This invention relates to a single-shaft shredding device, and especially relates to the single-shaft shredding device particularly suitable for crushing soft garbage such as used paper diaper.
To recycle soft garbage such as used paper diaper, it is essential to crush it as small as possible and below a predetermined size.
A dual-shaft shredding device shown in Patent Literature 1 has been used previously to crush soft garbage.
The dual-shaft shredding device has two rotating shafts on which cutters and spacers are mounted alternately, and crushes soft garbage by trapping it in the gap between the cutter mounted on one rotating shaft and the spacer mounted on the other.
However, the dual-shaft shredding device shown in Patent Literature 1 has the unavoidable problem that the size of the shredding device will become large because the shredding device requires two rotating shafts.
Furthermore, the gap becomes easily clogged with soft garbage, when the gap between the cutter and the spacer is narrowed for crushing the soft garbage into thinner pieces.
When clogging occurs, not only the shredding device cannot continue operating, because pressing pressure which works against the cutter and the spacer becomes excessively, but also it becomes difficult to uniformly crush garbage into smaller size.
Even though Patent Literature 2 shows a shredding device having a screen at the discharge port to prevent the discharge of soft garbage that has not been crushed enough, this type shredding device becomes difficult to continuously operate due to screen clogging when the shredding device is applied for crushing soft garbage such as paper diaper.
Patent literature 1: Japanese unexamined patent application No.2007-209932
Patent literature 2: Japanese patent publication No. 6476532
The purpose of this invention is to solve the above problem, and to provide a single-shaft shredding device that can continuously crush soft garbage equal to or less a predetermined size.
A single-shaft shredding device according to the first invention comprises,
The single-shaft shredding device according to the second invention, wherein each of the spacers has at least one spacer concave on its circumference.
The single-shaft shredding device according to the third invention, wherein the circumferences of the spacers exist outside the bottoms of the U-shaped cutter concave.
The single-shaft shredding device according to the fourth invention, wherein the driving unit rotates the rotating shaft to positive direction and negative direction.
According to the single-shaft shredding device of the first invention, it is possible to miniaturize the size of the shredding device.
Furthermore, even when soft garbage is caught in the gap between the cutter and the scraper, it is possible to suppress the pressing pressure against the housing, and overload of the driving unit. Therefore, the shredding device can continue its stable operation.
According to the single-shaft shredding device of the second invention, it becomes possible to prevent soft garbage from winding to the spacer and piling up on the spacer and the scraper.
According to the single-shaft shredding device of the third invention, it becomes possible to discharge soft garbage which wound to the spacer and piled up on the spacer and the scraper to the cutter concave.
According to the single-shaft shredding device of the fourth invention, it becomes possible to easily continue its operation by switching the rotating direction even when garbage is caught in the gap between the cutter and the scraper and the pressing pressure against the housing increases.
A brief description of the drawings
Hereinafter, embodiments of the single-shaft shredding device according to this invention will be described with reference to the drawings.
At first, the configuration of the single-shaft shredding device according to this invention will be described.
A single-shaft shredding device according to this invention comprises, a rectangular housing 1, a rotating shaft 2 which penetrate the rectangular housing 1, a driving unit 3 which rotates the rotating shaft 2, disk-shaped cutters 4 which are detachably mounted on the rotating shaft 2 in the housing 1, disk-shaped spacers 5 which are detachably mounted on the rotating shaft 2 in the housing 1, scrapers 6 which are mounted on side walls of the housing 1, and provide predetermined gaps between the circumference of the cutters 4 and between the circumference of the spacers 5 at the level of the center of the rotating shaft 2.
The scraper 6 has a triangular protrusion facing the cutter 4 and a flat base facing the spacer 5.
As shown in
Further, as shown in
The cutter 4 has U-shaped cutter concaves having predetermined depth at every predetermined interval on the circumference.
The spacer 5 is mounted between two adjacent cutters 4.
That is, the cutters 4 and the spacers 5 are alternately mounted on the rotating shaft 2.
In the embodiment shown in
It is desirable that the driving unit can switch between forward rotation and reverse rotation.
That is, as shown in
Convex part between two adjacent cutter concaves 41 works as cutter hooks 42.
As shown in
The outside edges of the cutter groove 43 may have a sharp shape as shown in
The cutter groove 43 may be V-shaped in which both walls form an acute angle at the bottom, or may be U-shaped in which the bottom forms a gentle surface.
Namely, as shown in
Further, at least one spacer concave 51, which is a groove having a rectangular cross section, is formed on the outer circumference of the spacer 5.
The shape of the spacer concave 51 may be a trapezoidal shape having a short side at the bottom and a long side at the circumference as shown in
Further, the spacer concave 51 may be formed parallel to the rotation axis direction as shown in
Namely, the fitting hole of the cutter 4 and the hole of the spacer 5 have the same shape, and the cutters 4 and the spacers 5 are alternately mounted on the rotating shaft 2.
The outer diameter of the spacer 5 is smaller than the outer diameter of the cutter 4, but the circumference of the spacer 5 is set to be outside the bottom of the cutter groove 43 formed in the cutter 4.
First, a case where the rotating shaft 2 of the single-shaft shredding device is rotated clockwise (positive direction) by the driving unit 3 will be described.
Soft garbage 8 such as a paper diaper is charged from the charging port provided in the upper part of the housing 1 (
The soft garbage 8 is carried to the right side of the housing 1 by the cutter hook 42 (
The soft garbage 8 is caught in a gap between the base part of the scraper 6 mounted on the right wall of the housing 1 and the cutter 4, and a shearing of the soft garbage is started (
Since a V-shaped cutter groove 43 is provided on the outer circumferential surface of the cutter hook 42, the shredding device can finely crush the soft garbage while suppressing the pressing pressure against the housing 1 even when soft garbage is caught in the gap between the base part of the scraper 6 and the cutter 4 (
When the cutter 4 is continuously rotated clockwise to continue crushing of the soft garbage 8, it may become difficult for the driving unit 3 to rotate the rotating shaft 2, because the soft garbage 8 clogs the gap between the cutter 4 and the base part of the scraper 6 and the pressing pressure increases.
In order to prevent the rotating shaft 2 from stopping, the rotating shaft 2 is rotated counterclockwise (negative direction) after rotated clockwise for a time (
Then, the soft garbage 8 is carried to the left side of the housing 1 by the cutter hook 42 (
The soft garbage 8 is pressed against the base part of the scraper 6 mounted on the left wall of the housing 1 (
The rotation direction of the rotating shaft 2 is generally switched at predetermined time intervals.
When the driving unit 2 is an electric motor, the rotation direction may be switched when the current flowing through the electric motor exceeds a predetermined threshold current.
Further, when the driving unit 2 is a hydraulic motor, the rotation direction may be switched when the hydraulic pressure supplied to the hydraulic motor exceeds a predetermined threshold hydraulic pressure.
Namely, by operating the single-shaft shredding device according to the invention as described above, it is possible to continue the operation even when the amount of the soft garbage 8 increases, while suppressing the pressing pressure on the housing 1 from becoming excessive.
Further, by the single-shaft shredding device according to the invention, it is possible to prevent the soft garbage from winding around the spacer 5 and from accumulating on the spacer 5 and the scraper 6, by providing the spacer 5 with at least one spacer concave 51.
As the outer diameter of the spacer 5 is decided so that the outer circumferential edge of the spacer 5 is outside the bottom of the cutter concave 41 provided in the cutter 4, the soft garbage wrapped around the spacer 5 and accumulated on the spacer 5 and the scraper 6 can easily move to the cutter concave 41, and accumulating and winding of the soft garbage 8 can be suppressed.
The single-shaft shredding device according to the invention can continuously crush soft garbage such as paper diapers to a uniform size, and accordingly has industrial applicability.
Number | Date | Country | Kind |
---|---|---|---|
2019-240153 | Dec 2019 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2020/048062 | 12/16/2020 | WO |