The present description discloses a component mounting machine.
In the conventional art, there has been proposed a component mounting machine including a head on which a component is mounted, a rail that slidably guides the head in an X-axis direction, an X beam that extends in the X-axis direction and has the rail attached thereto and is made of aluminum or an aluminum alloy, a Y beam that slidably guides the X beam in a Y-axis direction, and a reinforcing member that is made of carbon fiber reinforced plastic or aramid fiber reinforced plastic and is attached to the X beam (for example, refer to Patent Literature 1).
In the component mounting machine described above, the weight reduction of the X beam is insufficient, and there is a limit to the high-speed movement of the X beam. In addition, it is difficult to process members such as carbon fiber reinforced plastic, and if a shape thereof becomes complicated, the manufacturing cost increases.
A main object of the present disclosure is to provide a component mounting machine that is capable of reducing the weight of a beam member and reducing the manufacturing cost.
The present disclosure employs the following means in order to achieve the above-described main object.
A summary of a component mounting machine of the present disclosure is a component mounting machine for mounting a component that includes a head configured to pick up the component, a pair of first axis linear guides configured to extend in a first axis direction, a beam member made of carbon fiber reinforced plastic or aramid fiber reinforced plastic in a rectangular tubular shape to extend in a second axis direction intersecting the first axis, having both end portions bridged between the pair of first axis linear guides, and configured to move in the first axis direction, and a pair of second axis linear guides disposed on the beam member to extend in the second axis direction and configured to guide the head movably in the second axis direction.
In the component mounting machine of the present disclosure, the beam member is made of carbon fiber reinforced plastic or aramid fiber reinforced plastic in a rectangular tubular shape. Accordingly, weight reduction can be achieved while ensuring rigidity. As a result, it is possible to further speed up the movement of the head. Furthermore, since the simple shape facilitates processing, the manufacturing cost can be reduced.
Next, an embodiment of the present disclosure will be described with reference to the drawings.
As illustrated in
The board conveyance device has a pair of front and rear conveyor belts and a motor that drives the conveyor belts to rotate. The board conveyance device conveys board S on the conveyor belt from left to right by driving the conveyor belt by the motor. The board conveyance device may include multiple lanes for conveying board S in a width direction orthogonal to the board conveyance direction. In addition, the board conveyance device may convey board S such that multiple boards S are arranged in the board conveyance direction.
First and second heads 20a and 20b have nozzles for picking up components. As illustrated in
First and second beam members 21a and 21b (beam members 21) are long members extending in the left-right direction (X axis), are bridged over pair of left and right iron Y-axis linear guides 51 (guide rails), which are disposed parallel to each other and are shared with each other, and are movable in the front-rear direction (Y axis) along pair of Y-axis linear guides 51. As illustrated in
In the present embodiment, X-axis linear guide 31 is formed to be hollow. Head 20 is supported by beam member 21 to be movable left and right along X-axis linear guide 31. Beam member 21 is made of CFRP or AFRP, X-axis linear guide 31 is formed hollow, and Y-axis block member 22 is made of aluminum or an aluminum alloy, so that it is possible to reduce the weight of these members, and beam member 21 can be moved at high speed. In addition, by forming beam member 21 in a simple rectangular tubular shape, it is possible to facilitate processing with CFRP or AFRP and reduce manufacturing cost.
First X-axis moving device 30a moves first head 20a to the left-right direction (X axis). Second X-axis moving device 30b moves second head 20b to the left-right direction (X axis). As illustrated in
As illustrated in
In the present embodiment, X-axis linear motor 32 is configured as a flat type linear motor including X-axis stator 33 attached to a side surface of beam member 21 and X-axis mover 34 disposed to face X-axis stator 33 at a predetermined interval in the front-rear direction. X-axis stator 33 has multiple permanent magnets arranged between pair of upper and lower X-axis linear guides 31 on the side surface of beam member 21 such that polarities of the N poles and the S poles are alternately different along X-axis linear guides 31. X-axis mover 34 includes 3×n cores (n is a natural number, for example, a value of 3) each formed by laminating electromagnetic steel plates, and 3×n coils each wound around the corresponding cores. X-axis mover 34 is supported by X-axis guide nuts 36, which are disposed on pair of upper and lower X-axis linear guides 31, respectively, and moves to the left-right direction (X axis) by applying a three-phase alternating current to the 3×n coils. As illustrated in
As illustrated in
In addition, as illustrated in
First Y-axis moving device 50a moves first beam member 21a in the front-rear direction (Y axis). Second Y-axis moving device 50b moves second beam member 21b in the front-rear direction (Y axis). As illustrated in
As illustrated in
In addition, Y-axis linear motors 52 on the left and right sides of second Y-axis moving device 50b operate by receiving electric power supply through a second Y-axis power cable supported by second Y-axis cableveyor 17b. Second Y-axis cableveyor 17b is installed above Y-axis linear guide 51 on the left side of pair of left and right Y-axis linear guides 51. Then, a first end of second Y-axis cableveyor 17b is disposed substantially in the center in the front-rear direction and is fixed to a power box (not illustrated) on the left side to which the second Y-axis power cable is connected, and a second end is fixed to Y-axis block member 22 on the left side of second beam member 21b to extend in the front-rear direction and follow the movement of second beam member 21b in the front-rear direction. The second Y-axis power cable extends from Y-axis block member 22 on the left side to Y-axis block member 22 on the right side through the inside of second beam member 21b, and supplies electric power to Y-axis linear motor 52 (Y-axis mover 54) on the left side, which is fixed to Y-axis block member 22 on the left side, and Y-axis linear motor 52 (Y-axis mover 54) on the right side, which is fixed to Y-axis block member 22 on the right side.
As described above, in the present embodiment, since first Y-axis cableveyor 17a is disposed on the left side and second Y-axis cableveyor 17b is disposed on the right side, it is possible to prevent first Y-axis cableveyor 17a and second Y-axis cableveyor 17b from interfering with each other when first and second heads 20a and 20b sharing pair of left and right Y-axis linear guides 51 are moved.
As illustrated in
As illustrated in
As illustrated in
As illustrated in
In addition, as illustrated in
Furthermore, multiple grooves 60r extending in the front-rear direction in parallel with each other are formed on the upper surface of case 60c of Y-axis cooling device 60, intake fan 66 is installed as needed on a first end side in the front-rear direction of the upper surface of case 60c, and exhaust fan 67 is installed as needed on a second end side in the front-rear direction. Groove 60r forms an air flow path in a state where the upper surface of case 60c and Y-axis block member 22 are joined. Air drawn in by intake fan 66 passes through an air passage formed on the upper surface of case 60c, exchanges heat with the heat transferred from Y-axis mover 54 to case 60c of Y-axis cooling device 60, and is discharged from exhaust fan 67.
In addition, as illustrated in
Here, the correspondence relationship between the constituent elements of the embodiment and the constituent elements of the present disclosure described in the scope of the claims will be clarified. Head 20 (first head 20a, second head 20b) of the embodiment corresponds to a head, pair of left and right Y-axis linear guides 51 correspond to a pair of first axis linear guides, beam member 21 (first beam member 21a, second beam member 21b) corresponds to a beam member, and pair of upper and lower X-axis linear guides 31 correspond to a pair of second axis linear guides. In addition, Y-axis block member 22 corresponds to a first axis block member, Y-axis stator 53 corresponds to a first axis stator, Y-axis mover 54 corresponds to a first axis mover, and Y-axis linear motor 52 corresponds to a first axis linear motor. Three Y-axis guide nuts 56 correspond to three guide nuts. X-axis linear scale 38 corresponds to a linear scale. First head 20a corresponds to a first head, second head 20b corresponds to a second head, first beam member 21a corresponds to a first beam member, second beam member 21b corresponds to a second beam member, first Y-axis moving device 50a corresponds to a first first-axis moving device, second Y-axis moving device 50b corresponds to a second first-axis moving device, first Y-axis cableveyor 17a corresponds to a first cableveyor, and second Y-axis cableveyor 21b corresponds to a second cableveyor. In addition, pair of Y-axis block members 22 correspond to a pair of first axis block members, pair of Y-axis linear motors 52 correspond to a pair of first axis linear motors, and Y-axis cooling device 60 corresponds to a first axis cooling member. In addition, X-axis linear motor 32 corresponds to a second axis linear motor, and X-axis cooling device 40 corresponds to a second axis cooling member.
It is needless to say that the present disclosure is not limited in any way to the above-described embodiment, and the present disclosure can be embodied in various aspects as long as the aspects fall within the technical scope of the present disclosure.
For example, in the above-described embodiment, component mounting machine 10 includes two heads 20 (first and second heads 20a and 20b), but may include a single head. In this case, component mounting machine 10 may include one beam member 21, one X-axis moving device 30, and one Y-axis moving device 50.
As described above, in the component mounting machine of the present disclosure, the beam member is made of carbon fiber reinforced plastic or aramid fiber reinforced plastic in a rectangular tubular shape. Accordingly, weight reduction can be achieved while ensuring rigidity. As a result, it is possible to further speed up the movement of the head. Furthermore, since the simple shape facilitates processing, the manufacturing cost can be reduced.
In addition, the component mounting machine of the present disclosure can also adopt the following configuration. That is, the component mounting machine of the present disclosure may include a pair of first axis block members each made of aluminum or an aluminum alloy and configured to move on a corresponding first axis linear guide of the pair of first axis linear guides and support a corresponding end portion of the beam member, and a pair of first axis linear motors each including a first axis stator extending along a corresponding first axis linear guide and a first axis mover fixed to a corresponding first axis block member to face the first axis stator at a predetermined interval. With this configuration, the beam member can be smoothly moved to the first axis by synchronously driving the pair of first axis linear motors.
Furthermore, in the component mounting machine of the present disclosure, the pair of second axis linear guides may be hollow rails. With this configuration, it is possible to further reduce the weight of the beam member.
In addition, the component mounting machine of the present disclosure may include at least three guide nuts each disposed to be slidable on a corresponding first axis linear guide of the pair of first axis linear guides, and a pair of first axis block members each fixed to upper surfaces of corresponding at least three guide nuts and configured to support a corresponding end portion of the beam member. With this configuration, the load applied to the first axis block member can be distributed to the three guide nuts, and the movement of the beam member can be stabilized and durability of the first axis linear guide or the guide nut can be improved.
In addition, the component mounting machine of the present disclosure may include a linear scale disposed on the beam member to extend in the second axis direction, and the linear scale may be disposed outside between the pair of second axis linear guides. With this configuration, the beam member can be made more compact as compared with a beam member in which the linear scale is disposed inside between the pair of second axis linear guides.
In addition, the component mounting machine of the present disclosure may include a first axis moving device configured to move the beam member in the first axis direction, and the head may include a first head and a second head, the beam member may include a first beam member that is movable in the first axis direction on the pair of first axis linear guides and supports the first head to be movable in the second axis direction, and a second beam member that shares the pair of first axis linear guides with the first beam member, is movable in the first axis direction independently of the first beam member, and supports the second head to be movable in the second axis direction, the first axis moving device may include a first first-axis moving device configured to move the first beam member in the first axis direction by electric power supplied through a cable supported by a first cableveyor, and a second first-axis moving device configured to move the second beam member in the first axis direction by electric power supplied through a cable supported by a second cableveyor, the first cableveyor may be disposed on a first side of the pair of first axis linear guides, and the second cableveyor may be disposed on a second side of the pair of first axis linear guides. With this configuration, it is possible to prevent the first and second cableveyors from interfering with each other when the first and second heads sharing the pair of first axis linear guides are moved.
In addition, the component mounting machine of the present disclosure may include a pair of first axis block members each configured to move on a corresponding first axis linear guide of the pair of first axis linear guides and support a corresponding end portion of the beam member, a pair of first axis linear motors each including a first axis stator extending along a corresponding first axis linear guide and a first axis mover fixed to a corresponding first axis block member to face the first axis stator at a predetermined interval, and a first axis cooling member interposed between the first axis block member and the first axis mover and configured to cool the first axis mover by air. With this configuration, the device can be made more compact as compared with a device in which the first axis mover is cooled by water cooling.
In addition, the component mounting machine of the present disclosure may include a second axis linear motor including a second axis stator that is disposed on the beam member to extend along the pair of second axis linear guides and a second axis mover that is supported by the pair of second axis linear guides to face the second axis stator at a predetermined interval and that supports the head, and a second axis cooling member interposed between the head and the second axis mover and configured to cool the second axis mover by air. With this configuration, the device can be made more compact as compared with a device in which the second axis mover is cooled by water cooling.
The present disclosure can be used for a manufacturing industry of component mounting machines, and the like.
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/JP2021/019539 | 5/24/2021 | WO |