This invention relates to grinding pumps, and in particular, it relates to a cutting system for grinding pumps.
For a pump used to pump or transport a liquid or slurry containing solid or semi-solid matters, a cutting device is often provided on the inlet side of the pump, to cut the solid matters suspending in the liquid into smaller pieces, so that they can pass the pump more easily. Such pumps are often referred to as grinding pumps or chopping pumps. Typically, a cutting system of a grinding pump includes cutting blades, a rotating shaft, and a cutting disc. The cutting blades have cutting edges; the cutting disc has a cutting surface, which has a series of orifices with cutting edges. In operation, the cutting blades rotate with the rotating shaft and cooperate with the orifices of the cutting disc to accomplish cutting. The cutting edges of the cutting blades are on a plane, and the cutting edges of the cutting disc are on a plane; these two planes are designed to be on a common plane. However, floating matters in the liquid being transported by the pump, such as solid or semi-solid particulates, fabric or fibrous matters, etc., can become lodged and stuck in gaps between the cutting blades and the cutting disc. Once stuck, they are very difficult to be released. This may interfere with the rotation of the rotating shaft or even cause the rotating shaft to be stuck, which can cause the electric motor to be overloaded or even stall. Moreover, when the floating matters are not cut into desired smaller pieces, they can impede the transport of the floating matters in the liquid, causing the impeller or the cutting blades to be stuck. These concerns place high requirements on the precision of installation and improved structural design of the cutting device of grinding pumps.
Accordingly, the present invention is directed to a cutting system for a grinding pump with improvements aimed at solving various problems of the conventional technology. The cutting system can effectively cut the floating matters in the liquid and discharge them from the pump, with increased cutting effectively and efficiency.
In one aspect, the present invention provides a cutting system for a grinding pump, where the cutting system includes: a cutting disc, configured to be attached to the grinding pump near an inlet of the grinding pump, wherein the cutting disc includes a cutting surface, and the cutting surface has a plurality of cutting orifices; and a rotating cutter, configured to be attached to the grinding pump via a rotating shaft of the grinding pump, wherein the rotating cutter includes at least two cutting blades, each cutting blade having a cutting edge on a forward-facing side in a direction of rotation of the rotating cutter, the rotating cutter being located on an upstream side of the cutting disc, wherein the cutting edge is configured to cooperate with the cutting orifices of the cutting disc to perform cutting actions when the rotating cutter rotates; wherein each cutting orifice of the cutting disc has a hole region extending from the cutting surface through the cutting disc to form a feeding orifice, and has a cutting protrusion that protrudes from the cutting surface, the cutting protrusion surrounding the hole region, wherein the plurality of cutting orifices define recessed areas of the cutting surface between the cutting orifices.
In the cutting system, by improving the structure of the cutting orifices to form the recessed areas between the cutting orifices, the recessed areas provide axial gaps between the rotating cutter and the cutting disc. Thus, except at the cutting orifices, the cutting disc and rotating cutter do not have opposing surfaces with very small gaps. As a result, the cutting action at the interface of the cutting disc and rotating cutter ensures that the floating matters are effectively cut and discharged.
Based on the above principles, embodiments of the present invention may have one or more of the following features.
In some embodiments, the cutting orifices are arranged on the cutting disc in a radial direction and distributed in a circumferential direction with respect to a rotation axis of the rotating shaft.
In some embodiments, the cutting protrusion of each cutting orifice is a ring shaped structure and includes an inner cutting edge on an inner side of the ring shaped structure and an outer cutting edge on an outer side of the ring shaped structure. By providing the dual inner and outer cutting edges, the floating matters entering the cutting orifices from the cutting protrusions can be effectively cut, making the cutting system more effective.
In some embodiments, the ring shaped structure of the cutting protrusion has at least one gap; in some other embodiments, the ring shaped structure is a closed ring without any gaps.
In some embodiments, the cutting disc includes a plurality of cutting groups, each cutting group including at least two of the plurality of cutting orifices, and wherein the plurality of cutting groups are arranged on the cutting disc in a radial direction and distributed in a circumferential direction with respect to a rotation axis of the rotating shaft.
In some embodiments, at least one cutting group further includes at least one cutting tip, configured to connect the two cutting orifices of the cutting group, the cutting tip having a cutting tip edge connected to the cutting edges of the cutting orifices.
In some embodiments, the cutting tip edge face against a forward moving direction of the rotating cutter.
In some embodiments, the cutting disc further includes a plurality of cutting blocks distributed between the cutting orifices, wherein each cutting block has a cutting edge facing against a forward moving direction of the rotating cutter.
In some embodiments, the cutting surface of the cutting disc further includes a plurality of diversion ribs, which are either connected to or separated from the cutting orifices, wherein the diversion ribs are protrusions from the cutting surface and are distributed in a circumferential direction around a rotation axis of the rotating shaft.
In some embodiments, each diversion rib has a curved or a linear shape and extends in a radial direction of the cutting disc, and wherein when the diversion rib has a curved shape, a tangential direction of the curved shape is parallel to a moving direction of the cutting edge of the rotating cutter.
In some embodiments, the recessed areas are located on at least one plane.
In another aspect, the present invention provides a grinding pump, which includes a pump body having the inlet and an outlet, and rotating shaft disposed within the pump body, and further includes the above cutting system, wherein the cutting disc of the cutting system is fixedly connected to the pump body and covers the inlet, wherein the rotating cutter of the cutting system is fixedly connected to the rotating shaft and is driven by the rotating shaft to rotate, so that the cutting edges of the rotating cutter cooperate with the cutting orifices of the cutting disc to performing cutting actions.
The cutting system according to embodiments of the present invention can effectively reduce the sizes of the floating matters, and can prevent uncut or insufficiently floating matters from being trapped. This prevents the impeller and rotating cutter from being stuck, and improves the effectiveness and safety of the pump. The grinding pump according to embodiments of the present invention has low cost, is easy to manufacture, and has a long service life.
Preferred embodiments of the present invention are described with reference to the drawings. In these drawings, like reference symbols represent like features.
Preferred embodiments of the present and their applications are described below. It should be understood that these descriptions describe embodiments of the present invention but do not limit the scope of the invention. When describing the various components, directional terms such as “up,” “down,” “top,” “bottom” etc. are not absolute but are relative. These terms may correspond to the views in the various illustrations, and can change when the views or the relative positions of the components change.
In this disclosure, terms such as “connect”, “couple”, “link” etc. should be understood broadly; for example, they may be fixed connections, or removable or detachable connections, or integrally connected or integrally formed; they may be directly connected, or indirectly connected via intermediate parts. Those skilled in the relevant art can readily understand the meaning of these terms as used in this disclosure based on the specific description and context. Referring to
It should be understood that while the descriptions below use a pump for wastewater as an example of a grinding pump, the grinding pump may also be, without limitation, any water pump, vacuum cleaner, suction filter, etc. that has a cutting function.
According to embodiments of the present invention, gaps in the axial direction (the direction parallel to the rotating shaft) is provided between the cutting disc and the rotating cutter of the cutting system, which can allow the floating matters to be sufficiently cut so they can smoothly enter the pump body. Such axial gaps can be realized without requiring additional components, and do not adversely affect the normal cutting operation.
More specifically, referring to
Referring to
Each cutting orifice 30 beneficially includes a cutting protrusion 38 that protrudes from the cutting surface 211 and surrounds the hole region 31. Correspondingly, the areas of the cutting surface 211 not occupied by the cutting orifices 30 (the cutting protrusions 38) constitute recessed areas 212 which are recessed as compared to the protruded surface of the cutting protrusions 38, as shown in
In these embodiments, during operation, the recessed areas 212 provide a space for the floating matters to move around near the cutting surfaces, so that they will not become stuck between the rotating cutter 22 and the cutting disc 21 and will not cause the rotating cutter 22 or rotating shaft 12 to be stuck. This can ensure successful transportation of the floating matters. Because the recessed areas 212 are present only between the different cutting orifices 30, they will not adversely affect the cutting operation of the cutting orifices 30 and rotating cutter 22, so that the floating matters can be successfully cut.
In some embodiments, the multiple cutting orifices 30 are independent of each other and are arranged on the cutting disc 21 in the radial direction and distributed in the circumferential direction with respect to the rotating axis of the rotating shaft 12. For example, the distribution may be a substantially uniformly spaced radial and/or circumferential distribution, or a regular but non-uniformly spaced radial and/or circumferential distribution, etc.
Beneficially, the cutting orifices 30 are arranged on the cutting disc 21 in both the radial direction and distributed in the circumferential direction with respect to the axis of the rotating shaft 12. In some embodiments, the cutting disc 21 includes multiple cutting groups 36, each cutting group 36 including at least two cutting orifices 30, as shown in
In some embodiments, the cutting protrusion 38 of the cutting orifice 30 may be a ring shaped structure, and include an inner cutting edge 32 on the inner side of the ring shaped structure and an outer cutting edge 33 on the outer side of the ring shaped structure, as shown in
By providing the dual inner and outer cutting edges, the cutting orifices 30 achieve multiple cutting actions in their interactions with the rotating cutter 22. Since the floating matters in the liquid, under the suction pressure of the pump, have to enter the pump body 11 via the hole regions 31 of the cutting orifices 30, they will be cut into sufficiently small particles under the multiple cutting actions, so that they can enter and exit the pump body smoothly and unimpeded.
In the embodiment shown in
In the exemplary cutting group 36b shown in
In some embodiments, as shown in
Using the cutting orifices, including individual cutting orifices, grouped cutting orifices, connected cutting orifices, or cutting orifices in combination with diversion ribs, embodiments of the present invention solve the low cutting efficiency problem and pump entrance blockage problem of conventional technologies. More specifically, referring to
It should be understood that the embodiments shown in the drawings only illustrate the preferred shapes, sizes and spatial arrangements of the various components of the grinding pump and its cutting system. These illustrations do not limit the scope of the invention; other shapes, sizes and spatial arrangements may be used without departing from the spirit of the invention.
It will be apparent to those skilled in the art that various modification and variations can be made in the embodiments of the present invention without departing from the spirit or scope of the invention. Thus, it is intended that the present invention cover modifications and variations that come within the scope of the appended claims and their equivalents.
Number | Date | Country | Kind |
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202011243635.6 | Nov 2020 | CN | national |
202022574986.7 | Nov 2020 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
2658453 | Walters | Nov 1953 | A |
3973866 | Vaughan | Aug 1976 | A |
4108386 | Conery | Aug 1978 | A |
4141510 | Smith | Feb 1979 | A |
4448359 | Meyers | May 1984 | A |
4454993 | Shibata | Jun 1984 | A |
4527947 | Elliott | Jul 1985 | A |
4778336 | Husain | Oct 1988 | A |
5016825 | Carpenter | May 1991 | A |
5256032 | Dorsch | Oct 1993 | A |
5450777 | Molnar | Sep 1995 | A |
5456580 | Dorsch | Oct 1995 | A |
5460482 | Dorsch | Oct 1995 | A |
6241470 | Oakley | Jun 2001 | B1 |
7080797 | Doering | Jul 2006 | B2 |
7118327 | Doering | Oct 2006 | B2 |
7159806 | Ritsema | Jan 2007 | B1 |
7237736 | Martin | Jul 2007 | B1 |
8105017 | Dorsch | Jan 2012 | B2 |
8562287 | Schmidt | Oct 2013 | B2 |
8657564 | Cuppetelli | Feb 2014 | B2 |
8905341 | Dorsch | Dec 2014 | B2 |
9371834 | Daugaard | Jun 2016 | B2 |
10054136 | Sowa | Aug 2018 | B2 |
20130108411 | Ciotola | May 2013 | A1 |
20140199165 | Pohler | Jul 2014 | A1 |
20160363123 | Davis | Dec 2016 | A1 |
20170306965 | Bevington | Oct 2017 | A1 |
20180202453 | Pohler | Jul 2018 | A1 |
20200353475 | Brinkmann | Nov 2020 | A1 |
20220001388 | Neer | Jan 2022 | A1 |
Number | Date | Country |
---|---|---|
3670920 | Jun 2020 | DE |
Number | Date | Country | |
---|---|---|---|
20220145890 A1 | May 2022 | US |