OSCILLATING FLUIDIC PRESSURE PULSE GENERATOR
20230115641 · 2023-04-13
Assignee
Inventors
- Xinxin ZHANG (Changsha, CN)
- Zhanghui WU (Changsha, CN)
- Shaohe ZHANG (Changsha, CN)
- Jingqiang TAN (Changsha, CN)
- Pinghe SUN (Changsha, CN)
- Dongyu WU (Changsha, CN)
Cpc classification
F15C1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F23/238
PERFORMING OPERATIONS; TRANSPORTING
F15B21/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F23/2373
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01F23/23
PERFORMING OPERATIONS; TRANSPORTING
B01F23/2373
PERFORMING OPERATIONS; TRANSPORTING
B01F31/81
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An oscillating fluidic pressure pulse generator, includes: an outer tube, an upper connector, a lower connector and a vortex fluidic oscillator. A first central fluid channel and a second central fluid channel are respectively formed in the upper connector and the lower connector, two ends of the outer tube are respectively connected to the upper connector and the lower connector through a screw thread, and the vortex fluidic oscillator is provided in the outer tube and abuts against the upper connector and the lower connector; and the vortex fluidic oscillator is provided with an inlet and connected to a fluidic oscillating chamber, two flow guiding blocks are arranged below the fluidic oscillating chamber, a vortex chamber inlet is formed between the two flow guiding blocks, two control channels are respectively formed outside the two flow guiding blocks, a vortex chamber is provided below the vortex chamber inlet.
Claims
1. An oscillating fluidic pressure pulse generator, comprising: an outer tube, an upper connector, a lower connector and a vortex fluidic oscillator, wherein a first central fluid channel and a second central fluid channel are respectively formed in the upper connector and the lower connector, two ends of the outer tube are respectively connected to the upper connector and the lower connector through a screw thread, the vortex fluidic oscillator is provided in the outer tube, and two ends of the vortex fluidic oscillator respectively abut against the upper connector and the lower connector; and an inlet is formed in the vortex fluidic oscillator, the inlet of the vortex fluidic oscillator is connected to a fluidic oscillating chamber, two flow guiding blocks are arranged below the fluidic oscillating chamber, a vortex chamber inlet is formed between the two flow guiding blocks, two control channels are respectively formed outside the two flow guiding blocks, at least one vortex chamber is provided below the vortex chamber inlet, the vortex chamber is provided with a vortex chamber outlet, and the vortex chamber outlet communicates with the second central fluid channel.
2. The oscillating fluidic pressure pulse generator according to claim 1, wherein an upper end of the vortex fluidic oscillator is in contact with the upper connector and sealed through a seal ring, and a lower end of the vortex fluidic oscillator is in contact with the lower connector and tightly pressed.
3. The oscillating fluidic pressure pulse generator according to claim 1, wherein an end of each of the flow guiding blocks close to the fluidic oscillating chamber is provided with a flow guiding surface, and an end of each of the flow guiding blocks close to the vortex chamber is provided with a fluidic wall-attaching surface.
4. The oscillating fluidic pressure pulse generator according to claim 1, wherein the vortex fluidic oscillator is an assembly of two or even more parts, or the vortex fluidic oscillator is integrally manufactured with additive manufacturing (AM).
5. The oscillating fluidic pressure pulse generator according to claim 4, wherein the vortex fluidic oscillator comprises a substrate and a cover plate.
6. The oscillating fluidic pressure pulse generator according to claim 5, wherein the substrate and the cover plate each is provided thereon with a vortex chamber outlet, or one of the substrate and the cover plate is provided thereon with a single vortex chamber outlet.
7. The oscillating fluidic pressure pulse generator according to claim 1, wherein the two control channels are symmetric with respect to an axis of the oscillating fluidic pressure pulse generator, and the control channels respectively communicate with the vortex chamber and the fluidic oscillating chamber.
8. The oscillating fluidic pressure pulse generator according to claim 1, wherein a centroid of the vortex chamber outlet and a centroid of the vortex chamber are radially coaxial.
9. The oscillating fluidic pressure pulse generator according to claim 1, wherein when multiple vortex chambers are provided, the vortex chambers each is provided with the vortex chamber outlet, or a lowermost vortex chamber is provided with the vortex chamber outlet.
10. The oscillating fluidic pressure pulse generator according to claim 1, wherein an external contour of the fluidic oscillating chamber is rectangular or circular-arc-shaped, and an external contour of the vortex chamber is circular or circular-arc-shaped.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
REFERENCE NUMERALS
[0029] I-upper connector, II-outer tube, III-vortex fluidic oscillator, IV-lower connector, V-substrate, VI-cover plate, 1 -central fluid channel of the upper connector, 2 -central fluid channel of the lower connector, 3 -inlet of the fluidic oscillator, 4 -fluidic oscillating chamber, 5 -flow guiding block, 6 -vortex chamber inlet, 7 -vortex chamber, 8a -left control channel, 8b -right control channel, 9 -vortex chamber outlet, 10 -exhaust channel, 11 -flow guiding surface, 12 -fluidic wall-attaching surface, 13 -special flow guiding block, 14 -second vortex chamber, 15 -second vortex chamber outlet, 16a -second left control channel, 16b -second right control channel, and 17 -central control channel.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0030] To make the to-be-solved technical problems, technical solutions, and advantages of the present disclosure clearer, the present disclosure will be described in detail below with reference to the accompanying drawings and specific embodiments.
[0031] In view of the problems of complicated structures, large numbers of quick-wearing spare parts, and limited service lives of existing various pressure pulse generators, the present disclosure provides an oscillating fluidic pressure pulse generator.
Embodiment 1
[0032] As shown in
[0033] An end of each of the flow guiding blocks 5 close to the fluidic oscillating chamber 4 is provided with a flow guiding surface 11, the flow guiding surface 11 is of a circular-arc shape, and an end of each of the flow guiding blocks 5 close to the vortex chamber 7 is provided with a fluidic wall-attaching surface 12.
[0034] The vortex fluidic oscillator III is an assembly of two or even more parts, or the vortex fluidic oscillator III is integrally manufactured with AM. In the embodiment, the vortex fluidic oscillator III consists of a substrate V and a cover plate VI, and the substrate V and the cover plate VI are connected together through a bolt.
[0035] The substrate V and the cover plate VI each is provided thereon with a vortex chamber outlet 9, or one of the substrate V and the cover plate VI is provided thereon with a single vortex chamber outlet 9. In the embodiment, the substrate V and the cover plate VI each is provided thereon with a vortex chamber outlet 9.
[0036] A centroid of the vortex chamber outlet 9 and a centroid of the vortex chamber 7 are radially coaxial.
[0037] When multiple vortex chambers 7 are provided, the vortex chambers 7 each is provided with a vortex chamber outlet 9, or a lowermost vortex chamber 7 is provided with a vortex chamber outlet 9. In the embodiment, there is one vortex chamber 7.
[0038] The fluidic oscillating chamber 4 is provided with a rectangular or circular-arc-shaped external contour, and the vortex chamber 7 is provided with a circular or circular-arc-shaped external contour.
[0039] The working principle of the embodiment is as follows: Because of the Coanda effect, after the fluid medium is accelerated through the inlet 3 of the fluidic oscillator, the main jet entering the fluidic oscillating chamber 4 is deflected from a central axis of the inlet to form a deflected jet leftward or rightward, and the deflected jet flows through the flow guiding surface of the flow guiding block 5 on one side and enters the vortex chamber 7 through the vortex chamber inlet 6. Likewise, because of the Coanda effect, the fluid entering the vortex chamber 7 is deflected toward the fluidic wall-attaching surface of the flow guiding block 5 on the other side. The fluid medium tangentially enters the vortex chamber 7 through the fluidic wall-attaching surface 12 to form a clockwise or counterclockwise high-speed rotating vortex. A part of the fluid flows back to the fluidic oscillating chamber 4 through the control channel 8 on the opposite side of the present flow guiding block 5 to form a recirculating flow. Due to disturbances of the recirculating flow, the main jet in the deflected jet is switched and deflected to the flow guiding surface 11 of the flow guiding block 5 on the other side, and the flow path of the main jet is switched to the fluidic wall-attaching surface 12 of the flow guiding surface 11 on the other side. By this time, the main jet impinges the vortex in the vortex chamber 7 and weakens the vortex to cause pressure fluctuations. As the vortex declines, the fluid flows out from the vortex chamber outlet 9, and is gradually re-formed into an opposite vortex in the vortex chamber 7. Similarly, a part of fluid in the re-formed vortex returns to the fluidic oscillating chamber 4 through the control channel 8, and affects the main jet again, and the above process is repeated. Due to a self-oscillating characteristic of the vortex fluidic oscillator, the oscillating fluidic pressure pulse generator generates periodic pressure fluctuations to form pressure pulses. The pressure pulses each have a waveform as shown in
Embodiment 2
[0040] The embodiment is structurally similar to Embodiment 1, and the difference lies in that a special flow guiding block 13, a second vortex chamber 14 and a second vortex chamber outlet 15 are provided. The fluid channel of the vortex fluidic oscillator III in the embodiment is as shown in
[0041] Compared with Embodiment 1, the vortex fluidic oscillator III in the embodiment is sequentially provided with one special flow guiding block 13 and one second vortex chamber 14 below the vortex chamber 7; the special flow guiding block 13 is formed into a second left control channel 16a and a second right control channel 16b with the substrate V and the cover plate VI; and the substrate V and the cover plate VI each is additionally provided thereon with one second vortex chamber outlet 15. As an improvement to the embodiment, a vortex chamber outlet communicating with the exhaust channel 10 may be provided on at least one cavity of the vortex chamber 7 and the second vortex chamber 14.
[0042] According to the fluid channel shown in
[0043] The oscillating fluidic pressure pulse generator provided by the embodiment has the characteristics of a low oscillation frequency and a low average pressure drop. It can effectively reduce the frictional resistance of the downhole drilling tool, and is favorable to normal work of the downhole measurement-while-drilling (MWD) system.
Embodiment 3
[0044] The embodiment has the basically same working principle as the vortex fluidic oscillator III in Embodiment 2. As shown in
[0045] The foregoing are descriptions of preferred embodiments of the present disclosure. It should be noted that a person of ordinary skill in the art can make several improvements and modifications without departing from the principle of the present disclosure, and such improvements and modifications should be deemed as falling within the protection scope of the present disclosure.