting surface 11 </ b> A of the connection member 10 is arranged at a position higher than the bottom in the storage member ST when connected to the storage member ST <b> 1. When connected to the storage member ST1, the placement surface 11A only needs to be provided at a position higher than the internal bottom surface BT of the storage member ST. The guide upper portion 12B only needs to be formed so that the guide height HG of the component PA is less than the height H1 from the placement surface 11A to the inner upper surface of the storage port AP.
 本変形例においては、収納部材ST1は、リブRBが設けられていない収納部材ST1にも接続部材10を接続することができる。また、リブRBが設けられていない収納部材ST1であっても、スムーズかつ確実に部品PAを収納部材ST1に収納することができる。 In this modification, the storage member ST1 can connect the connecting member 10 to the storage member ST1 that is not provided with the rib RB. Further, even if the storage member ST1 is not provided with the rib RB, the component PA can be stored smoothly and reliably in the storage member ST1.
 なお、本実施例及びその変形例においては、差込部11Bの上面が載置面11Aと同一平面をなしている場合について説明した。しかし、差込部11Bの上面は、載置面11Aと同一平面をなしている場合に限定されない。例えば、差込部11Aの上面は、収納口APへの接続時において載置面11Aよりも低い位置に配置されていてもよい。すなわち、差込部11Bの上面は、収納口APに接続された際に、収納部材ST内の底部よりも高くかつ載置面11A以下の高さを有していればよい。また、リブRBを有する収納部材ST1に接続される場合においては、載置面11Aと差込部11Bの上面との両方が、接続時にリブRBの上面よりも高い高さを有していれば良い。このように差込部11Bを構成することで、スムーズな部品PAの移載を行うことができる。 In addition, in the present Example and its modification, the case where the upper surface of the insertion part 11B was coplanar with the mounting surface 11A was demonstrated. However, the upper surface of the insertion portion 11B is not limited to the case where it is flush with the placement surface 11A. For example, the upper surface of the insertion portion 11A may be disposed at a position lower than the placement surface 11A when connected to the storage port AP. That is, the upper surface of the insertion portion 11B only needs to have a height that is higher than the bottom portion in the storage member ST and lower than the placement surface 11A when connected to the storage port AP. Further, in the case of being connected to the storage member ST1 having the rib RB, if both the placement surface 11A and the upper surface of the insertion portion 11B have a height higher than the upper surface of the rib RB at the time of connection. good. By configuring the insertion portion 11B in this way, it is possible to smoothly transfer the component PA.
 図7は、実施例2に係る収納装置50の構成を示すブロック図である。収納装置50は、実施例1及び変形例に係る接続部材10を有する。また、収納装置50は、接続部材10が収納部材STに接続された際、載置面11A上を移動する部品PA及び収納部材STの内部のいずれかに向けてイオン化ガスを供給する供給装置20を有する。また、収納装置50は、接続部材10内に載置された部品PAを検知して収納部材ST内に収納された部品PAの数量を計数する計数装置30を有する。 FIG. 7 is a block diagram illustrating a configuration of the storage device 50 according to the second embodiment. The storage device 50 includes the connection member 10 according to the first embodiment and the modification. Further, the storage device 50 supplies the ionized gas toward either the component PA moving on the mounting surface 11A or the interior of the storage member ST when the connecting member 10 is connected to the storage member ST. Have Further, the storage device 50 includes a counting device 30 that detects the part PA placed in the connection member 10 and counts the number of the parts PA stored in the storage member ST.
 本実施例は、実施例1の接続部材10に供給装置20及び計数装置30が追加された場合に相当する。部品PAは、載置面11A上を移動する際、及び収納部材ST内に収納された際に静電気を生じやすい。特に、収納部材ST内に収納された後の部品PAは、静電気を帯びやすい。これに対し、収納装置50は、載置面11A上を移動する部品PA、収納部材STの内部、又はその両方にイオン化ガスを供給する供給装置20を有する。すなわち、収納部材STへの収納前後の部品PAにイオン化ガスが供給される。従って、収納時に部品PAが除電される。従って、部品PAに静電気生ずることを抑制することが可能となる。従って、収納部材ST内の部品PAの品質を確保することが可能となる。 This embodiment corresponds to the case where the supply device 20 and the counting device 30 are added to the connection member 10 of the first embodiment. The component PA tends to generate static electricity when it moves on the placement surface 11A and when it is stored in the storage member ST. In particular, the part PA after being housed in the housing member ST is easily charged with static electricity. On the other hand, the storage device 50 includes a supply device 20 that supplies ionized gas to the part PA moving on the mounting surface 11A, the storage member ST, or both. That is, the ionized gas is supplied to the part PA before and after being stored in the storage member ST. Therefore, the part PA is neutralized during storage. Therefore, it is possible to suppress the occurrence of static electricity in the part PA. Therefore, it is possible to ensure the quality of the part PA in the storage member ST.
 また、収納装置50においては、接続部材10の土台部11に設けられた貫通孔11C(図3(a)などを参照)にセンサ(図示せず)を配置する。これによって、接続部材10を通過する部品PAを検知することが可能となる。また、収納口APの直前、すなわち収納部材ST内に収納される直前で部品PAの通過が検知される。従って、誤検知以外での誤計数の可能性が低い。また、上記したように、凹部11Dの形成領域以外の載置面11Aに貫通孔11Cを形成する。従って、確実に部品PAの通過を検知することが可能となる。従って、安定して部品PAの計数を行うことが可能となる。なお、本実施例においては、収納装置50が計数装置30を有する場合について説明したが、収納装置50が計数装置30を有する場合に限定されない。 Further, in the storage device 50, a sensor (not shown) is disposed in a through hole 11C (see FIG. 3A) provided in the base portion 11 of the connection member 10. As a result, it is possible to detect the part PA passing through the connecting member 10. Further, the passage of the part PA is detected immediately before the storage port AP, that is, immediately before being stored in the storage member ST. Therefore, the possibility of miscounting other than erroneous detection is low. Further, as described above, the through hole 11C is formed in the mounting surface 11A other than the formation region of the recess 11D. Accordingly, it is possible to reliably detect the passage of the part PA. Therefore, it is possible to stably count the component PA. In the present embodiment, the case where the storage device 50 includes the counting device 30 has been described. However, the present invention is not limited to the case where the storage device 50 includes the counting device 30.
10 接続部材
PA 部品
ST 収納部材
AP 収納口
RB リブ
11 土台部
11A 載置面
11B 差込部
11D 凹部
12 ガイド部
12A ガイド側部
12B ガイド上部
50 収納装置
20 供給装置
10 connection member PA part ST storage member AP storage port RB rib 11 base part 11A mounting surface 11B insertion part 11D recess 12 guide part 12A guide side part 12B guide upper part 50 storage apparatus 20 supply apparatus

Claims (10)

  1.  収納部材の収納口に接続され、部品を前記収納部材内に導く接続部材であって、
     前記収納部材に接続された際に前記収納部材内の底部よりも高い載置面を有する土台部と、
     前記載置面上に載置された前記部品の前記収納部材への移動をガイドするガイド部と、を有し、
     前記ガイド部は、前記ガイド部の収納側端部において前記収納部材内の幅よりも狭いガイド幅を有して前記部品の幅方向の移動を制限するガイド側部と、前記載置面上を移動する際の前記部品の高さ位置を前記収納部材内の高さ未満に制限するガイド上部とを有し、
     前記土台部は、前記収納口に接続された際に前記収納部材内に差し込まれる差込部を有し、前記差込部の上面は、前記収納口に接続された際に前記収納部材内の底部よりも高くかつ前記載置面以下の高さを有することを特徴とする接続部材。
    A connection member connected to the storage port of the storage member and guiding the component into the storage member;
    A base portion having a mounting surface higher than a bottom portion in the storage member when connected to the storage member;
    A guide portion for guiding movement of the component placed on the placement surface to the storage member;
    The guide portion includes a guide side portion that has a guide width narrower than a width in the storage member at a storage side end portion of the guide portion, and restricts movement of the component in the width direction. A guide upper portion that restricts the height position of the component when moving to less than the height in the storage member;
    The base portion has an insertion portion that is inserted into the storage member when connected to the storage port, and an upper surface of the insertion portion is provided in the storage member when connected to the storage port. A connection member having a height higher than that of the bottom portion and equal to or lower than the placement surface.
  2.  前記ガイド側部は、前記載置面の側部から前記載置面に垂直な方向に延びており、
     前記ガイド上部は、前記載置面に垂直な方向から前記載置面に向かって傾斜していることを特徴とする請求項1に記載の接続部材。
    The guide side portion extends in a direction perpendicular to the placement surface from the side portion of the placement surface,
    The connection member according to claim 1, wherein the guide upper portion is inclined toward the placement surface from a direction perpendicular to the placement surface.
  3.  前記ガイド上部と前記ガイド側部とのなす角度θは、90°<θ<180°の範囲内であることを特徴とする請求項2に記載の接続部材。 The connection member according to claim 2, wherein an angle θ formed by the upper portion of the guide and the side portion of the guide is within a range of 90 ° <θ <180 °.
  4.  前記ガイド上部は、前記部品が前記載置面上において最も傾斜した場合における前記部品の高さ位置を前記収納部材内の高さ未満に制限する角度で傾斜していることを特徴とする請求項2又は3に記載の接続部材。 The guide upper portion is inclined at an angle that restricts a height position of the component when the component is inclined most on the placement surface to less than a height in the storage member. The connection member according to 2 or 3.
  5.  前記接続部材は、前記収納部材内の底部において前記収納部材の収納方向に延びる一対のリブを有する前記収納部材の収納口に接続され、
     前記載置面と前記差込部の前記上面とは、前記収納部材に接続された際に前記リブの上面よりも高い高さを有することを特徴とする請求項1乃至4のいずれか1つに記載の接続部材。
    The connection member is connected to a storage port of the storage member having a pair of ribs extending in a storage direction of the storage member at a bottom portion in the storage member;
    5. The apparatus according to claim 1, wherein the placement surface and the upper surface of the insertion portion have a height higher than that of the upper surface of the rib when connected to the storage member. The connecting member according to 1.
  6.  前記ガイド側部は、前記ガイド幅が前記収納部材の収納方向に沿って徐々に小さくなるように構成されていることを特徴とする請求項1乃至5のいずれか1つに記載の接続部材。 The connecting member according to any one of claims 1 to 5, wherein the guide side portion is configured such that the guide width gradually decreases along a storage direction of the storage member.
  7.  前記ガイド上部は、前記載置面上における前記部品の移動高さが前記収納部材の収納方向に沿って徐々に小さくなるように構成されていることを特徴とする請求項6に記載の接続部材。 The connection member according to claim 6, wherein the guide upper portion is configured such that a moving height of the component on the placement surface is gradually reduced along a storage direction of the storage member. .
  8.  前記差込部は、前記収納部材の収納方向に沿って厚さが薄くなるテーパ形状をなしていることを特徴とする請求項1乃至7のいずれか1つに記載の接続部材。 The connection member according to any one of claims 1 to 7, wherein the insertion portion has a tapered shape in which a thickness is reduced along a storage direction of the storage member.
  9.  前記土台部は、前記載置面上において前記載置面から窪んだ凹部を有することを特徴とする請求項1乃至8のいずれか1つに記載の接続部材。 The connection member according to any one of claims 1 to 8, wherein the base portion has a recess recessed from the placement surface on the placement surface.
  10.  請求項1乃至9のいずれか1つに記載の接続部材と、
     前記接続部材が前記収納部材に接続された際、前記載置面上を移動する前記部品及び前記収納部材の内部のいずれかに向けてイオン化ガスを供給する供給装置と、を有することを特徴とする収納装置。
    A connecting member according to any one of claims 1 to 9,
    When the connection member is connected to the storage member, the component that moves on the placement surface and a supply device that supplies ionized gas toward any of the storage member are provided. Storage device.
PCT/JP2015/059120 2015-03-25 2015-03-25 Connection member and storage device WO2016151799A1 (en)

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JPS59194495A (en) * 1983-04-19 1984-11-05 株式会社東芝 Integrated circuit device containing vessel
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JPS60163799U (en) * 1984-04-09 1985-10-30 富士通株式会社 DIP type IC housing mechanism
JPH02180182A (en) * 1988-12-26 1990-07-13 Hitachi Ltd Magazine
JPH09226704A (en) * 1996-02-27 1997-09-02 Inter Pack:Kk Automatic bagging device for cup-form commodity

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