Wastewater pump
09726179 · 2017-08-08
Assignee
Inventors
Cpc classification
F04D29/2288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D7/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Wastewater pump comprising a reversible motor (110) driving a rotor (160) equipped with blades (170). The rotor (160) is a disc (165) bearing pivoting blades (170) each mounted on a radial spindle (167) borne by the rotor. Each blade (170) is composed of a plate (171) bearing an articulation node (175) engaged on the spindle and a cutter (172) on the back of the plate forming a prop supporting the plate in the active position when the rotor (160) is rotating in the forward direction (D), and the cutter (172) projecting in the peripheral direction when the rotor (160) turns in the reverse direction (R), the plate (171) being applied against the disc (165). A fixed ring surrounds the disc and bears at least one cutter (135).
Claims
1. Wastewater pump comprising a reversible motor driving a rotor equipped with blades, housed in a pump chamber with an axial inlet (EA) and tangential outlet (ST), the pump being characterised in that the rotor (160) is a disc (165) bearing blades (170) each mounted on a radial spindle (167) borne by the rotor and pivoting between an active position raised in the forward direction of rotation (D) of the rotor and a position retracted against the disc for the reverse direction (R) of rotation of the rotor, each blade (170) being composed of a plate (171) bearing an articulation node (175) engaged on the spindle and a cutter (172) on the back of the plate forming a prop supporting the plate in the active position when the rotor (160) is rotating in the forward direction (D), and the cutter (172) projecting in the peripheral direction when the rotor (160) turns in the reverse direction (R), the plate (171) being applied against the disc (165), a fixed ring (130) surrounds the plate and carries at least one cutter (135).
2. Wastewater pump according to claim 1, characterised in that the disc (165) of the rotor includes windows (166) each housing an articulation spindle (167) of a plate (171) receiving the articulation node (175) of the plate.
3. Wastewater pump according to claim 2, characterised in that the articulation node (175) extends over the centre of the edge (171a) of the plate (171), the node being offset with respect to the plane of the plate so that this latter comes to be flat on the disc (165) when it is in the lowered position.
4. Wastewater pump according to claim 2, characterised in that the node (175) and its window (166) are dimensioned so that in the raised position and in the lowered position the node (175) is supported against the respective downstream edge (166a) of the window (166) in the direction of rotation of the rotor (160).
5. Wastewater pump according to claim 2, characterised in that the radial length of the window (166) and of its spindle (167) in the window is equal to the radial length of the node (175), except for the clearance.
6. Wastewater pump according to claim 1, characterised in that the disc (165) includes a hub (161) in relief and the edge of each blade plate (171) follows the profile of the hub (161) when the plate (171) is in the active position.
7. Wastewater pump according to claim 6, characterised in that the hub (161) has a frustoconical shape.
8. Wastewater pump according to claim 1, characterised in that the cutter (172) fixed on the back of the panel (171) of a blade (170) has a subdivided cutting edge (173) forming the cutting edge, with a first edge (173a) on the plate side followed by an inclined edge (173b) joining the top in the form of a tip of the cutting edge.
Description
DRAWINGS
(1) The present invention will be described hereafter in greater detail with the aid of an embodiment of a wastewater pump according to the invention shown in the appended drawings, in which:
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF ONE EMBODIMENT OF THE INVENTION
(7) According to
(8) The end 111 of the motor shaft 110 bears a rotor 160 formed of a hub 161 with a disc 165 provided with pivoting blades 170 occupying the position shown for the forward direction of rotation D, which is the pumping direction. The rotor 160 with its disc 165 turns within a fixed ring 130 bearing a peripheral cutter 135 with a double cutting edge, of triangular shape with an edge subdivided into a front edge 136a and a rear edge 136b, each having two cutting edge segments.
(9) According to
(10) The inlet (EA) 151 of the cover 140 is formed by a sleeve 142 and an internal ring 143, in a plane perpendicular to the axis xx, in order to form the wall of the chamber 150 facing the fixed ring 130 and thus delimiting the toric shape of the chamber in which the rotor 160 turns. The cover 140 terminates with a fixing edge 141 in order to be assembled with the flange 120 of the motor 110.
(11) The shape of the cover 140 and the fixed parts of the pump inside the cover can be seen better in
(12) According to
(13) This hub 161 bears a circular disc 165 equipped with four pivoting blades 170, of generally radial orientation, each formed by a plate 171 bearing an articulation node 175 engaged on a radial spindle 167 housed in the thickness of the disc. The spindle 167 passes radially through a rectangular window 166 cut out in the disc 165 in order to receive the articulation node 175, itself offset relative to the plane of the plate 171 on the edge 171a thereof. Thus, in the active raised position of the plate 171, the node 175 which is situated at the centre of the edge 171a of the plate closes the gap between the plate 171 and the disc 165 and in the pivoted position the node 175 also forms a deflecting slope.
(14)
(15) The node 175 preferably has a length equal to half of the length of the edge 171a of the plate 171 in order to distribute the forces in the best way over the articulation spindle 167 whilst retaining the articulation in the radial direction. The plate 171 of each blade 170 has a front face which is exposed in the forward direction of rotation D and has on the back a soldered cutter 172 forming a prop 172. According to the right-hand part of
(16) Advantageously, as the pivot spindle 167 and the node 175 of the blade are accommodated in a window 166 in the disc 165, the plate bearing an offset node 175 going into the window, the forces both in the radial direction and in the peripheral direction are absorbed by virtue of the support of the node 175 against the exterior end 166b of the window 166 (in the radial direction) and against the “downstream” edge which is the radial edge 166a in the downstream position in the forward direction of rotation (D) or the reverse direction of rotation (R), by means of the adapted dimensions of the node 175 and of the window 166. These supports effectively relieve the strain on the articulation spindle 167 in spite of the considerable and powerful forces which may be exerted on the blade 170 and on the cutter 172. The surface 175a of the node which is its leading surface, the front face when the rotor 160 turns in the reverse direction (R), is preferably inclined in order to divert the stream of liquid passing over the top of the disc 165 and the plates 171 which are turned back (
(17) The prop forming the cutter 172 has a cutting edge 173 which is subdivided, composed of a first segment 173a which is relatively straight at the base of the cutter and followed by a second segment which is relatively inclined joining the tip of the cutter. The shape of the cutter 172 benefits from the effectiveness of the cutting edge, principally the first segment 173a without the risk of this cutting edge holding back the entrained fibres for too long since these fibres are ejected from the cutter 172 by the second relatively inclined segment 173b. The cutter 172 is preferably oriented in the peripheral direction.
(18) Furthermore, in the prop position, the cutter 172 has an effect of unclogging of the rear of the blade 170, avoiding the risk of thread-like products directly enveloping the plate 171 forming the body of the blade. According in particular to
(19) When the pump turns in the forward direction (D), the thread-like elements in the wastewater can become wound around the blades 170 and remain wound whilst being cut at the periphery by passing over the first edge 136a of the fixed cutter 135 (
(20) By then reversing the direction of rotation (R), even clogged with thread-like products, the blades 170 tilt progressively around their spindle 167 by reaction to the fluid. The cutters 172 project progressively as the blades 170 incline and cut the thread-like products which clog the blades in co-operation with the cutter fixed at the periphery. This release is quick and makes it possible to free the rotor 160 without causing perceptible over-consumption of current.
(21) TABLE-US-00001 LIST OF REFERENCE NUMERALS 100 pump 110 motor 111 end of the motor shaft 112 tapping 113 turning joint 120 flange/base of the motor 121 bolt/screw 130 fixed ring 135 fixed cutter 136a cutting edge 136b cutting edge 140 cover 141 fixing edge 142 sleeve 143 inner ring 150 pump chamber/toric volume 151 inlet 152 outlet 160 rotor 161 hub 162 sleeve 163 drilling 164 screw 165 disc 166 window 166a radial edge 166b exterior edge 167 spindle 170 pivoting blade 171 plate 171a edge 171b edge 171c cutout 172 cutter/prop 172a lug 173 cutting edge 173a first segment of the cutting edge 173b second segment of the cutting edge 174 rear edge 175 articulation node 175a inclined leading surface of the node EA inlet of the pump chamber CT outlet of the pump chamber