The present invention relates to a metal coil compression binding apparatus that is an apparatus configured to compress a metal coil and bind the compressed metal coil with binding bands.
Continuous metal wires of carbon steel, brass, and the like manufactured by rolling at steel plants are delivered to secondary processing manufacturers, and processed into product materials such as springs for use in automobiles through a wire drawing process, an annealing process, and a surface treatment. The secondarily processed wires are wound in a coil shape, compressed in a center axis direction, and bound with metal straps (i.e., steel strips, binding bands) upon shipment.
There have conventionally been apparatuses configured to compress and bind metal coils (for example, see Japanese Patent No. 4095817).
However, using the fixed system of digging a pit in the ground makes it impossible to accommodate with layout changes of the devices and the like in the plant. The large scale of the device and poor usability have also been problems. Furthermore, manual binding for device miniaturization makes the operation dangerous.
In view of the foregoing circumstances, the present invention is directed to providing a movable small-sized metal coil self-compression binding apparatus.
(1) The present invention provides a metal coil compression device configured to axially compress a metal coil placed with an axis thereof vertical to bind the metal coil with a binding band, the metal coil compression device including: a lifting device configured to generate a vertically downward pressing force; a cylindrical outer pressure barrel that is supported by the lifting device so that it can move vertically and has an opening opened vertically downward on a bottom thereof; a cylindrical inner pressure barrel that is located inside a peripheral wall of the outer pressure barrel; and a connecting mechanism that is located between the inner pressure barrel and the outer pressure barrel, and connects the inner and outer pressure barrels so that the inner and outer pressure barrels are vertically engaged and are supported relatively rotatably in a circumferential direction. The outer pressure barrel has an outer recess in the peripheral wall of the outer pressure barrel, the outer recess being recessed vertically upward from a bottom end. The inner pressure barrel has an inner recess in a peripheral wall of the inner pressure barrel, the inner recess being recessed vertically upward from a bottom end, and a coil pressing surface that is located at the bottom end of the peripheral wall of the inner pressure barrel and makes contact with a top of the metal coil to transmit the vertically downward pressing force to the metal coil.
According to the invention set forth in the foregoing (1), a binding band insertion portion of a binding device that binds the metal coil with the binding band can be inserted through the respective recesses in the outer pressure barrel and the inner pressure barrel with the pressing force applied to the metal coil. This provides an excellent effect that the steel strip (binding band) can be inserted into the inside of the metal coil, and the metal coil can be safely and reliably compressed and bound.
(2) The present invention provides the metal coil compression device according to the foregoing (1), wherein the inner pressure barrel has a plurality of the inner recesses in the circumferential direction.
According to the invention set forth in the foregoing (2), there are a plurality of inner recesses in the circumferential direction of the inner pressure barrel. The binding band insertion portion can thus be inserted into the inner pressure barrel in a plurality of directions when the metal coil is rotated. This can provide an excellent effect that the metal coil can be reliably bound in a plurality of directions with a plurality of steel strips.
(3) The present invention provides the metal coil compression device according to the foregoing (1) or (2), further including: a placing table on which the metal coil is placed; and a rotation mechanism configured to rotate the placing table with the inner pressure barrel.
According to the invention set forth in the foregoing (3), a metal coil as heavy as several tons can be mechanically rotated, and the steel strip binding can be performed by inserting the binding band insertion portion only in a predetermined direction. This provides an excellent effect that the metal coil can be safely bound without manual intervention.
(4) The present invention provides a metal coil compression binding apparatus, wherein, regarding the metal coil compression device according to any one of the foregoing (1) to (3), a binding device is further included that binds the metal coil placed with an axis thereof vertical with the binding band. The binding device includes a binding band insertion portion configured to insert the binding band into both the outer recess and the inner recess.
According to the invention set forth in the (4), the binding band insertion portion of the binding device configured to bind the metal coil with the binding band is inserted through the respective recesses in the outer pressure barrel and the inner pressure barrel with the pressing force applied to the metal coil. The metal strip (binding band) can thus be inserted into the inside of the metal coil, and the metal strip can be mechanically fastened. This provides an excellent effect that the metal coil can be safely and reliably compressed and bound.
According to the metal coil compression device and the metal coil compression binding apparatus set forth in claims 1 to 4 of the present invention, the binding band insertion portion of the binding device can be inserted through the respective recesses in the outer pressure barrel and the inner pressure barrel with the pressing force applied to the metal coil. The steel strip (binding band) can thus be inserted into the inside of the metal coil, and the metal band can be mechanically fastened. This provides an excellent effect of enabling safe, reliable compression and binding.
An embodiment of the present invention will be described below with reference to the accompanying drawings.
Specifically, the metal coil compression binding apparatus 1 includes the metal coil compression device 7 that axially compresses the metal coil 20 placed with its axis vertical, and the binding device 35 that binds the metal coil 20 with binding bands. The metal coil compression device 7 includes the lifting device 25 that generates a vertically downward pressing force, a cylindrical outer pressure barrel 50 (see
In terms of miniaturization, it is desirable that the lifting device 25 move the metal coil compression device 75 up and down to generate the pressing force by using servomotors. More specifically, the pressing force is preferably generated by rotating ball screws included in the lifting device 25 using servomotors. It should be understood that hydraulic pistons may be used to generate the pressing force.
The peripheral wall of the inner pressure barrel 45 has a plurality of inner recesses 55. A rotation mechanism 95 rotates the inner pressure barrel 45 with the metal coil 20 so that one of the inner recesses 55 is directed to the inserting direction of the binding band insertion portion 85 like the outer recess 60.
Specifically, the metal coil compression binding apparatus 1 further includes the placing table 90 on which the metal coil 20 is placed, and the rotation mechanism 65 that rotates the placing table 90 with the inner pressure barrel 45.
The steel strip can be inserted into the inside of the metal coil 20 by aligning the positions of the outer recess 60 of the outer pressure barrel 50 and the inner recesses 55 of the inner pressure barrel 45 (see
The pressing force on the metal coil 20 may be generated by using servomotors and rolling ball screws for the lifting device 25, for example. It should be understood that hydraulic pistons and the like may be used.
The binding device 80 desirably includes a head that feeds, tightens, and cuts the steel strip (binding band, strap) like conventional binding devices.
For example, in the case of
According to the metal coil compression device 7 of the embodiment of the present invention, the binding band insertion portion 85 of the binding device for binding the metal coil 20 with a binding band can be inserted through respective recesses in the outer pressure barrel 50 and the inner pressure barrel 45 with the pressing force applied to the metal coil 20. The steel strip (binding band) can thus be inserted into the inside of the metal coil 20, and there is provided an excellent effect that the metal coil can be safely and reliably compressed and bound.
According to the metal coil compression device 7 of the embodiment of the present invention, the plurality of inner recesses 55 are located in the circumferential direction in the inner pressure barrel 45. The binding band insertion portion 85 can thus be inserted into the inner pressure barrel 45 in a plurality of directions when the metal coil 20 is rotated. This can provide an excellent effect that the metal coil 20 can be reliably bound with a plurality of steel strips in a plurality of directions.
According to the metal coil compression device 7 of the embodiment of the present invention, the metal coil 20 as heavy as several tons can be mechanically rotated. The steel strip binding can thus be performed by inserting the binding band insertion portion only in a predetermined direction. This provides an excellent effect that the metal coil 20 can be safely bound without manual intervention.
According to the metal coil compressing binding apparatus 1 of the embodiment of the present invention, the binding band insertion portion 85 of the binding device for binding the metal coil with a binding band is inserted through respective recesses in the outer pressure barrel 50 and the inner pressure barrel 45 with the pressing force applied to the metal coil. The steel strip (binding band) can thus be inserted into the inside of the metal coil 20, and the steel strip can be mechanically fastened. This provides an excellent effect that the metal coil can be safely and reliably compressed and bound.
It should be understood that the metal coil compression device and the metal coil compression binding apparatus according to the present invention are not limited to the foregoing embodiment, and various modifications can be made without departing from the gist of the present invention.
For example, while the foregoing embodiment has described the case of steel strip binding, PET hoop binding may also be used.
Number | Date | Country | Kind |
---|---|---|---|
2019-000211 | Jan 2019 | JP | national |
This application is a U.S. National Phase Application under 35 U.S.C. 371 of International Application No. PCT/JP2020/001830, filed on Jan. 21, 2020, which claims priority to Japanese Patent Application No. 2019-000211U, filed on Jan. 24, 2019. The entire disclosures of the above applications are expressly incorporated by reference herein.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2020/001830 | 1/21/2020 | WO | 00 |