FLUID FLOW CONVERTER
20210062833 ยท 2021-03-04
Inventors
Cpc classification
F03B17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2210/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/088
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F15B15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An apparatus for converting rotation to fluid flow, comprising a fluid conduit coiled around a rotational axis, the fluid conduit having a first inlet for receiving first fluid having a first density and a second inlet for receiving second fluid having a second density, and a first outlet for output of first fluid and a second outlet for output of second fluid; a motor coupled to the fluid conduit to rotate the fluid conduit around the rotational axis in a first angular direction such that first fluid portions of first fluid and second fluid portions of second fluid are transported along the fluid conduit towards the first outlet, while being pressurized; and a fluid returning arrangement, fluid flow connecting the second outlet and the second inlet for selectively allowing pressurized second fluid to return from the second outlet to the second inlet, while depressurizing the pressurized second fluid.
Claims
1. An apparatus for converting rotation to fluid flow, comprising: a fluid conduit coiled around a rotational axis, said fluid conduit having a first inlet for receiving first fluid having a first density and a second inlet for receiving second fluid having a second density, different from said first density, and a first outlet for output of first fluid and a second outlet for output of second fluid; said fluid conduit being rotatable around said rotational axis in a first angular direction such that first fluid portions of said first fluid and second fluid portions of said second fluid are transported along said fluid conduit towards said first outlet, while being pressurized; and a motor coupled to said fluid conduit to rotate said fluid conduit around said rotational axis in a first angular direction such that first fluid portions of first fluid and second fluid portions of second fluid are transported along said fluid conduit towards said first outlet, while being pressurized; and a fluid returning arrangement, fluid flow connecting said second outlet and said second inlet for selectively allowing pressurized second fluid to return from said second outlet to said second inlet, while depressurizing said pressurized second fluid.
2. (canceled)
3. The apparatus according to claim 1, wherein said fluid returning arrangement comprises a pressure reducing arrangement including an actuator, said pressure reducing arrangement being configured to: receive said pressurized second fluid; cause said pressurized second fluid to perform work on said actuator, resulting in movement of said actuator, to thereby be depressurized; and output depressurized second fluid.
4. The apparatus according to claim 3, wherein said fluid returning arrangement comprises a fluid returning conduit, said actuator being arranged to move in relation to said fluid returning conduit as a result of interaction with said second fluid.
5. The apparatus according to claim 3, further comprising a conversion arrangement coupled to said actuator and configured to convert the movement of said actuator to rotation of said fluid conduit in said first angular direction.
6. The apparatus according to claim 5, said conversion arrangement mechanically coupling said actuator to said fluid conduit in such a way that the movement of said actuator results in rotation of said fluid conduit in said first angular direction.
7. The apparatus according to claim 3, wherein said pressure reducing arrangement comprises at least one of a turbine, a pump, and a piston.
8. The apparatus according to claim 1, wherein said fluid returning arrangement comprises a pressure reducing arrangement including an actuator, said pressure reducing arrangement being configured to: receive said pressurized second fluid; cause said pressurized second fluid to perform work on said actuator, resulting in movement of said actuator, to thereby be depressurized; and output depressurized second fluid, wherein said apparatus further comprises a conversion arrangement coupled to said actuator and configured to convert the movement of said actuator to rotation of said fluid conduit in said first angular direction.
9. The apparatus according claim 1, wherein said apparatus further comprises a first flow-control device controllable to prevent or allow fluid flow between said fluid conduit and said fluid returning arrangement through said second outlet.
10. The apparatus according to claim 9, wherein: said first flow-control device is an electrically controllable flow-control device; and said apparatus further comprises control circuitry having an input for receiving a signal indicative of an angular position of said second outlet, and at least a first output for providing a first control signal to said flow-control device to allow flow from said fluid conduit to said fluid returning arrangement through said second outlet when said second outlet is within a predetermined first angular range.
11. The apparatus according to claim 9, wherein: said first flow-control device is a mechanically actuated flow-control device; and said apparatus further comprises an actuation device arranged to move in response to rotation of said fluid conduit, and to interact with said first flow-control device to allow flow from said fluid conduit to said fluid returning arrangement through said second outlet when said second outlet is within a predetermined first angular range.
12. The apparatus according to claim 1, wherein said fluid returning arrangement comprises a fluid returning conduit connected to said second inlet
13. The apparatus according to claim 1, wherein said fluid conduit (3) further has a third inlet, arranged along said fluid conduit between said second inlet and said second outlet, for receiving first fluid.
14. (canceled)
15. (canceled)
16. (canceled)
17. (canceled)
18. (canceled)
19. An apparatus for converting fluid flow into rotation, comprising: a fluid conduit coiled around a rotational axis, said fluid conduit having a first inlet for receiving first fluid having a first density and a second inlet for receiving second fluid having a second density, different from said first density, and a first outlet for output of said first fluid and a second outlet for output of said second fluid, wherein said apparatus is configured in such a way that supply of pressurized first fluid portions to said first inlet and supply of pressurized second fluid portions to said second inlet causes said fluid conduit to rotate around said rotational axis and transport said first and second fluid portions towards said first outlet, while being depressurized; and wherein said apparatus further comprises a fluid returning arrangement, fluid flow connecting said second outlet and said second inlet for selectively allowing depressurized second fluid to return from said second outlet to said second inlet, while pressurizing said depressurized second fluid.
20. The apparatus according to claim 19, wherein said fluid returning arrangement comprises a pressurizing arrangement including an actuator, said pressurizing arrangement being configured to: receive said depressurized second fluid; convert movement of said actuator to work acting on said second fluid to pressurize said second fluid; and output pressurized second fluid, wherein said apparatus further comprises a conversion arrangement coupled to said actuator and configured to convert rotation of said fluid conduit to movement of said actuator.
21. (canceled)
22. The apparatus according to claim 19, wherein said fluid conduit further has a third inlet, arranged along said fluid conduit between said first inlet and said first outlet, for receiving second fluid.
23. (canceled)
24. (canceled)
25. (canceled)
26. (canceled)
27. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0041] These and other aspects of the present invention will now be described in more detail, with reference to the appended drawings showing an example embodiment of the invention, wherein:
[0042]
[0043]
[0044]
[0045]
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS
[0046] In the present detailed description, various embodiments of the apparatus and method according to the present invention are mainly described with reference to apparatuses for converting rotation into fluid flow and/or converting fluid flow into rotation using water as second fluid and air as first fluid.
[0047] It should be noted that this by no means limits the scope of the present invention, which equally well includes, for example, apparatuses operating using other combinations of first and second fluids having different densities. Operation with more than two different fluids is also foreseen.
[0048]
[0049] The above-mentioned first mode of operation will be described in detail here. The above-mentioned second mode of operation simply involves running the apparatus backwards as compared to the first mode of operation. This means that some fluid ports that are inlets in the first mode will be outlets in the second mode, and vice versa. This also means that an electric motor in the first mode of operation is an electric generator in the second mode of operation.
[0050] The compressor/air motor 1 comprises a fluid conduit 3 coiled around a rotational axis 5. As is schematically shown in
[0051] The apparatus 1 further comprises a fluid returning arrangement 19 configured to allow pressurized water to return from the outlets to the inlets, while depressurizing the pressurized water.
[0052] As can be seen in
[0053] The piston arrangement 21 includes an actuator, in the form of a piston 37 arranged to move (non-uniformly) linearly inside a cylinder 39, between a first radial position and a second radial position further away from the rotational axis 5 than the first radial position.
[0054] The fluid returning arrangement 19 in the example apparatus 1 of
[0055] In
[0056] To allow control of the return of pressurized second fluid, the fluid returning arrangement 19 further comprises a first controllable valve 45 between the second outlet 11 and the first fluid returning conduit 23, a second controllable valve 47 between the third outlet 13 and the first fluid returning conduit 23, a third controllable valve 49 between the fourth outlet 15 and the first fluid returning conduit 23, a fourth controllable valve 51 between the fifth outlet 17 and the first fluid returning conduit 23, a fifth controllable valve 53 between the first fluid returning conduit 23 and the cylinder 39 close to the above-mentioned first radial position, and a sixth controllable valve 55 between the first fluid returning conduit 23 and the cylinder 39 close to the above-mentioned second radial position.
[0057] As is schematically indicated in
[0058] To control operation of the controllable valves 45, 47, 49, 51, 53,-55, the apparatus 1 additionally includes an angle sensor 57, and a control unit 59 connected to the angle sensor 57 and to the controllable valves 45, 47, 49, 51, 53,-55, for providing control signals to the controllable valves 45, 47, 49, 51, 53,-55.
[0059] In the above-mentioned first mode of operation, the electric motor 65 rotates the first conduit 3, as well as the fluid returning arrangement 19 around the rotational axis 5 in a first angular direction 67 as is schematically indicated in
[0060] When the motor 65 rotates the fluid conduit 3 around the rotational axis 5 in the first angular direction 67, batches of water and air will be transported from the first inlet 7 and the second inlets 9a-b towards the common outlet 11, where batches of pressurized air and pressurized water are output.
[0061] After having been output through the common outlet 11, pressurized water and pressurized air are separated in the fluid separator 41. Pressurized air can be extracted through air nozzle 69, and pressurized water is allowed to enter the first fluid returning conduit 23 through the first controllable valve 45. Depending on the angular position of the cylinder 39 of the piston arrangement 21, the fifth controllable valve 53 or the sixth controllable valve 55 will be controlled to allow the pressurized water to enter the cylinder 39 to push the piston 37 towards or away from the rotational axis 5. In the angular position of the cylinder schematically illustrated in
[0062] Water in the cylinder 39 on the other side of the piston plate (in this case on the side facing the rotational axis 5) is pushed into the second inlet 9b via the third fluid returning conduit 31. Due to the work done by the piston arrangement 21 acting on the fluid conduit 3 to rotate the fluid conduit 3, the water that is pushed into the second inlet 9b has been depressurized by the cylinder, compared to the water entering the cylinder via the first fluid returning conduit 23.
[0063] Above, return of pressurized second fluid (water) from the second outlet (common outlet 11) (having the highest pressure) was described. It is also advantageous to return pressurized water from additional outlets along the fluid conduit 3, with different and lower pressures. Accordingly, the third 13, fourth 15, and fifth 17 outlets are also fluid flow connected to the first fluid returning conduit 23, and pressurized water is allowed to pass from the fluid conduit 3 through these outlets, by controlling their respective controllable valves.
[0064] As can be readily understood, each revolution/coil of the fluid conduit 3 is partly filled with water and partly filled with air. In particular, a lower portion of each revolution/coil is filled with water. When the apparatus 1 is in operation, the water in each revolution/coil is offset due to the build up of pressure in the fluid conduit 3. This is described in detail in WO 2016/080902.
[0065] To selectively return pressurized water, the control unit 59 is configured to control the different controllable valves to open one or several flow path(s) between the fluid conduit 3 and the cylinder 39, taking into account the angular positions of the respective controllable valves.
[0066] Although not shown in
[0067] In an example where the apparatus is used for compression and expansion of for example air for energy storage it could be advantageous to cool the air and/or water in compression mode, converting rotation into fluid; and heat the air/or water in expansion mode, converting fluid flow into rotation. The cooling or heating source could for example come from the temperature difference between surface and bottom water in oceans and lakes or other naturally occurring temperature differences as geothermal heat in the ground and air temperature. It could also come from solar heat collector panels or from burning biofuel.
[0068] Exemplary, and somewhat simplified, control sequences for the controllable valves in the apparatus 1 in
[0069] The x-axis in
[0070] From 0 to 90, the control unit 59 controls the fourth controllable valve 51 to open to allow pressurized water to flow from the fluid conduit 3 to the first fluid returning conduit 23 through the fourth controllable valve 51. Since, as is indicated in
[0071] From 90 to 180, the control unit 59 controls the third controllable valve 49 to open to allow pressurized water, with higher pressure, to flow from the fluid conduit 3 to the first fluid returning conduit 23 through the third controllable valve 49, to enter the cylinder 39 through the sixth controllable valve 55 to continue to push the piston 37 radially inwards in the cylinder 39.
[0072] From 180 to 270, the control unit 59 controls the second controllable valve 47 to open to allow pressurized water, with higher pressure, to flow from the fluid conduit 3 to the first fluid returning conduit 23 through the second controllable valve 47. Since, as is indicated in
[0073] From 270 to 360, the control unit 59 controls the first controllable valve 45 to open to allow pressurized water, with higher pressure, to flow from the fluid conduit 3, via the fluid separator 41, to the first fluid returning conduit 23 through the first controllable valve 45, to enter the cylinder 39 through the fifth controllable valve 53 to continue to push the piston 37 radially outwards in the cylinder 39.
[0074] It should be noted that the fluid returning arrangement 19 in the apparatus 1 in
[0075] Referring to
[0076] To replace the piston arrangement 21 in
[0077] The above-mentioned first mode of operation will be described in detail here. The above-mentioned second mode of operation simply involves running the apparatus backwards as compared to the first mode of operation. This means that some fluid ports that are inlets in the first mode will be outlets in the second mode, and vice versa. This also means that an electric motor in the first mode of operation is an electric generator in the second mode of operation. In addition to running the apparatus backwards, various other minor adjustments may be required and/or beneficial. Given the description provided herein, such minor adjustments will, however, be well within the capabilities of one of ordinary skill in the art.
[0078] The apparatus 100 according to the second embodiment shown in
[0079] As is schematically shown in
[0080] In addition to the first inlet and second inlet, here provided as common inlet 107, the fluid conduit 3 in the apparatus 100 in
[0081] The fluid conduit 3 in the apparatus 100 in
[0082] As is indicated in
[0083] The functionality of the pressure reducing arrangement 119 in the second embodiment of the apparatus 100 in
[0084] The first container 129 has a first container inlet 137, a first container outlet 139, a second container inlet 141, and a second container outlet 143. As is schematically indicated in
[0085] In operation, the first container inlet 137 is opened during a suitable time period to receive pressurized water into the first container 129 from the common outlet 111. The pressurized water (indicated by solid arrows in
[0086]
[0087] The person skilled in the art realizes that the present invention by no means is limited to the preferred embodiments described above. On the contrary, many modifications and variations are possible within the scope of the appended claims. For example, the fluid returning arrangement 19 may comprise a flow and/or pressure stabilization reservoir. The fluid returning arrangement 19 could be equipped with several check valves in sequence to enable a better flow control. It is also possible to use several fluid returning arrangements 19 in parallel or to have several outlet/inlets connected to the same container. One could also have several piston arrangements in parallel, which may, for example, be connected to different outlets. This may enable operation with fewer controllable flow-control devices, or completely without controllable flow-control devices.
[0088] In the claims, the word comprising does not exclude other elements or steps, and the indefinite article a or an does not exclude a plurality. A single processor or other unit may fulfill the functions of several items recited in the claims. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measured cannot be used to advantage. Any reference signs in the claims should not be construed as limiting the scope.