Feeder and component mounting equipment

The feeder design with integrated light guide paths facilitates easy attachment and detachment of passage members, addressing the challenge of component type changes in bulk feeders by enhancing operational efficiency.

JP7843445B2Active Publication Date: 2026-04-10PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-02
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing bulk feeders face difficulties in easily attaching and detaching passage members, which complicates the replacement process for different component types.

Method used

The feeder design incorporates one or more first and second light guide paths in the passage member and feeder body, allowing for easy attachment and detachment of the passage member without the need for wiring connections, using optical fibers to transmit light for component detection.

Benefits of technology

This configuration enables easier and more efficient attachment and detachment of passage members, improving the operational convenience and reducing the complexity of component replacement in bulk feeders.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a feeder or the like with a passage member capable of being easily attached and detached.SOLUTION: A feeder 20 includes: a feeder body part 70; an attachment 30 attached to a feeder body part 70 with a detachable manner and having a conveying path 60 for conveying a component P; and a component detection unit 80a provided in the feeder body part 70 for detecting the presence or absence of the component P in the conveyance path 60. In the attachment 30, one or more optical fibers 45a, 45b with one end that communicates with a position 48 to be detected for detecting the presence or absence of the component P in the conveyance path 60 are formed, and in the feeder body part 70, one or more optical fibers 81a, 81b that communicate with the other end of the one or more optical fibers 45a, 45b from the component detection unit 80a are formed.SELECTED DRAWING: Figure 4
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Description

Technical Field

[0001] The present disclosure relates to a feeder and a component mounting device.

Background Art

[0002] There is known a bulk feeder that is attached to a component mounting device for mounting components on a substrate and supplies components accommodated in a bulk state to the component mounting device (see Patent Document 1). Such a bulk feeder has a conveyance path for conveying components, and includes a passage member (attachment) that is detachable from the feeder main body and a sensor that detects the amount of components on the conveyance path. Then, based on the detection result of the sensor, the amount of components supplied onto the conveyance path is controlled.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] In a feeder such as the above-described bulk feeder, the passage member may be replaced for each type of component. In this case, it is desired that the passage member can be attached and detached more easily.

[0005] Therefore, the present disclosure provides a feeder and a component mounting device that can attach and detach a passage member more easily.

Means for Solving the Problems

[0006] A feeder according to one aspect of the present disclosure comprises a feeder body, a passage member detachably attached to the feeder body and having a transport path for transporting parts, and a parts detection unit provided in the feeder body for detecting the presence or absence of parts in the transport path, wherein one or more first light guide paths are formed in the passage member, one end of which leads to a detected position in the transport path for detecting the presence or absence of parts, and one or more second light guide paths are formed in the feeder body, leading from the parts detection unit to the other end of the one or more first light guide paths.

[0007] A component mounting apparatus according to one aspect of the present disclosure comprises a feeder and a component transfer unit for transferring the components supplied by the feeder. [Effects of the Invention]

[0008] According to one aspect of this disclosure, it is possible to realize a feeder or the like that allows for easier attachment and detachment of passage members. [Brief explanation of the drawing]

[0009] [Figure 1] Figure 1 is a diagram showing the configuration of a component mounting device according to an embodiment. [Figure 2] Figure 2 is a partial perspective view of a feeder according to an embodiment. [Figure 3] Figure 3 is a partial plan view showing a feeder according to an embodiment. [Figure 4] Figure 4 is a partially exploded perspective view showing the light guide path according to the embodiment. [Figure 5A] Figure 5A is a cross-sectional view of the feeder cut along the Va-Va cutting line shown in Figure 3. [Figure 5B] Figure 5B is a cross-sectional view of the feeder cut along the Vb-Vb cutting line shown in Figure 3. [Figure 6] Figure 6 shows the results of comparing the amount of light received. [Figure 7] Figure 7 is a diagram showing the operation of the feeder according to the embodiment. [Modes for carrying out the invention]

[0010] The embodiments will be described in detail below with reference to the drawings.

[0011] The embodiments described below are all comprehensive or specific examples. The numerical values, shapes, components, arrangement and connection configurations of components, steps, and the order of steps shown in the following embodiments are examples only and are not intended to limit this disclosure. Furthermore, any components in the following embodiments that are not described in an independent claim will be described as optional components.

[0012] Furthermore, each figure is a schematic diagram and not necessarily a strictly accurate representation. Therefore, for example, the scale may not necessarily match in each figure. Also, in each figure, substantially identical components are given the same reference numerals, and redundant explanations are omitted or simplified.

[0013] Furthermore, in this specification and drawings, the X, Y, and Z axes represent the three axes of a three-dimensional Cartesian coordinate system. In the embodiments, the X-axis direction indicates the transport direction of the substrate, and the Z-axis direction indicates the vertical direction of the component supply device. Plane view means viewing the feeder or component mounting device from the Z-axis direction.

[0014] Furthermore, in this specification, terms indicating relationships between elements such as orthogonal, parallel, and coincident, as well as terms indicating the shape of elements such as rectangles, and numerical values ​​and numerical ranges, do not represent only strict meanings, but also include substantially equivalent ranges, such as differences of a few percent (e.g., about 10%).

[0015] Furthermore, in this specification, ordinal numbers such as "first," "second," etc., do not mean the number or order of components unless otherwise specified, but are used to avoid confusion and to distinguish similar components.

[0016] (Embodiment) Hereinafter, the feeder and the like according to the present embodiment will be described with reference to FIGS. 1 to 7.

[0017] [1. Configuration of Component Mounting Device] First, the component mounting device in which the feeder according to the present embodiment is used will be described with reference to FIG. 1. FIG. 1 is a diagram showing the configuration of the component mounting device 100 according to the present embodiment.

[0018] The feeder 20 is mounted on the supply unit 80, and the supply unit 80 on which the feeder 20 is mounted is attached to the component mounting device 100. The supply unit 80 is a device for supplying components (for example, electronic components) used in the component mounting device 100.

[0019] Hereinafter, an example in which the component mounting device 100 is a device for mounting components on a substrate 103 which is an example of an object will be described. The component mounting device 100 has a function of taking out components from the feeder 20 that supplies components and transferring and mounting them on the substrate 103.

[0020] As shown in FIG. 1, the component mounting device 100 includes a supply unit 80, a base 101, a substrate transfer mechanism 102, a component mounting mechanism 108 including a mounting head 107, a substrate recognition camera 109, a component recognition camera 110, a power supply unit (not shown), and a control unit (not shown).

[0021] The substrate transfer mechanism 102 is disposed along the X-axis (along the transfer direction of the substrate 103) near the center of the base 101. The substrate transfer mechanism 102 transfers the substrate 103 carried in from the upstream side in the direction along the X-axis, and positions and holds it on the mounting stage set for performing the component mounting operation. The substrate transfer mechanism 102 is an example of a substrate holding unit that holds the substrate 103 on which the component held by the mounting head 107 is mounted.

[0022] The supply unit 80 is detachably mounted on a supply unit mounting section (not shown) of the base 101, which is the main body of the component mounting device 100. More specifically, a trolley (not shown) that constitutes the supply unit 80 is mounted on the supply unit mounting section. In this embodiment, the supply unit mounting sections are provided on both sides of the substrate transport mechanism 102 (Y-axis positive side and Y-axis negative side), and the supply unit 80 is also positioned on both sides of the substrate transport mechanism 102 (Y-axis positive side and Y-axis negative side).

[0023] Each supply unit 80 can accommodate multiple feeders 20 arranged in parallel along the X-axis (the transport direction of the substrate 103), and at least one feeder 20 (bulk feeder) is mounted in parallel. For example, the trolley has a feeder mounting section to which the feeders 20 are mounted, and the feeders 20 are mounted in this feeder mounting section. Furthermore, when the supply unit 80 is mounted on the base 101, each functional part of the supply unit 80 and the power supply unit are electrically connected, and power is supplied from the power supply unit to each functional part of the supply unit 80.

[0024] The feeder 20, located in the supply unit 80, supplies components to the supply position (for example, the supply position 54 shown in Figure 2, described later). The supply position 54, where the feeder 20 supplies components, is the suction position where the components are picked up by the mounting head 107. The feeder 20 transports the components toward the substrate 103 along the Y direction. The supply position 54 is represented, for example, in two-dimensional coordinates, but is not limited to this.

[0025] On the upper surface of the base 101, a Y-axis movable table 105 equipped with a linear drive mechanism is positioned in the Y-axis direction at the end in the X-axis positive direction. Two X-axis movable tables 106, also equipped with linear drive mechanisms, are connected to the Y-axis movable table 105 so as to be movable in the Y-axis direction. A mounting head 107 is mounted on each of the two X-axis movable tables 106 so as to be movable in the X-axis direction.

[0026] The mounting head 107 mounts (mounts) components held by the feeder 20 located in the supply unit 80 onto the circuit board 103. It can also be said that the mounting head 107 transfers components supplied to the supply position 54 of the feeder 20. The mounting head 107 is an example of a component transfer unit.

[0027] The mounting head 107 is equipped with a component suction nozzle 107a that can pick up and hold components and move up and down individually. The mounting head 107 includes a Z-axis lifting mechanism for raising and lowering the component suction nozzle 107a and a θ-axis rotation mechanism for rotating the component suction nozzle 107a around the nozzle axis. The component suction nozzle 107a is an example of a component holding part that holds components.

[0028] Furthermore, for example, the mounting head 107 may have multiple component suction nozzles 107a for collectively holding (e.g., picking up) components from each of the multiple feeders 20. For example, the multiple component suction nozzles 107a of the mounting head 107 may be arranged in a direction (X-axis direction) perpendicular to the component transport direction (Y-axis direction) in a plan view. The mounting head 107 may then pick up components collectively (e.g., simultaneously) from the supply positions 54 of the multiple feeders 20 using the multiple component suction nozzles 107a.

[0029] By driving the Y-axis moving table 105 and the X-axis moving table 106, the mounting head 107 moves in the X-axis and Y-axis directions. As a result, the two mounting heads 107 pick up components from the supply positions 54 of the feeders 20 located in the corresponding supply units 80 using component suction nozzles 107a. The substrate transport mechanism 102, the Y-axis moving table 105, the X-axis moving table 106, and the mounting heads 107 constitute the component mounting mechanism 108.

[0030] A component recognition camera 110 is positioned between each of the upper and lower supply units 80 and the substrate transport mechanism 102. When the mounting head 107, which has picked up a component from the feeder 20 located in the supply unit 80, moves above the component recognition camera 110, the component recognition camera 110 captures an image of the component held by the mounting head 107. By processing this image result using image recognition by a processing unit (not shown), component identification and position detection are performed. The image captured by the component recognition camera 110 is also used for adjusting the supply position 54 of the feeder 20 during production.

[0031] The mounting head 107 is equipped with a substrate recognition camera 109 located on the underside of the X-axis moving table 106, which moves integrally with the mounting head 107. As the mounting head 107 moves, the substrate recognition camera 109 moves above the substrate 103 positioned on the substrate transport mechanism 102 and images the substrate 103. The position of the substrate 103 is detected by recognizing the image result in the same way by image recognition processing in the processing unit. The substrate recognition camera 109 can also image the feeder 20 from above. The substrate recognition camera 109 can image the supply position 54 of each of the multiple feeders 20. The images captured by the substrate recognition camera 109 are also used for pre-production adjustment of the supply position 54 of the feeder 20.

[0032] The power supply unit supplies power to each functional part of the component mounting device 100. For example, the power supply unit supplies power to the power supply unit 80.

[0033] The control unit controls each component of the component mounting device 100. Based on the component detection results of the component detection unit (for example, the component detection unit 80a shown in Figure 4, described later), the control unit controls the supply of components to the transport path (for example, the transport path 60 shown in Figure 2, described later), and based on the component detection results of the component detection unit (for example, the component detection unit 80b shown in Figure 5B, described later), it controls the operation of the mounting head 107.

[0034] In the following, the direction in which parts are transported will also be simply referred to as the transport direction.

[0035] In the above description, an example was given in which the supply unit 80 (i.e., the trolley to which the feeder 20 is attached) is attached to the component mounting device 100. However, the feeder 20 may be directly attached to the component mounting device 100. In this case, the component mounting device 100 is provided with a feeder mounting section to which the feeder 20 is detachably attached.

[0036] [2. Feeder Configuration] Next, the feeder 20 used in the component mounting apparatus 100 described above will be explained with reference to Figures 2 to 5B. Figure 2 is a partial perspective view of the feeder 20 according to this embodiment. In Figure 2, the alignment section 41 and the transport path 60 (straight section 61 and attitude changing section 63) of the feeder 20 are shown in perspective, and the shutter 76 of the feeder body 70 is shown in perspective. The case 10 is also shown in Figure 2.

[0037] As shown in Figures 1 and 2, the feeder 20 supplies components housed in the case 10 (see Figure 2) to the mounting head 107 (see Figure 1) of the component mounting device 100 (see Figure 1). For example, the feeder 20 supplies the components housed in the case 10 to the supply position 54.

[0038] As shown in Figure 2, the feeder 20 comprises an attachment 30 and a feeder body 70. A case 10 for housing parts is attached to the attachment 30.

[0039] Case 10 is a hollow box that houses parts in a bulk state. Case 10 is detachably attached to attachment 30 and supplies the parts to be stored to feeder 20. For example, when case 10 is attached to feeder 20, it supplies the parts to feeder 20 by being shaken by vibrations or other means. Case 10 is an example of a parts storage section.

[0040] The components are, for example, electronic components such as resistors and capacitors, but are not limited to these; any object that can be mounted on an object such as a circuit board is acceptable. Furthermore, at least a portion of the component may be metal, and it may be electrically charged or magnetic. The metal portion, or the electrically charged or magnetic portion, may be exposed, for example. The metal portion may be, for example, a metal layer (plating layer). Also, the shape of the component may be, for example, a rectangular parallelepiped (for example, rectangular in plan view), but is not limited to this.

[0041] In the example in Figure 2, case 10 is mounted to the feeder 20 at an angle, but is not limited to this.

[0042] The attachment 30 is an example of a passage member and is, for example, detachably attached to the feeder body 70. The attachment 30 is connected to the case 10 and has a transport path 60 that transports parts (for example, multiple parts) housed in the case 10 to the supply position 54.

[0043] The alignment unit 41 is connected to the transport path 60 and aligns the multiple parts received from the case 10 before feeding them into the transport path 60. The method of aligning the parts in the alignment unit 41 is not particularly limited. For example, the alignment unit 41 may have a housing section with a through hole at the bottom that is connected to the transport path 60, and may have a configuration in which the multiple parts housed in the housing section are agitated with air and fed into the through hole.

[0044] The transport path 60 has one end (the end on the negative Y-axis side) connected to the alignment section 41 (specifically, a through hole), and transports the parts (for example, multiple parts) aligned by the alignment section 41 to the supply position 54. The transport path 60 in this embodiment is composed of a transparent, hollow (tubular) member, but at least a part of it may be composed of grooves. Furthermore, the transport path 60 may have at least one of the following properties: transparency, flexibility, and expandability.

[0045] Furthermore, the method by which the transport path 60 transports the parts is not particularly limited; the parts may be transported by air or by vibration.

[0046] The feeder body 70 is the part that is positioned relative to the feeder mounting section of the component mounting device 100.

[0047] Furthermore, the feeder body 70 is equipped with a shutter 76 that covers the area above the supply position 54 and can open and close the opening on the upper surface of the first passage member 50. Figure 2 shows the state in which the shutter 76 is blocking the opening above the supply position (closed state). By covering the area above the supply position 54 with the shutter 76, it is possible to prevent the component P from coming out of the feeder 20 when the feeder 20 is removed from the component mounting device 100, for example, when a component is placed at the supply position 54.

[0048] In a feeder 20 in which such an attachment 30 can be attached to and detached from the feeder body 70, for example, a sensor for detecting components may be attached to the attachment 30. In this case, the sensor receives power from the feeder body 70 or the component mounting device 100, so the sensor and the feeder body 70 or component mounting device 100 are connected by wiring.

[0049] Furthermore, in the case of the feeder 20, it is desirable that the attachment 30 be easily attached to and detached from the feeder body 70. However, as described above, when a sensor is attached to the attachment 30, attaching and detaching the attachment 30 to and from the feeder body 70 requires wiring connections and other work, making it difficult to attach and detach easily. Therefore, in this disclosure, a feeder 20 equipped with a sensor and capable of easily attaching and detaching the attachment 30 from the feeder body 70 is described below.

[0050] The configuration of the feeder 20 shown in Figure 2 will be further explained with reference to Figure 3. Figure 3 is a partial plan view of the feeder 20 according to this embodiment. Figure 3 is a view from above of a part of the feeder 20 shown in Figure 2. Note that in Figure 3, only optical fibers 45a and 45b of the optical fibers (optical fiber cable) provided by the feeder 20 are shown.

[0051] As shown in Figure 3, the attachment 30 has a main body 42, an opposing part 44, and optical fibers 45a and 45b.

[0052] The main body portion 42 is a member that extends in the Y-axis direction, and a part of the transport path 60 (for example, a straight section 61) is arranged thereon.

[0053] The opposing portion 44 is the portion where the optical fibers 45a and 45b are arranged. The opposing portion 44 has a first portion 44a on the X-axis positive side of the transport path 60 (straight portion 61) and a second portion 44b on the X-axis negative side of the transport path 60 (straight portion 61). The first portion 44a and the second portion 44b are integrally formed. Furthermore, the first portion 44a and the second portion 44b are arranged to face each other with at least a portion of the transport path 60 in between. For example, the first portion 44a and the second portion 44b are arranged to face each other with at least a portion of the support surface 60a (see Figure 5A) that supports the component P in between. The support surface 60a supports the component P either in contact or at a predetermined distance apart.

[0054] Optical fibers 45a and 45b are provided to detect the presence or absence of component P in the transport path 60 at the detection position 48. Optical fibers 45a and 45b are examples of light guide members, and the transmission paths of optical fibers 45a and 45b form a light guide path (for example, a first path section). As will be described in detail later, one of the optical fibers 45a and 45b emits light from the component detection unit 80a (see Figures 4 and 5A) to component P, and the other guides the received light to the component detection unit 80a. Details of optical fibers 45a, 45b and the component detection unit 80a will be described later.

[0055] The slit 47 is a hole provided to make the light emitted from the component P corresponding to the size of the component P, and is provided so as to straddle the transport path 60. The slit 47 is provided between one end of each optical fiber 45a and 45b and the outer surface of the transport path 60. The light emitted through the slit 47 is smaller than the component P. The size of the slit 47 may vary depending on the type of component (size of component P), so an attachment 30 with a slit 47 of a size corresponding to the type of component used in production is used in production. For example, multiple attachments 30 with different slit 47 sizes are prepared, and one attachment 30 selected from these multiple attachments 30 according to the type of component P supplied by the feeder 20 is mounted on the feeder body 70. The size of the slit 47 refers to the size (size of the hole) when the slit 47 is viewed from the X-axis direction.

[0056] Here, the configuration of the feeder 20, which allows the attachment 30 to be easily attached to and detached from the feeder body 70, will be described with reference to Figures 4 to 5B. Figure 4 is a partially exploded perspective view showing the light guide path according to this embodiment. Figure 4 is a perspective view showing the area around the opposing part 44 when the attachment 30 is removed from the feeder body 70. Also in Figure 4, the component detection unit 80a is simply illustrated as a block diagram. Figure 5A is a cross-sectional view of the feeder 20 cut along the Va-Va cutting line shown in Figure 3.

[0057] As shown in Figures 4 and 5A, in the feeder 20, a component detection unit 80a, to which wiring for power supply and other purposes is connected, is located on the feeder body 70. In other words, the attachment 30 does not have a component detection unit 80a. As a result, when attaching or detaching the attachment 30 from the feeder body 70, there is no need to connect any wiring, making it easy to attach and detach the attachment 30 to and from the feeder body 70.

[0058] The component detection unit 80a is provided in the feeder body 70 and detects the presence or absence of components P in the transport path 60. The component detection unit 80a is positioned, for example, in the transport path 60 upstream from the supply position 54 and detects when the container is full of components P. The component detection unit 80a is composed of a substrate, a light-emitting element (e.g., an LED) mounted on the substrate, a light-receiving element, an amplifier circuit, and a control circuit. Wiring for power supply, signal input / output, etc., is connected to the component detection unit 80a.

[0059] Furthermore, in order to enable the detection of component P at the detection position 48 using the component detection unit 80a, optical fibers 45a and 45b are arranged in the attachment 30, and optical fibers 81a and 81b are arranged in the feeder body 70. One optical guide path between the component detection unit 80a and the transport path 60 is formed by two optical fibers, optical fibers 45a and 81a, and the other optical guide path is formed by two optical fibers, optical fibers 45b and 81b.

[0060] Each of the optical fibers 45a and 45b has one end positioned at the detection location 48 of the attachment 30. It can also be said that each of the optical fibers 45a and 45b has one end connected to the detection location 48 of the attachment 30. Here, "connected" means that it is possible to emit light toward the detection location 48, or to receive light that has passed through the detection location 48.

[0061] The optical fiber 45a emits light from the light-emitting element of the component detection unit 80a, which has passed through the optical fiber 81a, toward the detection position 48 from one end. The optical fiber 45a is provided so that at least a portion of it is curved, and at the other end, it emits light incident on the Z-axis positive side toward the X-axis negative side. The other end of the optical fiber 45b may be flush with, for example, the lower surface of the attachment 30 (the surface on the feeder body 70 side).

[0062] The optical fiber 45b emits the incident light to the optical fiber 81b. One end of the optical fiber 45a (the output end) and one end of the optical fiber 45b (the incident end) are arranged facing each other, for example. In addition, the optical fiber 45b is provided so that at least a portion of it is curved, and emits light incident on the negative X-axis towards the negative Z-axis. The other end of the optical fiber 45b may be flush with the lower surface of the attachment 30 (the surface on the feeder body 70 side), for example.

[0063] In a plan view, the optical fibers 45a and 45b are arranged in a direction that intersects the transport direction of the transport path 60. In this embodiment, in a plan view, the optical fibers 45a and 45b are arranged perpendicular to the transport direction of the transport path 60. Alternatively, for example, the optical fiber 45a is arranged in the first part 44a and the optical fiber 45b is arranged in the second part 44b. The opposing part 44 can be said to sandwich the transport path 60 from the outside. As a result, when a component P is present at the detection position 48, the amount of light received by the optical fiber 45b decreases, so that the component detection unit 80a can detect the component P.

[0064] Furthermore, the optical guide path including the transmission paths of optical fibers 45a and 45b is an example of one or more first optical guide paths, the optical guide path including the transmission path of optical fiber 45a is an example of one of the first optical guide paths, and the optical guide path including the transmission path of optical fiber 45b is an example of the other first optical guide path.

[0065] With the attachment 30 mounted on the feeder body 70, the optical fiber 81a is connected to the other end (the Z-axis negative end) of the optical fiber 45a and guides the light emitted by the light-emitting element of the component detection unit 80a to the optical fiber 45a. Similarly, with the attachment 30 mounted on the feeder body 70, the optical fiber 81b is connected to the other end (the Z-axis negative end) of the optical fiber 45b and guides the light incident on one end of the optical fiber 45b to the light-receiving element of the component detection unit 80a.

[0066] The connection described here includes not only that the other end of optical fiber 45a and the other end of optical fiber 81a (the Z-axis positive end), and the other end of optical fiber 45b and the other end of optical fiber 81b (the Z-axis positive end), are in contact with each other, but also that they are arranged with a predetermined distance between them. It can also be said that each of the optical fibers 81a and 81b leads to the other ends of the optical fibers 45a and 45b, respectively.

[0067] Furthermore, the other end of optical fiber 45a and the other end of optical fiber 81a, and the other end of optical fiber 45b and the other end of optical fiber 81b are arranged to minimize light loss, for example, by facing each other. The optical guide path including the transmission paths of optical fibers 81a and 81b is an example of one or more second optical guide paths.

[0068] Furthermore, the other ends of the optical fibers 81a and 81b may be flush with, for example, the upper surface of the feeder body 70 (the surface on the attachment 30 side).

[0069] Note that the arrangement of optical fibers 45a and 45b is not limited to the arrangement shown in Figures 3 and 4. For example, optical fibers 45a and 45b may be arranged in the first portion 44a. In this case, the second portion 44b may have either a reflective portion (not shown) or an anti-reflective portion (not shown). In other words, the second portion 44b may have either a reflective portion or an anti-reflective portion.

[0070] The reflective section is, for example, a plate-shaped member that reflects the light emitted from the optical fiber 45a towards the optical fiber 45b side (for example, specular reflection). For example, the reflective section is preferably placed when the reflectivity of component P is low. The reflective section is formed from, for example, a metal plate, but is not limited to this. In this case, the component detection unit 80a detects component P when the amount of light received by the light receiving element falls below a predetermined amount.

[0071] Furthermore, the non-reflective portion is, for example, a plate-shaped member that does not reflect light emitted from the optical fiber 45a. For example, it is preferable to place the non-reflective portion when the reflectivity of component P is high. The non-reflective portion is formed by, for example, a plate-shaped member with low reflectivity (for example, a black-dyed plate-shaped member), but is not limited to this. In this case, the component detection unit 80a detects component P when the amount of light received by the light-receiving element exceeds a predetermined amount.

[0072] Note that each of the pair of slits 47 shown in Figure 5A is in communication with the optical fibers 45a and 45b, respectively, and is an example of a second path section.

[0073] Furthermore, if a reflective or non-reflective section is provided in the second section 44b, only the optical fiber 45a may be provided. In other words, there may be only one optical fiber. For example, the optical fiber 45a may be a common transmission path for both the emitted light and the received light.

[0074] As shown in Figure 5A, the optical fibers 45a and 45b are provided across the opposing section 44 and the attachment 30, and the attachment 30 has a fixing section 49a for fixing the other end of the optical fiber 45a and a fixing section 49b for fixing the other end of the optical fiber 45b. The feeder body section 70 also has a fixing section 79a for fixing the other end of the optical fiber 81a and a fixing section 79b for fixing the other end of the optical fiber 81b. The optical axes of the optical fibers 45a and 81a coincide, for example, and the optical axes of the optical fibers 45b and 81b coincide, for example.

[0075] Furthermore, as shown in Figure 4, the opposing portion 44 has a restricting portion 44c that restricts the movement of the transport path 60 (for example, the straight portion 61) in a direction perpendicular to the direction in which the transport path 60 extends (in the Y-axis direction) (restricts the degrees of freedom). In this embodiment, the restricting portion 44c is a through-hole in the transport path 60 that penetrates the opposing portion 44 in the Y-axis direction and has a size corresponding to the thickness of the transport path 60. By inserting the transport path 60 through the through-hole, the movement of the transport path 60 can be restricted.

[0076] Figure 5B is a cross-sectional view of the feeder 20 cut along the Vb-Vb cutting line shown in Figure 3.

[0077] As shown in Figure 5B, optical fibers 56a and 56b, etc., may be provided at the supply position 54 of component P. In other words, optical fibers 56a and 56b, etc., may be provided at the tip of the transport path 60. Specifically, optical fibers 56a and 56b, etc., are formed at the position of a groove 55 formed by a support surface 55a and opposing parts (first part 55b1 and second part 55b2) that are spaced apart and facing each other in the width direction (Y-axis direction) of the support surface 55a. In this case, the supply position 54 is an example of a detection position.

[0078] The component detection unit 80b is provided in the feeder body 70 and detects the presence or absence of component P in the transport path 60. For example, the component detection unit 80b detects the arrival (supply) of component P to the supply position 54. The configuration of the component detection unit 80b may be the same as that of the component detection unit 80a. Wiring for power supply, signal input / output, etc., is connected to the component detection unit 80b.

[0079] Furthermore, in order to enable the detection of component P at the supply position 54 using the component detection unit 80b, optical fibers 56a and 56b are arranged in the attachment 30, and optical fibers 82a and 82b are arranged in the feeder body 70. One light guide path between the component detection unit 80b and the groove 55 is formed by two optical fibers, optical fibers 56a and 82a, and the other light guide path is formed by two optical fibers, optical fibers 56b and 82b.

[0080] The configurations of optical fibers 56a, 56b, 82a, and 82b may be the same as those of optical fibers 45a, 45b, 81a, and 81b, and therefore the explanation is omitted.

[0081] Furthermore, a slit 57 is formed at one end of the optical fibers 56a and 56b. Each of the pair of slits 57 communicates with each of the optical fibers 56a and 56b, and is an example of a second path section. Each of the pair of slits 57 is located one end further than the pair of slits 47 and opens toward the detection position (supply position 54). The slits 57 are provided between one end of the optical fibers 56a and 56b and the groove 55.

[0082] The size of slit 57 may be the same as, for example, the size of slit 47.

[0083] Furthermore, as shown in Figure 5B, the attachment 30 has a fixing part 58a for fixing the other end of the optical fiber 56a and a fixing part 58b for fixing the other end of the optical fiber 56b, and the feeder body 70 has a fixing part 79c for fixing the other end of the optical fiber 82a and a fixing part 79d for fixing the other end of the optical fiber 82b. The optical axes of the optical fibers 56a and 82a coincide, for example, and the optical axes of the optical fibers 56b and 82b coincide, for example.

[0084] Furthermore, the shutter 76 shown in Figure 2 covers the opening above the component P shown in Figure 5B (the opening of the groove 55). Figure 5B shows the case where the shutter 76 is in the open position.

[0085] Now, the transport path 60 will be explained with reference to Figure 3.

[0086] The transport path 60 has a straight section 61 (first section and second section) and a posture changing section 63. The straight section 61 (first section and second section) and the posture changing section 63 are integrally formed.

[0087] The straight section 61 (first part) is formed to extend in the transport direction and transports the part P such that the longitudinal direction of the part P is aligned with the transport direction. The movement of the straight section 61 is restricted by the restricting section 44c.

[0088] The straight section 61 (second part) is located between the straight section 61 (first part) and the attitude changing section 63, and in a plan view, at least a portion of it extends in a direction that intersects the transport direction.

[0089] The orientation changing section 63 is provided between the straight section 61 and the supply position 54, and is a part provided for transporting the part P while changing the longitudinal direction of the part P to a direction intersecting the transport direction (for example, a direction perpendicular to it). The orientation changing section 63 is formed to be curved. The curvature angle of the orientation changing section 63 in a plan view is, for example, 90 degrees, but may be appropriately determined depending on the suction direction of the mounting head 107, etc.

[0090] The tip of the attitude changing section 63 is connected to the groove 55, and the part P transported by the transport path 60 is supplied to the groove 55. The position where the groove 55 is formed is also the supply position 54.

[0091] [3. Comparison results of light reception levels] Next, the detection accuracy of component P in the above-described light guide path will be explained with reference to Figure 6. Figure 6 shows the results of comparing the amount of light received. The direct return shown in Figure 6 represents the case where a single optical fiber is used to form the light guide path from the component detection unit to the detected position. The two-point splice return represents the case where two optical fibers are spliced ​​together to form the light guide path from the component detection unit to the detected position, as shown in Figures 5A and 5B. The two-point splice return (slit φ0.1) represents the case where two optical fibers are spliced ​​together to form the light guide path from the component detection unit to the detected position, and a φ0.1 mm slit is added at the detected position, as shown in Figures 5A and 5B. In addition, Figure 6 detects the intensity of the transmitted light from component P. Because a pull-up resistor is connected to the detection circuit, the voltage is low when there is no component and high when there is a component.

[0092] As shown in Figure 6, when component P is not in the detection position (indicated as "No component" in Figure 6), all three have similar voltages. Therefore, even when a light guide path is formed using at least two optical fibers, it is possible to detect the absence of component P from the detection position with the same level of accuracy as when a light guide path is formed using only one optical fiber.

[0093] Furthermore, when component P is in the detection position (indicated as "Component Present" in Figure 6), all three have similar voltages (for example, the voltage change is similar depending on whether component P is present or not). Therefore, even when a light guide path is formed using at least two optical fibers, it is possible to detect the presence of component P in the detection position with the same level of accuracy as when a light guide path is formed using only one optical fiber.

[0094] As described above, even in the case of two-point jointed return and two-point jointed return (slit φ0.1), the presence or absence of part P can be detected with the same level of accuracy as in the case of a straight return.

[0095] [4. Feeder Operation] Next, the operation of the feeder 20 configured as described above will be explained with reference to Figure 7. Figure 7 is a diagram showing the operation of the feeder 20 according to this embodiment. Figure 7 shows the operation of the component detection unit 80a to detect component P.

[0096] As shown in Figure 7, first the feeder 20 supplies components P to the transport path 60 based on control commands from the control unit (not shown) of the component mounting device 100 (S101).

[0097] Next, the component detection unit 80a determines whether or not there is a component P at the detection position 48 (S102). In step S102, light emitted from the light-emitting element passes through the optical fibers 81a and 45a and the slit 47 and is emitted toward the detection position 48, and light from the detection position 48 side passes through the slit 47 and the optical fibers 45b and 81b and is incident on the light-receiving element. The control circuit of the component detection unit 80a determines the presence or absence of component P according to the amount of light received by the light-receiving element.

[0098] Next, if the control circuit determines that component P is present (Yes in S102), it determines whether the container is full of component P between the detected position 48 and the supply position 54 (S103). For example, if the control circuit detects the presence of component P for a predetermined time or longer, it may determine that the container is full because component P has not moved towards the supply position 54.

[0099] If the control circuit determines that component P is full (Yes in S103), it stops supplying component P to the transport path 60 (S104) and returns to step S103. For example, the control circuit outputs information indicating that it is full to the control unit of the component mounting device 100, and after a predetermined time has elapsed, it performs the determination in step S103. If the control circuit determines that component P is not full (No in S103), it returns to step S101. As a result, the supply of component P to the transport path 60 continues.

[0100] Furthermore, if the control circuit determines that there is no component P (No in S102), it determines whether there is a jam or shortage of component P (S105). The control circuit may make the determination in step S102 based on a combination of the sensing results of other sensors provided on the feeder 20 (for example, the detection result of component P by the component detection unit 80b) and the sensing result of the detection position 48. For example, the control circuit may determine that there is a shortage of component P if there is no component P at the supply position 54 and it is also detected that there is no component P at the detection position 48. For example, the control circuit may determine that there is a component if there is no component P at the supply position 54 but it is detected that there is a component P at the detection position 48. The determination in step S102 may also be made based on the sensing results of other sensors provided on the feeder 20 (such as a sensor for detecting a jam of component P and a sensor for detecting a shortage of component). The control circuit may, for example, use the determination of "No" in step S102 as a trigger to acquire the sensing result of the other sensor, and then make the determination in step S105 based on the acquired sensing result.

[0101] Next, if the control circuit determines that there is at least one of the following: a jam in part P or a shortage of part P (Yes in S105), it causes a notification to indicate that at least one of these has occurred (S106). The control circuit may provide notification, for example, by using a warning light or sound provided on the feeder 20 or the part mounting device 100, or it may transmit information indicating that at least one of these has occurred to the operator's terminal device. If the control circuit determines that there is neither a jam in part P nor a shortage of part P (No in S105), it returns to step S101. As a result, the supply of part P to the transport path 60 continues.

[0102] Note that the component detection unit 80b does not determine whether the container is full or not when detecting component P. If the result in step S102 is Yes, the processing of the component detection unit 80b ends. Also, the determination of Yes in step S102 triggers the component suction nozzle 107a to pick up component P.

[0103] [5. Effects, etc.] As described above, the feeder 20 according to this embodiment comprises a feeder body 70, an attachment 30 (an example of a passage member) that is detachably attached to the feeder body 70 and has a transport path 60 for transporting parts P, and a parts detection unit 80a provided on the feeder body 70 for detecting the presence or absence of parts P in the transport path 60. The attachment 30 has one or more first light guide paths (for example, light guide paths including at least one transmission path of optical fibers 45a and 45b) with one end leading to a detection position 48 for detecting the presence or absence of parts P in the transport path 60, and the feeder body 70 has one or more second light guide paths (for example, light guide paths including at least one transmission path of optical fibers 81a and 81b) leading from the parts detection unit 80a to the other end of one or more first light guide paths.

[0104] As a result, a component detection unit 80a to which wiring for power and other purposes is connected is provided on the feeder body 70, eliminating the need to perform wiring connection work when attaching or detaching the attachment 30 to or from the feeder body 70. Therefore, a feeder 20 can be realized in which the attachment 30 can be attached and detached more easily.

[0105] Furthermore, since light from the component detection unit 80a is emitted to the detection position 48 by at least one of the optical fibers 45a and 45b and at least one of the optical fibers 81a and 81b, and the light that has passed through the detection position 48 is incident on the component detection unit 80a, component P can be detected. In other words, the feeder 20 can achieve both easier attachment and detachment of the attachment 30 and detection of component P.

[0106] Furthermore, the transport path 60 extends in the transport direction of the component P and has a support surface 60a that supports the component P, and the attachment 30 has an opposing portion 44 consisting of a first portion 44a and a second portion 44b that are provided facing each other with at least a part of the support surface 60a in between. One of the one or more first optical guide paths (for example, an optical guide path including the transmission path of the optical fiber 45a) is formed in the first portion 44a.

[0107] As a result, the component detection unit 80a can detect component P using one of the first light guide paths located in the first part.

[0108] Furthermore, the transport path 60 includes a light-transmitting hollow member, and the opposing portion 44 sandwiches the transport path 60 from the outside, with one or more first light guide paths formed in the opposing portion 44 of the attachment 30.

[0109] As a result, the component detection unit 80a can detect component P in the hollow transport path 60.

[0110] Furthermore, the opposing section 44 has a restricting section 44c that restricts the movement of the transport path 60 in a direction perpendicular to the transport direction of the transport path 60.

[0111] As a result, the movement of the transport path 60 is restricted, allowing the component detection unit 80a to detect component P more reliably.

[0112] Furthermore, the transport path 60 includes a groove 55 formed from a support surface 55a and opposing parts (first part 55b1 and second part 55b2), and one or more first light guide paths are formed in the opposing parts of the attachment 30 that form the groove 55.

[0113] As a result, the component detection unit 80a can detect component P in the groove-shaped transport path 60.

[0114] Furthermore, one or more first optical guide paths may include another first optical guide path (for example, an optical guide path including the other of optical fibers 45a and 45b), and the other first optical guide path may be formed in the second portion 44b.

[0115] As a result, the component detection unit 80a can detect component P using light that has passed through the detection position 48.

[0116] Furthermore, either a reflective portion or an anti-reflective portion may be formed in the second portion 44b.

[0117] As a result, the component detection unit 80a can detect component P using reflected light from component P or reflected light from a reflective part.

[0118] Furthermore, one or more first light guide paths have one or more first path sections (for example, at least one transmission path of optical fibers 45a and 45b) and a slit 47 (an example of one or more second path sections) that is provided on one end side of the one or more first path sections and opens toward the detection position 48, and the size of the slit 47 is a size corresponding to the type of component P.

[0119] As a result, the part detection unit 80a has a slit 47 formed in a size corresponding to the type of part P, which allows for more reliable detection of the part P.

[0120] Furthermore, as described above, the component mounting apparatus 100 according to this embodiment comprises the feeder 20 and a mounting head 107 (an example of a component transfer unit) that transfers the components P supplied by the feeder 20.

[0121] This produces the same effect as feeder 20.

[0122] (Other embodiments) Although a feeder and the like according to one or more embodiments has been described above based on embodiments, this disclosure is not limited to these embodiments. Without departing from the spirit of this disclosure, various modifications that a person skilled in the art could conceive of are also included in this disclosure, as well as forms constructed by combining components from different embodiments.

[0123] For example, in the above embodiment, an example was described in which the object is a circuit board, but it is not limited to this, and any object on which components can be mounted is acceptable, for example, other components on which components can be mounted.

[0124] Furthermore, while the above embodiment described an example in which a bulk case for storing bulk components is attached to the feeder, it could also be a taping case for storing components in a wound state, such as a carrier tape with components attached. The taping case is an example of a component storage section. Thus, the component storage section is not limited to storing components in bulk.

[0125] Furthermore, although the above embodiment describes a configuration in which an alignment section is provided in the preceding stage of the transport path, the configuration of the feeder is not limited to this. The feeder only needs to have a configuration that aligns the parts before they reach the supply position, and for example, it may be a configuration that aligns the parts by moving them into a groove at the supply position using vibration.

[0126] Furthermore, although the above embodiment describes an example in which a light guide path for detecting the presence or absence of a component is formed at both the opposing part and the supply position, the invention is not limited to this, and it is sufficient that a light guide path is formed at at least one of the opposing part and the supply position. In addition, the light guide path may be formed at a position other than the opposing part and the supply position.

[0127] Furthermore, the one or more first optical guide paths and the one or more second optical guide paths are not limited to being formed by including optical fiber transmission paths, but may also be formed by spaces (e.g., holes) formed in the attachment and the feeder body.

[0128] Furthermore, although the above embodiment describes an example where the restricting portion is a through-hole, the invention is not limited to this. For example, the movement of the transport path may be restricted by sandwiching the transport path between another member, which does not have a light guide path formed thereon, and the opposing portion. In this case, the restricting portion is realized by the other member and the opposing portion.

[0129] Furthermore, in the above embodiment, each component may be implemented by being composed of dedicated hardware or by executing a software program suitable for each component. Each component may also be implemented by a program execution unit such as a CPU or processor reading and executing a software program recorded on a recording medium such as a hard disk or semiconductor memory.

[0130] Furthermore, the order in which each step in the flowchart is performed is illustrative for the purpose of specifically illustrating this disclosure, and may be in a different order. Also, some of the above steps may be performed simultaneously (in parallel) with other steps, and some of the above steps may not be performed.

[0131] Furthermore, the division of functional blocks in the block diagram is just one example; multiple functional blocks can be implemented as a single functional block, a single functional block can be divided into multiple parts, or some functions can be moved to other functional blocks. In addition, the functions of multiple functional blocks with similar functions can be processed in parallel or time-sharing by a single piece of hardware or software.

[0132] Furthermore, these general or specific embodiments may be implemented in a system.

[0133] Furthermore, one aspect of this disclosure may be a computer program that causes a computer to perform each characteristic step included in the part detection method shown in Figure 7.

[0134] Furthermore, for example, the program may be a program to be executed by a computer. Also, in one aspect of this disclosure, such a program may be recorded on a computer-readable non-temporary recording medium. For example, such a program may be recorded on a recording medium and distributed or made available. For example, by installing the distributed program on a device having another processor and having that processor execute the program, it becomes possible to have that device perform the above-mentioned processes.

[0135] (Note) (Technology 1) The feeder main body and A passage member that is detachably attached to the feeder body and has a transport path for transporting parts, The feeder body is provided with a component detection unit that detects the presence or absence of the component in the transport path, One or more first light guide paths are formed in the passage member, one end of which leads to a detection position in the transport path for detecting the presence or absence of the component. One or more second light guide paths are formed in the feeder body, leading from the component detection unit to the other end of the one or more first light guide paths. feeder.

[0136] (Technology 2) The transport path extends in the direction of transport of the parts and has a support surface that supports the parts. The passage member has opposing parts consisting of a first part and a second part that are provided facing each other with at least a part of the support surface in between, One of the one or more first light guide paths is formed in the first portion. The feeder described in Technical 1.

[0137] (Technology 3) The transport path includes a hollow member that is translucent, The opposing portion sandwiches the transport path from the outside, One or more first light guide paths are formed in the opposing portion of the passage member. The feeder described in Technical 2.

[0138] (Technology 4) The opposing portion has a restricting portion that restricts the movement of the transport path in a direction perpendicular to the transport direction of the transport path. The feeder described in Technical 3.

[0139] (Technology 5) The transport path includes a groove formed from the support surface and the opposing portion. One or more first light guide paths are formed in the opposing portion of the passage member that forms the groove. A feeder as described in any of Techniques 2 to 4.

[0140] (Technology 6) The one or more first light guide paths further include another first light guide path, The other first light guide path is formed in the second portion. A feeder as described in any of Technical 2 to 5.

[0141] (Technology 7) In the second portion, either a reflective portion or a non-reflective portion is formed. A feeder as described in any of Technical 2 to 5.

[0142] (Technology 8) The one or more first light guide paths have one or more first path portions and one or more second path portions provided on one end side of the one or more first path portions and opening toward the detection position, The size of the second path portion is a size corresponding to the type of component. A feeder as described in any of Technical 1 to 7.

[0143] (Technology 9) A feeder described in any of the technologies 1 to 8, The system includes a component transfer unit for transferring the components supplied by the feeder, Component mounting equipment. [Industrial applicability]

[0144] This disclosure is useful for component mounting equipment and the like for producing mounted circuit boards by mounting components onto a substrate. [Explanation of Symbols]

[0145] 10 cases 20 feeders 30 Attachments (Passageway Components) 41 Alignment section 42 Main body 44 Opposite section 44a, 55b1 first part 44b, 55b2 second part 44c Regulatory Department 45a, 45b, 56a, 56b Optical fiber (first optical guide path, first path section) 47, 57 Slits (second path section) 48 Detected location 49a, 49b, 58a, 58b, 79a, 79b, 79c, 79d Fixed part 54 Supply position 55 Groove 55a, 60a support surface 60 Conveyor paths 61 Straight section 63 Posture Change Unit 70 Feeder main unit 76 shutters 80 supply units 80a, 80b Component detection unit 81a, 81b, 82a, 82b Optical fiber (second optical guide path) 100 component mounting equipment 101 Base 102 Substrate transport mechanism 103 circuit board 105 Y-axis moving table 106 X-axis moving table 107 Mounting head (component transfer unit) 107a Parts suction nozzle 108 Component mounting mechanism 109 Circuit board recognition camera 110 Part Recognition Camera P parts

Claims

1. The feeder main body and A passage member that is detachably attached to the feeder body and has a transport path for transporting parts, The feeder body is provided with a component detection unit that detects the presence or absence of the component in the transport path, One or more first light guide paths are formed in the passage member, one end of which leads to a detection position in the transport path where the presence or absence of the component is detected. One or more second light guide paths are formed in the feeder body, leading from the component detection unit to the other end of the one or more first light guide paths. feeder.

2. The transport path extends in the direction of transport of the parts and has a support surface that supports the parts. The passage member has opposing parts consisting of a first part and a second part that are provided facing each other with at least a part of the support surface in between, One of the one or more first light guide paths is formed in the first portion. The feeder according to claim 1.

3. The transport path includes a hollow member that is translucent, The opposing portion sandwiches the transport path from the outside, One or more first light guide paths are formed in the opposing portion of the passage member. The feeder according to claim 2.

4. The opposing portion has a restricting portion that restricts the movement of the transport path in a direction perpendicular to the transport direction of the transport path. The feeder according to claim 3.

5. The transport path includes a groove formed from the support surface and the opposing portion. One or more first light guide paths are formed in the opposing portion of the passage member that forms the groove. The feeder according to any one of claims 2 to 4.

6. The one or more first light guide paths further include another first light guide path, The other first light guide path is formed in the second portion. The feeder according to any one of claims 2 to 4.

7. In the second portion, either a reflective portion or a non-reflective portion is formed. The feeder according to any one of claims 2 to 4.

8. The one or more first light guide paths have one or more first path portions and one or more second path portions provided on one end side of the one or more first path portions and opening toward the detection position, The size of the second path portion is a size corresponding to the type of component. The feeder according to any one of claims 1 to 4.

9. A feeder according to any one of claims 1 to 4, The system includes a component transfer unit for transferring the components supplied by the feeder, Component mounting equipment.

Citation Information

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