FLUID TRANSPORT DEVICE
20170314551 ยท 2017-11-02
Inventors
Cpc classification
F04C2240/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/1075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/107
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C2/107
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention comprises: a stator 2 that is cylindrical and has a through hole 10, the through hole 10 in the shape of a female screw and being formed at a certain pitch in the flow direction from an inlet to an outlet; and a rotor 3 that is formed in the shape of a male screw, is inserted into the through hole 10 of the stator 2 to form a transport space 11 with the inner circumferential surface of the through hole, and rotates to move a fluid from the inlet to the outlet through the transport space 11 while being inscribed on the inner circumferential surface. The volume of the transport space 11 is reduced toward the flow direction. This prevents, reliably, the occurrence of bubbles from a fluid at a downstream-side when the fluid is transported through the transport space 11 formed between the stator 2 and the rotor 3.
Claims
1. (canceled)
2. A fluid transport device comprising: a stator having a tubular shape and provided with a through hole in a female screw shape having predetermined pitches in a flow direction from an inlet port to a discharge port; and a rotor having a male screw shape, inserted through the through hole of the stator to form a transport space between the rotor and an inner circumferential surface of the through hole, and configured to rotate to be in contact with the inner circumferential surface to shift fluid from the inlet port to the discharge port in the transport space, wherein a capacity of the transport space is decreased in the flow direction by decrease in pitches of the female screw shape of the through hole of the stator and the male screw shape of the rotor.
3. A fluid transport device comprising: a stator having a tubular shape and provided with a through hole in a female screw shape having predetermined pitches in a flow direction from an inlet port to a discharge port; and a rotor having a male screw shape, inserted through the through hole of the stator to form a transport space between the rotor and an inner circumferential surface of the through hole, and configured to rotate to be in contact with the inner circumferential surface to shift fluid from the inlet port to the discharge port in the transport space, wherein a capacity of the transport space is decreased in the flow direction by decrease in sectional area of the through hole of the stator with the rotor having a constant diameter.
4. A fluid transport device comprising: a stator having a tubular shape and provided with a through hole in a female screw shape having predetermined pitches in a flow direction from an inlet port to a discharge port; and a rotor having a male screw shape, inserted through the through hole of the stator to form a transport space between the rotor and an inner circumferential surface of the through hole, and configured to rotate to be in contact with the inner circumferential surface to shift fluid from the inlet port to the discharge port in the transport space, wherein a capacity of the transport space is decreased in the flow direction by increase in diameter of the rotor with the through hole of the stator having a constant sectional area.
5. A fluid transport device comprising: a stator having a tubular shape and provided with a through hole in a female screw shape having predetermined pitches in a flow direction from an inlet port to a discharge port; and a rotor having a male screw shape, inserted through the through hole of the stator to form a transport space between the rotor and an inner circumferential surface of the through hole, and configured to rotate to be in contact with the inner circumferential surface to shift fluid from the inlet port to the discharge port in the transport space, wherein a capacity of the transport space is decreased in the flow direction by decrease in eccentricity of the rotor.
6. The fluid transport device according to claim 2, wherein a decrease rate of the pitches of the female screw shape of the through hole of the stator and the male screw shape of the rotor is not less than dimensional tolerance.
7. The fluid transport device according to claim 3, wherein a decrease rate of the sectional area of the through hole of the stator is not less than dimensional tolerance.
8. The fluid transport device according to claim 4, wherein an increase rate of the diameter of the rotor is not less than dimensional tolerance.
9. The fluid transport device according to claim 4, wherein a decrease rate of the eccentricity of the rotor is not less than dimensional tolerance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
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MODES FOR CARRYING OUT THE INVENTION
[0027] An embodiment of the present invention will be described below with reference to the accompanying drawings. The following description is merely exemplary, and will not limit the present invention, those to which the present invention is applicable, or purposes of use thereof. The drawings depict schematic images without actual dimensional ratios and the like.
[0028]
[0029] The casing 1 is made of a metal material formed into a tubular shape, and accommodates a coupling rod 5. The coupling rod 5 has one end connected to a coupling 6 so that motive power from the driving device is transmitted. The one end of the casing 1 has an outer circumferential surface connected with a connecting tube 7 so that fluid can be supplied from a tank or the like (not depicted).
[0030] The stator 2 includes an outer cylinder 8, and a stator body 9 disposed in tight contact with an inner surface of the outer cylinder 8.
[0031] The outer cylinder 8 is made of a metal material formed into a tubular shape.
[0032] The stator body 9 is made of an elastic material such as rubber or resin appropriately selected in accordance with a transport target object (e.g. silicone rubber, or fluororubber for cosmetics containing silicone oil) formed into a tubular (e.g. circular cylindrical) shape. The stator 2 has a center hole 10 having an inner circumferential surface in a female screw shape with n threads and single or multiple steps.
[0033] The rotor 3 is a metal shaft body having a male screw shape with n-1 threads and single or multiples steps. The rotor 3 is disposed in the center hole 10 of the stator 2 to form a transport space 11 continuously extending in a longitudinal direction of the center hole 10. The rotor 3 has one end coupled to the coupling rod 5 in the casing, and spins in the stator 2 and revolves along the inner circumferential surface of the stator 2 with driving force from the driving device (not depicted). Specifically, the rotor 3 eccentrically rotates in the center hole 10 of the stator 2 to transport a target object in the transport space 11 in the longitudinal direction.
[0034] The center hole 10 in the stator body 9 and the outline of the rotor 3 are shaped in the following manners.
[0035]
[0036]
[0037]
[0038]
[0039] Next, the behavior of the uniaxial eccentric screw pump thus configured will be described.
[0040] Upon discharge of fluid from a tank or the like, the driving device (not depicted) is driven to rotate the rotor 3 via the coupling 6 and the coupling rod 5. This rotation causes shift in the longitudinal direction of the transport space 11 formed between the inner circumferential surface of the stator 2 and the outer circumferential surface of the rotor 3. The fluid discharged from the tank is then sucked into the transport space 11 and is transported to the end stud 4. The fluid having reached the end stud 4 is further transported to a different site.
[0041] In any one of the configurations depicted in
[0042] The present invention is not limited to the embodiment described above, but includes various modifications.
[0043] For example, the configurations depicted in
[0044] The above embodiment does not particularly refer to a capacity decrease rate of the transport space 11 in the transport direction. A preferred configuration causes the capacity to be reliably decreased even in consideration of dimensional tolerance of constituent parts. In this case, a decrease rate of the pitches of the female screw shape of the center hole 10 of the stator 3 and the male screw shape of the rotor 2, a decrease rate of the sectional area of the center hole 10 of the stator 3, an increase rate of the diameter of the rotor 2, or a decrease rate of eccentricity of the rotor 2 will be set to be not less than the dimensional tolerance. Generation of bubbles is thus reliably prevented without increase in capacity of the transport space in the transport direction due to the dimensional tolerance.
[0045] The above embodiment exemplifies the configurations for transporting fluid without generation of bubbles. The present invention can also include the following configuration. The rotor 3 is rotated reversely to cause the fluid to be transported from the left to the right in
INDUSTRIAL APPLICABILITY
[0046] The present invention is applicable to a device configured to transport fluid while simultaneously pressurizing or depressurizing the fluid.
DESCRIPTION OF SYMBOLS
[0047] 1 Casing [0048] 2 Stator [0049] 3 Rotor [0050] 4 End stud [0051] 5 Coupling rod [0052] 6 Coupling [0053] 7 Connecting tube [0054] 8 Outer cylinder [0055] 9 Stator body [0056] 10 Center hole (Through hole) [0057] 11 Transport space [0058] 12 First sub transport space [0059] 13 Second sub transport space [0060] 14 Third sub transport space [0061] 15 Fourth sub transport space [0062] 16 First region [0063] 17 Second region [0064] 18 Third region