Pump valving assembly for a pulsating fluid pump - Patent Application 20070122997

The pump valving assembly addresses fluid flow challenges in pulsatile pumps by using spherically shaped check valves and tapered tubes to achieve smooth, efficient, and turbulence-free fluid delivery, mirroring the human heart's operation.

JP7783306B2Active Publication Date: 2025-12-09VENTRIFLO INC
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Patent Information

Application Number
JP2023575493
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-02-23
Publication Date
2025-12-09
Estimated Expiration
2041-02-23

AI Technical Summary

Technical Problem

Existing pulsatile fluid pumps, such as those described in U.S. Pat. No. 7,850,593, face challenges in maintaining smooth and efficient fluid flow with minimal pressure loss and turbulence, particularly when pumping fluids like blood, due to the inherent pulsatile nature of the fluid flow.

Method used

The pump valving assembly incorporates spherically shaped check valves and tapered tubes with specific geometric configurations to manage fluid flow, including tangential transitions and gradual changes in cross-sectional area, to minimize turbulence and pressure loss, mimicking the natural flow dynamics of the human heart.

Benefits of technology

The solution ensures uniform fluid direction and minimizes pressure loss and turbulence, providing a smooth flow that mimics the natural operation of the human heart, ensuring safe and efficient fluid delivery.

✦ Generated by Eureka AI based on patent content.

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Abstract

A pump valving assembly for a pulsatile fluid pump includes a pumping chamber, an inlet port, and an outlet port. The pump valving assembly further includes an inlet spherical check valve assembly, first and second tapered tubes disposed between the inlet port and the pumping chamber, an outlet spherical check valve assembly, and third and fourth tapered tubes disposed between the pumping chamber and the outlet port. The first tapered tube expands in cross-sectional area from the inlet port to the inlet spherical check valve assembly, and the second tapered tube contracts in cross-sectional area from the inlet spherical check valve assembly to the chamber. The third tapered tube expands in cross-sectional area from the chamber to the outlet spherical check valve assembly, and the fourth tapered tube contracts in cross-sectional area from the outlet spherical check valve assembly to the outlet port.
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Description

[Technical Field]

[0001] (Related Applications) This application is one of four applications filed on the same date and having attorney docket numbers 4747 / 1001, 4747 / 1002, 4747 / 1003, and 4747 / 1004, each of which is incorporated herein by reference in its entirety.

[0002] The present invention relates to a pulsating fluid pump, and more particularly to a pulsating fluid pump suitable for pumping blood. [Background technology]

[0003] A pulsatile fluid pump is taught in U.S. Pat. No. 7,850,593 ("our prior patent") to Douglas Vincent and Matthew Murphy, co-inventors of the present invention. The prior patent discloses a pump actuated by a linear motor configured to cause reciprocating motion of a flexible membrane, which in turn serves as the wall of a fluid housing coupled to a pair of spherical valves in such a manner as to implement pulsatile fluid flow. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] U.S. Patent No. 7,850,593 Summary of the Invention [Means for solving the problem]

[0005] According to one embodiment of the present invention, a pump valving assembly for a pulsating fluid pump includes a generally cylindrical pumping chamber, an inlet port having an inlet and coupled to the pumping chamber, and an outlet port having an outlet and coupled to the pumping chamber. The pump valving assembly further includes a spherically shaped inlet spherical check valve assembly coupled to the inlet port, first and second tapered tubes coupled to the inlet spherical check valve assembly and positioned between the inlet port and the pumping chamber, a spherically shaped outlet spherical check valve assembly coupled to the outlet port, and third and fourth tapered tubes coupled to the outlet spherical check valve assembly and positioned between the pumping chamber and the outlet port, respectively. A first tapered tube expands in cross-sectional area from the inlet to the inlet spherical check valve assembly, a second tapered tube contracts in cross-sectional area from the inlet spherical check valve assembly to the chamber, which opens and closes flow between the pumping chamber and the inlet port, a third tapered tube expands in cross-sectional area from the chamber to the outlet spherical check valve assembly, and a fourth tapered tube contracts in cross-sectional area from the outlet spherical check valve assembly to the outlet from the outlet port, which opens and closes flow between the pumping chamber and the outlet port.

[0006] Alternatively or additionally, the taper of at least one of the tapered tubes is conical. Also, alternatively or additionally, the pump valving assembly further includes an inlet transition region coupled between the second tapered tube and the chamber and configured to conduct fluid along a path that is generally tangential to an interior circumference of the chamber to establish unimpeded fluid flow within the chamber.

[0007] Alternatively or additionally, the pump valving assembly further includes an outflow transition region coupled between the chamber and the third tapered tube and providing a channel of gradually increasing width starting within the chamber, the outflow transition region configured to allow fluid to smoothly exit from fluid rotation within the chamber to linear flow within the third tapered tube. The present specification also provides, for example, the following items: (Item 1) 1. A pump valving assembly for a pulsating fluid pump, said assembly comprising: a generally cylindrical pumping chamber; an inlet port having an inlet and coupled to the pumping chamber; an outlet port coupled to the pumping chamber, the outlet port having an outlet; a spherically shaped inlet spherical check valve assembly coupled to the inlet port; first and second tapered tubes coupled to the inlet spherical check valve assembly and positioned between the inlet port and the pumping chamber, respectively; a spherically shaped outlet spherical check valve assembly coupled to the outlet port; third and fourth tapered tubes coupled to the outlet spherical check valve assembly and disposed between the pumping chamber and the outlet port, respectively; and Equipped with therefore, (i) the first tapered tube expands in cross-sectional area from the inlet to the inlet port to the inlet spherical check valve assembly, and the second tapered tube contracts in cross-sectional area from the inlet spherical check valve assembly to the chamber, the inlet spherical check valve assembly opening and closing flow between the pumping chamber and the inlet port; (ii) the third tapered tube expands in cross-sectional area from the chamber to the outlet spherical check valve assembly and the fourth tapered tube contracts in cross-sectional area from the outlet spherical check valve assembly to the outlet from the outlet port, the outlet spherical check valve assembly opening and closing flow between the pumping chamber and the outlet port; Pump valve adjustment assembly. (Item 2) Item 1. The pump valving assembly of item 1, wherein at least one taper of the tapered tube is conical. (Item 3) Item 1, further comprising an inlet transition region coupled between the second tapered tube and the chamber and configured to conduct fluid along a path that is approximately tangential to an interior circumference of the chamber so as to establish unimpeded circular fluid flow within the chamber. (Item 4) Item 1. The pump valving assembly of item 1, further comprising an outflow transition region coupled between the chamber and the third tapered tube, providing a channel of gradually increasing width starting within the chamber, the outflow transition region configured to allow fluid to smoothly exit from fluid rotation in the chamber to linear flow in the third tapered tube. (Item 5) Item 4. The pump valving assembly of item 3, further comprising an outlet transition region coupled between the chamber and the third tapered tube, providing a channel of gradually increasing width beginning within the chamber, the outlet transition region configured to allow fluid to smoothly exit from fluid rotation within the chamber to linear flow within the third tapered tube. [Brief explanation of the drawings]

[0008] The foregoing features of the embodiments will be more readily understood by reference to the following detailed description, taken in conjunction with the accompanying drawings.

[0009] [Figure 1]FIG. 1 is a horizontal cross-section of a pump valving assembly 101 in diastolic mode with chamber 102 filling, according to an embodiment of the present invention.

[0010] [Figure 2] FIG. 2 is a horizontal cross-section of the pump valving assembly 101 of FIG. 1, with the pump valving assembly 101 in systolic mode with the chamber 102 evacuated.

[0011] [Figure 3] FIG. 3 is a vertical cross-section of the inlet ball check valve assembly 110 of the embodiment of FIG. 1, with the pump valving assembly 101 in diastolic mode with the chamber 102 filling and the inlet ball 114 in the fill position.

[0012] [Figure 4] FIG. 4 is a vertical cross-section of the inlet ball check valve assembly 110 of the embodiment of FIG. 1, with the pump valving assembly 101 in a transition mode between diastolic and systolic modes and the inlet ball 114 in an unseated position.

[0013] [Figure 5] FIG. 5 is a vertical cross-section of the inlet ball check valve assembly 110 of the embodiment of FIG. 1, with the pump valving assembly 101 in systolic mode with the chamber 102 evacuated and the inlet ball 114 in the empty position.

[0014] [Figure 6] FIG. 6 is a vertical cross-section of the outlet ball check valve assembly 120 of the embodiment of FIG. 1, with the pump valving assembly 101 in diastolic mode with the chamber 102 filling and the outlet ball 124 in the fill position.

[0015] [Figure 7]FIG. 7 is a vertical cross-section of the outlet ball check valve assembly 120 of the embodiment of FIG. 1, with the pump valving assembly 101 in a transition mode between diastolic and systolic modes and the outlet ball 124 in an unseated position.

[0016] [Figure 8] FIG. 8 is a vertical cross-section of the outlet ball check valve assembly 120 of the embodiment of FIG. 1, with the pump valving assembly 101 in systolic mode with the chamber 102 evacuated and the outlet ball 124 in the empty position.

[0017] [Figure 9] FIG. 9 is an exploded top perspective view of the pump valving assembly 101 of FIG.

[0018] [Figure 10A] FIG. 10A is a side view of the inlet port 111 of the embodiment of FIG.

[0019] [Figure 10B] FIG. 10B is a vertical cross section of the inlet port 111 of FIG. 10A taken through plane AA.

[0020] [Figure 10C] FIG. 10C is an end view of the inlet port 111 of FIG. 10A.

[0021] [Figure 10D] FIG. 10D is a perspective view of the inlet port 111 of FIG. 10A.

[0022] [Figure 11A] FIG. 11A is a side view of outlet port 121 of the embodiment of FIG.

[0023] [Figure 11B] FIG. 11B is a vertical cross section of the outlet port 121 of FIG. 11A taken through plane AA.

[0024] [Figure 11C] FIG. 11C is an end view of the outlet port 121 of FIG. 11A.

[0025] [Figure 11D] FIG. 11D is a perspective view of the outlet port 121 of FIG. 11A. DETAILED DESCRIPTION OF THE INVENTION

[0026] Detailed Description of Specific Embodiments Definitions. As used within this description and the accompanying claims, the following terms shall have the meanings indicated, unless the context otherwise requires. "Normal flow" is the flow from the inlet at inlet port 111 through chamber 102 to the outlet at outlet port 121. A "slight flow backflow" past the ball in a spherical check valve is a small and controlled amount of desired backflow past the ball before it is seated in the closed position. The "diastolic mode" is a phase of operation of a pulsatile pump according to an embodiment of the present invention, during which the diaphragm (not shown) of the pump valve adjustment assembly 101 is pulled away from the chamber 102 to create negative pressure in the third tapered tube 126, but not in the chamber 102, the inlet spherical check valve assembly 110, and the fourth tapered tube 122. The "systolic mode" is a phase of operation of a pulsatile pump according to an embodiment of the present invention, during which the diaphragm (not shown) is pushed toward the chamber 102 to generate positive pressure in the second tapered tube 116 but not in the chamber 102, the outlet spherical check valve assembly 120, and the first tapered tube 112.

[0027] 1 is a horizontal cross-section of a pump valving assembly 101 in diastolic mode, with chamber 102 filling, according to an embodiment of the present invention. Fluid flows through first tapered tube 112, past inlet ball 114, and into inlet port 111 because inlet ball 114 engages against inlet rib 115, which creates a gap between inlet ball 114 and second tapered tube 116, allowing fluid to flow into second tapered tube 116 and then into chamber 102. Pump valving assembly 101 operates in cooperation with a diaphragm (not shown) that seats around the circumference of chamber 102. Movement of the diaphragm in cooperation with inlet spherical check valve assembly 110 and outlet spherical check valve assembly 120 causes fluid flow into chamber 102. While chamber 102 is filling, outlet ball 124 in outlet ball check valve assembly 120 abuts against outlet port 123, preventing fluid flow from outlet port 121 back into chamber 102. Fluid flywheel 103 (described below) is shown (in these figures, like numbered items correspond to similar components across different views).

[0028] 2 is a horizontal cross-section of the pump valving assembly 101 of FIG. 1 , with the pump valving assembly 101 in systolic mode, with the chamber 102 evacuated. The outlet port 121 receives fluid from the chamber 102, past the outlet ball 124, via the third tapered tube 126, because the outlet ball 124 engages against the outlet rib 125, which creates a gap between the outlet ball 124 and the fourth tapered tube 122, allowing the fluid to flow into the fourth tapered tube 122 and then exit through the outlet port 121. The pump valving assembly 101 operates in cooperation with a diaphragm (not shown) that seats around the circumference of the chamber 102. Movement of the diaphragm in cooperation with the inlet spherical check valve assembly 110 and the outlet spherical check valve assembly 120 causes fluid flow out of the chamber 102. While chamber 102 is being emptied, inlet ball 114 in inlet ball check valve assembly 110 abuts against inlet port 113, preventing fluid flow from chamber 102 back into inlet port 111. A fluid flywheel 103 (described below) is shown.

[0029] 3 is a vertical cross-section of the inlet ball check valve assembly 110 of the embodiment of FIG. 1, with the pump valving assembly 101 in diastolic mode with the chamber 102 filling and the inlet ball 114 in the fill position. Because the inlet ball 114 engages against the inlet rib 115, which results in a gap between the inlet ball 114 and the second tapered tube 116 to allow fluid to flow into the second tapered tube 116 and then into the chamber 102, negative pressure created by the diaphragm (not shown) pulling away from it forces fluid to flow through the first tapered tube 112, past the inlet ball 114, and into the inlet port 111 when the chamber 102 is filling.

[0030] Fluid flow within tapered tubes 112, 116, 122, and 126 provides a gradual change in velocity as a function of cross-sectional area to maintain continuity of flow past and through balls 114 and 124, respectively. With respect to either ball 114 or 124, the geometry of ball 114 or 124, the physical properties of ball 114 or 124, and spherical check valve assembly 110 or 120 are configured to collectively stabilize ball 114 or 124 over a series of positions and transitions to those positions and the velocity of ball 114 or 124 during the course of pulsatile flow of fluid through the pump, i.e., as modulated over a range of viscosities for blood or other fluid being pumped. During the pumping process, the pulsating nature of the pump causes a change in the direction of flow across balls 114 and 124, and the pump is configured to achieve this change in direction in a manner that minimizes the total pressure loss across spherical check valve assemblies 110 and 120. Additionally, when a given one of balls 114 or 124 is moving to an open position (relative to rib 115 or 125, as the case may be) that enables flow past the given ball 114 or 124, the pump is configured to maintain a sufficient flow velocity (and pressure differential across the given ball 114 or 124) and hold it against rib 115 or 125. Similarly, check valve assemblies 110 and 120 are configured to create symmetry of other fluid velocity forces on the given ball 114 or 124 and prevent undesired lateral movement of the given ball 114 or 124.

[0031] Ribs 115 and 125 occupy a portion of the volume of the spherical check valve assembly 110 or 120 within which they are located. The volume displaced by these ribs 115 or 125 therefore reduces the cross-sectional area of ​​the spherical check valve assembly 110 or 120 in the vicinity of the ribs 115 or 125, thus causing an increase in the velocity of fluid flow within the region. The inventors utilize this increased velocity to retain a given ball 114 or 124 against the rib 115 or 125, as described in the previous paragraph.

[0032] Although the operation of pump valving assembly 101 is pulsatile in nature, the flow within chamber 102 is always in a uniform direction (clockwise in this illustration). Fluid eventually enters chamber 102 through inlet port 111 and eventually exits chamber 102 through outlet port 121. This flow results in clockwise movement of fluid within chamber 102. The clockwise movement is triggered, at least in part, by configuring the geometry of pump valving assembly 101 to induce tangential flow of fluid from inlet port 111 into chamber 102. In addition, the large changes in volume of chamber 102 caused by the diaphragm (not shown) cause the fluid to undergo multiple axial rotations within chamber 102 over each stroke of diaphragm 202 during the pumping process. This fluid movement creates what we call a "fluidic flywheel" 103; the inertia of the rotating fluid within chamber 102 engages the fluid entering through inlet port 111, thus continuing the fluidic flywheel. Without fluidic flywheel 103, the incoming fluid would encounter the static resistance of the fluid already within chamber 102. Fluidic flywheel 103 creates a relatively smooth fluid flow through the pump from end to end.

[0033] Pump valving assembly 101 includes a fluid inlet transition region 117 that projects into chamber 102 and a fluid outlet transition region 127 that projects from chamber 102. These transition regions 117 or 127 intervene between circular flow within chamber 102 and linear flow within tapered tubes 116 or 126, respectively. Transition region 117 has the primary function of unimpededly establishing circular flow within chamber 102, and does so by conducting fluid along a path that is approximately tangential to the interior circumference of chamber 102. In contrast, transition region 127 has the somewhat more complex function of allowing fluid to unimpededly exit the fluid flywheel within chamber 102 and achieve a transition to linear flow within third tapered tube 126, enabling flow through outlet port 121, and does so by providing a channel of gradually increasing width that begins within chamber 102.

[0034] 4 is a vertical cross-section of the inlet ball check valve assembly 110 of the embodiment of FIG. 1, with the pump valving assembly 101 in a transition mode between diastolic and systolic modes and the inlet ball 114 in an unseated position. During the transition mode, there is a slight reversal of flow until the inlet ball 114 impinges against the inlet port 113.

[0035] 5 is a vertical cross-section of the inlet ball check valve assembly 110 of the embodiment of FIG. 1, with the pump valving assembly 101 in systolic mode with chamber 102 evacuated and inlet ball 114 in the vacant position. When chamber 102 is evacuated, positive pressure created by a diaphragm (not shown) pushing against it causes inlet ball 114 in inlet ball check valve assembly 110 to impact against inlet port 113 to prevent fluid flow from chamber 102 back into inlet port 111.

[0036] 6 is a vertical cross-section of the outlet ball check valve assembly 120 of the embodiment of FIG. 1, with the pump valving assembly 101 in diastolic mode with the chamber 102 filling and the outlet ball 124 in the fill position. While the chamber 102 is filling, negative pressure created by the diaphragm (not shown) pulling away from it causes the outlet ball 124 in the outlet ball check valve assembly 120 to impact against the outlet port 123 to prevent fluid flow from the outlet port 121 back into the chamber 102.

[0037] 7 is a vertical cross-section of the outlet ball check valve assembly 120 of the embodiment of FIG. 1, with the pump valving assembly 101 in a transition mode between diastolic and systolic modes and the outlet ball 124 in an unseated position. During the transition mode, there is a slight reversal of flow until the outlet ball 124 impinges against the outlet port 123.

[0038] 8 is a vertical cross-section of the outlet ball check valve assembly 120 of the embodiment of FIG. 1, with the pump valving assembly 101 in systolic mode with the chamber 102 evacuated and the outlet ball 124 in the vacant position. When the chamber 102 is evacuated, positive pressure created by the diaphragm (not shown) pushing against it creates a gap between the outlet ball 124 and the fourth tapered tube 122, causing the outlet ball 124 in the outlet ball check valve assembly 120 to impact against the outlet rib 125, allowing fluid to flow into the fourth tapered tube 122 and then exit the outlet port 121.

[0039] 9 is an exploded top perspective view of the pump valving assembly 101 of FIG. 1, showing the pump valving assembly 101, chamber 102 (now covered), inlet port assembly 110, inlet port 111, first tapered tube 112, inlet port 113, inlet bulb 114, inlet rib 115, second tapered tube 116, outlet port assembly 120, outlet port 121, fourth tapered tube 122, outlet port 123, outlet bulb 124, outlet rib 125, and third tapered tube 126. A diaphragm (not shown) is attached around the circumference of the bottom of chamber 102 and pushes upward toward chamber 102 in systolic mode and pulls downward away from chamber 102 in diastolic mode. While it may be conceivable that discontinuities in fluid flow may be useful in pulsatile pumping of blood, the inventors have found that, in general, discontinuities in flow are undesirable. The pump of this embodiment includes several features to reduce or eliminate such discontinuities. In particular, tapered tubes 112, 116, 122, and 126 are configured to reduce turbulence in the inflow leading to, across, and beyond inlet bulb 114, and similarly in the outflow leading to, across, and beyond outlet bulb 124.

[0040] FIG. 10A is a side view of the inlet port 111 of the embodiment of FIG.

[0041] FIG. 10B is a vertical cross-section of the inlet port 111 of FIG. 10A taken through plane AA, showing the first tapered tube 112 and the inlet opening 113 against which the inlet bulb 114 rests to close off flow when the pump valving assembly 101 is in systolic mode.

[0042] FIG. 10C is an end view of the inlet port 111 of FIG. 10A, showing the first tapered tube 112 and the inlet port 113.

[0043] FIG. 10D is a perspective view of the inlet port 111 of FIG. 10A.

[0044] FIG. 11A is a side view of outlet port 121 of the embodiment of FIG.

[0045] FIG. 11B is a vertical cross-section of the outlet port 121 of FIG. 11A taken through plane AA, showing the fourth tapered tube 122 and the outlet rib 125, which creates a gap that allows normal fluid flow when the pump valving assembly 101 is in systolic mode.

[0046] FIG. 11C is an end view of the outlet port 121 of FIG. 11A, showing the fourth tapered tube 122 and the outlet rib 125.

[0047] FIG. 11D is a perspective view of the outlet port 121 of FIG. 11A.

[0048] The design of a pulsatile pump according to various embodiments of the present invention can usefully reflect the attributes of the human heart. The human heart is preload-sensitive, meaning that it cannot "pull" blood into the left ventricle; it can only allow available blood to flow naturally into the ventricle. The human heart is also afterload-sensitive, in that it responds to compliance and resistance in the downstream vasculature and does not exert excessive force on the blood, which could damage the vasculature. Finally, the left ventricle cannot deliver blood that is not present in the ventricle when it contracts, so the bolus of blood it can deliver is limited.

[0049] Pump valving assembly 101 has similar inherent safety attributes, being preload- and afterload-sensitive, which limits both the volume of blood it can deliver and the force with which it can deliver that bolus of blood. When filled, pump valving assembly 101 allows gravity filling from an intravenous reservoir and exerts minimal negative pressure. When a chamber within pump valving assembly 101 is emptied, the linear motor powering the pump valving assembly is limited by design. As a result, the pump valving assembly cannot exert excessive pressure on downstream tubing or vasculature and instead delivers less than the volume of blood in pump chamber 102, thereby delivering only as much as the vasculature can accommodate.

[0050] The pump valving assembly 101 resembles the left ventricle of the human heart, the inlet spherical check valve assembly 110 used in various embodiments herein resembles the mitral valve, and the outlet spherical check valve assembly 120 used in various embodiments herein resembles the aortic valve. Like the human heart, the inlet 110 and outlet 120 spherical check valve assemblies are passive and require a slight retrograde flow to close. This slight retrograde flow mimics the slight retrograde flow that occurs when the aortic valve in the human heart closes.

[0051] The embodiments of the present invention described above are intended to be merely exemplary, and numerous variations and modifications will be apparent to those skilled in the art. All such variations and modifications are intended to be within the scope of the present invention, as defined in any appended claims.

Claims

1. 1. A pump valving assembly for a pulsating fluid pump, the pump valving assembly comprising: a generally cylindrical pumping chamber defined by an outer wall; an inlet port having an inlet and coupled to the pumping chamber; an outlet port coupled to the pumping chamber, the outlet port having an outlet; a spherically shaped inlet spherical check valve assembly coupled to the inlet port through a first tapered tube and to the pumping chamber through a second tapered tube, the second tapered tube extending directly to the outer wall of the pumping chamber, the inlet spherical check valve assembly having an inner wall defining a volume within which an inlet ball is disposed, the inlet spherical check valve assembly including an inlet rib and an inlet bottom portion configured to engage the inlet ball; an outlet spherical check valve assembly that is spherically shaped, the outlet spherical check valve assembly being coupled to the pumping chamber through a third tapered tube and to the outlet port through a fourth tapered tube, the third tapered tube extending directly to the outer wall of the pumping chamber, the outlet spherical check valve assembly having an inner wall that defines a volume within which an outlet ball is disposed, the outlet spherical check valve assembly including an outlet rib and an outlet port configured to engage the outlet ball; Equipped with therefore, (i) the first tapered tube continuously expands in cross-sectional area from the inlet to the inlet port to the inlet spherical check valve assembly, and the second tapered tube continuously reduces in cross-sectional area from the inlet spherical check valve assembly to the pumping chamber, the inlet spherical check valve assembly opening and closing flow between the pumping chamber and the inlet port; (ii) the third tapered tube continuously expands in cross-sectional area from the pumping chamber to the outlet spherical check valve assembly, and the fourth tapered tube continuously reduces in cross-sectional area from the outlet spherical check valve assembly to the outlet from the outlet port, the outlet spherical check valve assembly opening and closing flow between the pumping chamber and the outlet port; Pump valve adjustment assembly.

2. The pump valving assembly of claim 1 , wherein at least one taper of the tapered tube is conical.

3. 2. The pump valving assembly of claim 1, further comprising an inlet transition region coupled between the second tapered tube and the pumping chamber and configured to conduct fluid along a path that is generally tangential to an interior circumference of the pumping chamber to establish unimpeded circular fluid flow within the pumping chamber.

4. 2. The pump valving assembly of claim 1, further comprising an outflow transition region coupled between the pumping chamber and the third tapered tube, the outflow transition region providing a channel of gradually increasing width beginning within the pumping chamber, the outflow transition region configured to allow fluid to smoothly exit from fluid rotation in the pumping chamber to linear flow in the third tapered tube.

5. 4. The pump valving assembly of claim 3, further comprising an outflow transition region coupled between the pumping chamber and the third tapered tube, the outflow transition region providing a channel of gradually increasing width beginning within the pumping chamber, the outflow transition region configured to allow fluid to smoothly exit from fluid rotation in the pumping chamber to linear flow in the third tapered tube.

Citation Information

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