The present disclosure relates to an integrated eccentric motor and pump with a separate crankshaft passing through an eccentric inner gerotor and rotatable with respect to the inner gerotor. The integrated eccentric motor and pump includes modular magnetic actuators and axially overlapping input and output shutter plates fixed to the crankshaft.
Commonly owned U.S. Patent Application Publication 2017/0328362 describes an integrated eccentric motor and pump with: a rotor including radially outwardly extending protrusions; an inlet guide fixed to the rotor; an outlet guide fixed to the rotor; and a stator with spaces and integral electrical windings radially aligned with the spaces. An axis of rotation for the rotor is not co-linear with a longitudinal axis for the outer gerotor. For each space, a single electrical winding is energized to draw a protrusion into the space, rotating the rotor eccentrically (with respect to the stator). The rotation of the rotor causes the protrusions to displace out of and into the spaces, drawing fluid into and expelling the fluid from the spaces, respectively.
The inlet and outlet guides are centered about the axis of rotation, rather than about the longitudinal axis. Therefore, the eccentric rotation of the rotor causes the radially outward circumference of the inlet guide and/or the outlet guide to engage the stator with a normal force, resulting in a locking-load condition that can jam the inlet guide and/or the outlet guide against the stator, blocking rotation of the rotor. Further: it is difficult to assemble the integral electrical windings; and the spaces are not fully sealed, enabling fluid from the pump to bathe the windings. Also, there is no restriction to the physical travel path of the rotor, enabling the rotor to unpredictably react to magnetic or shock load to the pump.
According to aspects illustrated herein, there is provided a pump, including: an inner gerotor; a crankshaft; an outer gerotor; an inlet cover assembly; an outlet cover assembly; and magnetic actuators. The inner gerotor includes: a plurality of lobes and a central opening. The crankshaft: passes through the central opening; is rotatable about an axis of rotation; and includes a first longitudinal axis not co-linear with the axis of rotation. The outer gerotor is located radially outwardly of the inner gerotor and includes a plurality of recesses. The inlet cover assembly including a plurality of inlet ports. The outlet cover assembly includes a plurality of outlet ports. The plurality of magnetic actuators is arranged to be energized in sequence to create magnetic fields. The magnetic fields are arranged to displace the inner gerotor with respect to the axis of rotation: to displace a first lobe, included in the plurality of lobes, out of a first recess, included in the plurality of recesses, and draw first fluid through a first inlet port, included in the plurality of inlet ports, into the first recess; and to displace a second lobe, included in the plurality of lobes, into a second recess, included in the plurality of recesses, and expel second fluid out of the second recess and through a first outlet port included in the plurality of outlet ports.
According to aspects illustrated herein, there is provided a pump, including: an inner gerotor; a cylindrical crankshaft; an outer gerotor; an inlet cover assembly; an outlet cover assembly; and magnetic actuators. The outer gerotor includes a plurality of recesses and a first longitudinal axis. The inner gerotor is located radially inwardly of the outer gerotor and includes: a plurality of lobes; a cylindrically-shaped central opening; and a radially inner surface radially bounding the central opening. The crankshaft passes through the central opening and includes: an axis of rotation co-linear with the first longitudinal axis; and a second longitudinal axis not co-linear withthe axis of rotation. The inlet cover assembly includes a plurality of inlet ports. The outlet cover assembly includes a plurality of outlet ports. The magnetic actuators are circumferentially disposed about the outer gerotor. Each magnetic actuator included in the plurality of magnetic actuators includes: a respective magnetic core, separate from the outer gerotor and fixedly connected to the outer gerotor; and a respective winding disposed about the respective core. The magnetic actuators are arranged to be energized in sequence to create magnetic fields. The magnetic fields are arranged to displace the inner gerotor, with respect to the axis of rotation, to displace the plurality of lobes: out of the plurality of recesses, to draw fluid through the plurality of inlet ports, into the plurality of recesses; and into the plurality of recesses to expel the fluid out of the plurality of recesses and through the plurality of outlet ports.
According to aspects illustrated herein, there is provided a pump, including: an inner gerotor; a cylindrical crankshaft; an outer gerotor; an inlet shutter plate; an inlet cover assembly; an outlet shutter plate; an outlet cover assembly; and magnetic actuators. The inner gerotor includes: a plurality of lobes; and a central opening. The cylindrical crankshaft: includes an axis of rotation; and passes through the central opening. The outer gerotor is located radially outwardly of the inner gerotor and includes a plurality of recesses. The inlet cover assembly includes a plurality of inlet ports. The outlet cover assembly includes a plurality of outlet ports. The magnetic actuators are circumferentially disposed about the outer gerotor. The inlet shutter plate: is non-rotatably connected to the crankshaft; and axially disposed between the inner gerotor and the inlet cover assembly. The outlet shutter plate: is non-rotatably connected to a second axial end of the crankshaft; and is axially disposed between the inner gerotor and the outlet cover assembly. The magnetic actuators are arranged to be energized in sequence to create magnetic fields. The magnetic fields are arranged to displace the inner gerotor, with respect to the axis of rotation, to displace the plurality lobes out of the plurality of recesses, to draw fluid through the plurality of inlet ports, into the plurality of recesses; and into the plurality of recesses to expel the fluid out of the plurality of recesses and through the plurality of outlet ports. The plurality of inlet ports is at a radial distance from the axis of rotation. A line, parallel to the axis of rotation, passes through inlet shutter plate and the outlet shutter plate at the radial distance from the axis of rotation.
Various embodiments are disclosed, by way of example only, with reference to the accompanying schematic drawings in which corresponding reference symbols indicate corresponding parts, in which:
At the outset, it should be appreciated that like drawing numbers on different drawing views identify identical, or functionally similar, structural elements of the disclosure. It is to be understood that the disclosure as claimed is not limited to the disclosed aspects.
Furthermore, it is understood that this disclosure is not limited to the particular methodology, materials and modifications described and as such may, of course, vary. It is also understood that the terminology used herein is for the purpose of describing particular aspects only and is not intended to limit the scope of the present disclosure.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood to one of ordinary skill in the art to which this disclosure belongs. It should be understood that any methods, devices or materials similar or equivalent to those described herein can be used in the practice or testing of the disclosure.
To clarify the spatial terminology, objects 12, 13, and 14 are used. As an example, an axial surface, such as surface 15A of object 12, is formed by a plane co-planar with axis 11. However, any planar surface parallel to axis 11 is an axial surface. For example, surface 15B, parallel to axis 11 also is an axial surface. An axial edge is formed by an edge, such as edge 15C, parallel to axis 11. A radial surface, such as surface 16A of object 13, is formed by a plane orthogonal to axis 11 and co-planar with a radius, for example, radius 17A. A radial edge is co-linear with a radius of axis 11. For example, edge 16B is co-linear with radius 17B. Surface 18 of object 14 forms a circumferential, or cylindrical, surface. For example, circumference 19, defined by radius 20, passes through surface 18.
Axial movement is in axial direction AD1 or AD2. Radial movement is in radial direction RD1 or RD2. Circumferential, or rotational, movement is in circumferential direction CD1 or CD2. The adverbs “axially,” “radially,” and “circumferentially” refer to movement or orientation parallel to axis 11, orthogonal to axis 11, and about axis 11, respectively. For example, an axially disposed surface or edge extends in direction AD1, a radially disposed surface or edge extends in direction RD1, and a circumferentially disposed surface or edge extends in direction CD1.
Crankshaft 102 passes through central opening 105 and is rotatable with respect to inner gerotor 104. Inner gerotor 104 is radially disposed between crankshaft 102 and outer gerotor 106. Inner gerotor 104 includes lobes 124, for example lobes 124A-124E and recesses 126. Each recess 126 is circumferentially located between a respective pair of lobes 124 from among 124A-124E. Outer gerotor 106 includes lobes 128 and recesses 130, for example recesses 130A-130F. Each recess 130 from among recesses 130A-130F is circumferentially located between a respective pair of lobes 128. In the example of
As further described below, actuators 116 are arranged to be energized in sequence to create magnetic fields 131. Magnetic fields 131 are arranged to displace inner gerotor 104 with respect to axis of rotation AR to displace lobes 124: out of recesses 130 and draw fluid F through inlet ports 110 into the recesses 130; and into recesses 130 to expel fluid F out of the recesses 130 and through outlet ports 114. Actuators 116 can be energized by any means known in the art. For example, a computer for a vehicle housing pump 100 can be programmed to provide the sequential energizing using a power source for the vehicle.
In the example of
In the example of
Plates 120 and 122 rotate with crankshaft 102. Radially outer segment 139 of plate 120 is arranged to axially align with and block recesses 130 from inlet ports 110 to enable lobes 124 to expel fluid F from recesses 130 through outlet ports 114. Radially outer segment 140 of plate 122 is arranged to axially align with and block recesses 130 from outlet ports 114 to enable lobes 124 to draw fluid F into recesses 130 through inlet ports 110. Portions 139 and 140 axially overlap. The axial overlap of plates 120 and 122 is illustrated and further described in the discussion of
Each magnetic actuator 116 includes: magnetic core 142, separate from outer gerotor 106 and fixedly connected to outer gerotor 106; and winding 144 disposed about core 142. In an example embodiment, each core 142 is fixed to gerotor 106 by a respective bolt 145. Cores 142 extend into pockets 146 in outer gerotor 106.
In an example embodiment, outer gerotor 106 includes slots 147. In an example embodiment, slots 147 extend past magnetic actuators 116 in axial direction AD-1 and axial direction AD-2, opposite axial direction AD-1. As further described below, magnetic fields 131 are generated by energizing circumferentially adjacent pairs of actuators 116. The magnetic fields 131 draw lobes 124A-124E into recesses 130A-130F to displace inner gerotor 104 eccentrically about axis AR. Slots 147 create air gaps forcing magnetic fields 131 across recesses 130A-130F and lobes 124A-124E, rather than by-passing recesses 130A-130F and flowing through outer gerotor 106.
In an example embodiment: inlet cover assembly 108 includes inlet nozzle 148; and outlet assembly 112 includes outlet nozzle 150. In an example embodiment, outlet cover assembly 112 includes pressure relief valve 152 and outlet chamber 154. In the example of
In an example embodiment, assembly 100 includes seal 166 radially disposed about outer gerotor 106 and including slots 168. Magnetic cores 142 extend through slots 168 into pockets 146 of outer gerotor 106. In an example embodiment, inlet cover assembly includes plates 170 and 172.
As noted above, plates 120 and 122, in particular, respective segments of portions 139 and 140, axially overlap. For example: inlet ports 110 are at radial distance 174 from axis of rotation AR; and lines L1 and L2, parallel to axis of rotation AR, passes inlet shutter plate 120 and outlet shutter plate 122 in areas C at radial distance 141 from axis of rotation AR.
In
Fluid F is expelled out of one of recesses 130A-130F and through one of outlet ports 114A-114F when: shutter plate 122 is not blocking the one of recesses 130A-130F or the one of outlet ports 114A-114F; shutter plate 120 is blocking the one of recesses 130A-130F; and one of lobes 124A-124E displaces into the one of recesses 130A-130F in direction CD-2, forcing fluid F out of the one of recesses 130A-130F and through the one of outlet ports 114A-114F.
In
In
Once lobe 124E is fully disposed in recess 130F, the above sequence is continued. For example: magnetic actuators 116C and 116D are oppositely energized to create a magnetic field through recess 130E, drawing lobe 124D into recess 130E in directions RD-1 and CD-2; shutter plates 120 and 122 continue to rotate in direction; lobe 124D expels fluid F from recess 130E through outlet port 114E; and lobe 124E draws fluid F into recess 130F through inlet port 110F. In like manner, pairs of adjacent magnetic actuators 116 are oppositely energized to rotate gerotor 104 in direction CD2 while shutter plates 120 and 122 continue to rotate in direction CD-1, providing a continuous cycle of recesses 130A-130F being filled with fluid F and fluid F being expelled from recesses 130A-130F.
The following provides further detail regarding the operation of pump 100. As noted above, the sequential energizing of circumferentially adjacent actuators 116 in direction CD-1 displaces inner gerotor 104 in directions CD-2, RD-1 and RD-2. Thus, inner gerotor does not rotate about axis AR in a circular path in direction CD-1. Path of motion 176 for lobe 124C from recess 130C to recess 130D illustrates the eccentric displacement of inner gerotor 104. Path 176 includes motion in direction CD-1 as well as motion in directions RD-1 and RD-2. Therefore, in the example of pump 100, the eccentric displacement of inner gerotor 104 rotates crankshaft 102 a full revolution about axis AR for every completion of a cycle by a lobe 124. Thus, in the time that inner gerotor 104 displaces 60 degrees (360 degrees divided by the number of recesses 130) as illustrated by path 176, crankshaft 102 completes a full rotation about axis AR.
The relative speeds of crankshaft 102 (and plates 120 and 122) and inner gerotor 104 result in an efficient timing for pump 100. For example: shutter plate 120 begins to rotate past an inlet port 110, which plate 120 had been blocking, to open the inlet port 110 as a lobe 124 begins to lift from a recess 130 axially aligned with the inlet port; and shutter plate 122 begins to rotate past an outlet port 114, which plate 122 had been blocking, to open the outlet port 114 as a lobe 124 begins to displace into a recess 130 axially aligned with the outlet port.
As noted above, for a known integrated eccentric motor and pump, the eccentric rotation of the rotor results in a normal force that can create a locking-load condition that can jam an inlet guide and/or an outlet guide against a stator, blocking rotation of the rotor. Pump 100 eliminates this problem by: by centering outer circumferences 177 and 178 of shutter plates 120 and 122, respectively, about axis AR and LA1 (rather than about axis LA2) and driving plates 120 and 122 with bolts 180. Bolts 180 are proximate the inner diameters of plates 120 and 122 and fixedly attach plates 120 and 122 to crankshaft 102. Thus, the load forces associated with rotation of plates 120 and 122 are carried by bearings 140 and are resolved to purely tangential forces, instead of normal forces.
As noted above, for a known integrated eccentric motor and pump, a single electrical winding is energized to draw a protrusion into a space to rotate the rotor. However, pump 100 energizes two actuators 116 at a time to create a much stronger magnetic field 131 to draw lobes 124 into recesses 130. Thus, the operation of pump 100 is more robust and reliable.
As noted above, for a known integrated eccentric motor and pump, it is difficult to assemble the integral electrical windings, and the spaces are not fully sealed, enabling fluid from the pump to bathe the windings. However, magnetic actuators 116 for pump 100 are modular units separate from the outer gerotor. Thus, complicated wiring operations about the structure of the outer gerotor are eliminated. As well: cores 142 are housed in pockets 146, isolated from recesses 130; and seal 166 seals the radially outer ends of slots 147. Therefore, fluid F cannot reach actuators 116, preventing degradation of actuators 116 due to exposure to fluid F and increasing efficiency of pump 100 by reducing pressure loss through leakage of fluid F from recesses 130. Further, the modularity of actuators 116 enables the characteristics of magnetic fields 131 to be easily varied.
As noted above, for a known integrated eccentric motor and pump, there is no restriction to the physical travel path of the rotor, enabling the rotor to unpredictably react to magnetic or shock load to the pump. However, the presence of crankshaft 102 and bearings 140 more precisely define the motion path of inner gerotor 104, enabling smoother and more predictable operation. Pump 100 also includes pressure relief valve 152 in outlet cover assembly 112, which prevents an over-pressure condition at outlet ports 114 that could damage pump 100.
It will be appreciated that various of the above-disclosed and other features and functions, or alternatives thereof, may be desirably combined into many other different systems or applications. Various presently unforeseen or unanticipated alternatives, modifications, variations, or improvements therein may be subsequently made by those skilled in the art which are also intended to be encompassed by the following claims.
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