Buffered wall flow multi-channels flame arrester
11465003 · 2022-10-11
Assignee
Inventors
- Yuejin Zhu (Zhenjiang, CN)
- Zhenhua Pan (Zhenjiang, CN)
- Zhiwei Yang (Zhenjiang, CN)
- Penggang Zhang (Zhenjiang, CN)
- Jianfeng Pan (Zhenjiang, CN)
Cpc classification
International classification
Abstract
The present invention belongs to the field of flame arresters, and discloses a buffered wall flow multi-channels flame arrester. The flame arrester comprises a buffering and splitting cover and a Z-type wall flow multi-channels flame arresting core, wherein the buffering and splitting cover has a round-bottom plain-top cylindrical shape or hemispherical shape, with pinholes distributed in the cover surface, and channels are arranged inside the Z-type wall flow multi-channels flame arresting core. In every two adjacent channels, the inlet of one channel is blocked, and the outlet of the other channel is blocked, and in the height direction in the central cross section of the flame arresting core, pinholes are arranged in the wall surfaces between adjacent channels, and adjacent upper and lower channels constitute a fluid channel.
Claims
1. A buffered wall flow multi-channels flame arrester, comprising a gas inlet pipeline, two pairs of flange groups, a flame arrester shell, a gas outlet pipeline, a buffering and splitting cover, and a multi-channels flame arresting core, wherein the flame arrester shell comprises a front wall and a back wall, the gas inlet pipeline is connected to the front wall of the flame arrester shell via a first flange group, the back wall of the flame arrester shell is connected to the gas outlet pipeline via a second flange group, the buffering and splitting cover and the multi-channels flame arresting core are installed between the front wall and the back wall of the flame arrester shell, and an opening of the buffering and splitting cover is fixedly connected to the multi-channels flame arresting core; the front wall and the back wall of the flame arrester shell are fixed by flame arrester flanges, a flame arrester expansion chamber is formed in the front wall and the back wall of the flame arrester shell respectively; and wherein, the buffering and splitting cover has round-bottom plain-top cylindrical gratings or hemispherical gratings, a hollow inside and the opening is toward the back wall of the flame arrester shell; and wherein rectangular holes, square holes, rhombic holes, round holes, slotted holes, hexagonal holes, or octagonal holes are distributed in the entire cover surface.
2. The buffered wall flow multi-channels flame arrester according to claim 1, wherein, the inner diameter of the flame arrester expansion chamber is 2.5 times the diameter of the gas inlet pipeline, and both of the divergence angles of the front wall and the back wall of the flame arrester shell are 120° .
3. The buffered wall flow multi-channels flame arrester according to claim 1, wherein, in the case that the buffering and splitting cover has round-bottom plain-top cylindrical gratings, the inner diameter of the cover is equal to the diameter of the gas inlet pipeline, and the length of the cover is equal to the inner diameter of the cover.
4. The buffered wall flow multi-channels flame arrester according to claim 1, wherein, in the case that the buffering and splitting cover has hemispherical gratings, the inner diameter of the cover is equal to the inner diameter of the flame arrester expansion chamber, and the length of the cover is equal to ½ of the inner diameter of the flame arrester expansion chamber.
5. The buffered wall flow multi-channels flame arrester according to claim 1, wherein, the multi-channels flame arresting core is a Z-type wall flow multi-channels flame arresting core, the outer wall of the Z-type wall flow multi-channels flame arresting core contacts with the inner wall of the flame arrester shell, several layers of fluid channels are arranged inside the Z-type wall flow multi-channels flame arresting core, each fluid channel comprises a channel A and a channel B, wherein the outlet of the channel A is blocked, and the inlet of the channel B is blocked, and pinholes c are arranged in the wall surfaces between adjacent channels, so that the channel A communicates with the adjacent channel B at one side, and communicates with an adjacent channel B′ at the other side.
6. The buffered wall flow multi-channels flame arrester according to claim 1, wherein, the multi-channels flame arresting core is a Z-type wall flow multi-channels flame arresting core, the outer wall of the Z-type wall flow multi-channels flame arresting core contacts with the inner wall of the flame arrester shell, several fluid channels are arranged inside the Z-type wall flow multi-channels flame arresting core, each fluid channel comprises a channel A and a channel B, wherein an outlet of the channel A is blocked, and an inlet of the channel B is blocked, and pinholes c are arranged in the wall surfaces between adjacent channels, so that the channel A communicates with adjacent channels B, B1, B2, and B3 at the upper, lower, left, and right sides.
7. The buffered wall flow multi-channels flame arrester according to claim 5, wherein, the channel A and the channel B have the same height.
8. The buffered wall flow multi-channels flame arrester according to claim 5, wherein, all of the pinholes c are in the same height direction in the central cross section of the Z-type wall flow multi-channels flame arresting core, and the diameter of the pinholes c is equal to 1 to 2 times of the height of the channel A.
9. The buffered wall flow multi-channels flame arrester according to claim 1, wherein, the flame arrester shell, the buffering and splitting cover, and the multi-channels flame arresting core are made of carbon steel or stainless steel.
10. The buffered wall flow multi-channels flame arrester according to claim 6, wherein, the channel A and the channel B have the same height.
11. The buffered wall flow multi-channels flame arrester according to claim 6, wherein, all of the pinholes c are in the same height direction in the central cross section of the Z-type wall flow multi-channels flame arresting core, and the diameter of the pinholes c is equal to 1 to 2 times of the height of the channel A.
Description
IV. DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
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(7)
(8)
(9) In the figures: 1—gas inlet pipeline; 2—first flange group; 3—flame arrester shell; 4—flame arrester expansion chamber; 5—flame arrester flange; 6—buffering and splitting cover; 7—Z-type wall flow multi-channels flame arresting core; 8—second flange group; 9—gas outlet pipeline.
V. EMBODIMENTS
(10) Hereunder the present invention will be further detailed in embodiments with reference to the accompanying drawings, but the protection scope of the present invention is not limited to these embodiments.
Embodiment 1
(11) As shown in
(12) As shown in
(13) The outer wall of the Z-type wall flow multi-channels flame arresting core 7 contacts with the inner wall of the flame arrester shell 3, as shown in
(14) The channel A and the channel B have the same height.
(15) All of the pinholes c are in the same height direction in the central cross section of the Z-type wall flow multi-channel flame arresting core, and the diameter of the pinholes c is equal to 1-2 times of the height of the channel A.
(16) The flame arrester shell 3, the buffering and splitting cover 6, and the Z-type wall flow multi-channel flame arresting core 7 are made of carbon steel or stainless steel.
Embodiment 2
(17) As shown in
(18) The flame arrester shell 3 comprises a front wall and a back wall, the gas inlet pipeline 1 is connected via a first flange group 2 to the front wall of the flame arrester shell, the back wall of the flame arrester shell is connected via a second flange group 8 to the gas outlet pipeline 9, the buffering and splitting cover 6 and a Z-type wall flow multi-channel flame arresting core 7 are installed between the front wall and the back wall of the flame arrester shell, and the opening of the buffering and splitting cover 6 is fixedly connected to the Z-type wall flow multi-channel flame arresting core 7; the front wall of the flame arrester shell 3 may be embedded in the back wall of the shell and fixed by the flame arrester flange 5; a flame arrester expansion chamber 4 is formed in the front wall and the back wall of the flame arrester shell 3 respectively, the inner diameter of the flame arrester expansion chamber is about 2.5 times of the diameter of the gas inlet pipeline 1, and both of the divergence angles of the front wall and the back wall of the flame arrester shell are 120°.
(19) As shown in
(20) The outer wall of the Z-type wall flow multi-channels flame arresting core 7 contacts with the inner wall of the flame arrester shell 3, as shown in
(21) The channel A and the channel B have the same height.
(22) All of the pinholes c are in the same height direction in the central cross section of the Z-type wall flow multi-channels flame arresting core, and the diameter of the pinholes c is equal to 1 to 2 times of the height of the channel A.
(23) The flame arrester shell 3, the buffering and splitting cover 6, and the Z-type wall flow multi-channels flame arresting core 7 are made of carbon steel or stainless steel.
(24) When deflagration or detonation flame occurs, the buffering and splitting cover 6 buffers, splits, obstructs, and diffracts the stronger flame and pressure wave at the central part of the flame arrester expansion chamber 4, and thereby decreases the front gas pressure at the center of the Z-type wall flow multi-channels flame arresting core 7. Then, the flame at the central part passes through the pinholes in the buffering and splitting cover 6 and enters into the cover, and then flows into the Z-type wall flow multi-channels flame arresting core 7 via the channel inlets that are not blocked in the inlet end face of the flame arresting core; owing to the fact that the outlet end faces of those channels in the flame arresting core are blocked, the flame are forced to flow into adjacent channels via the openings in the wall surfaces of the channels, and then flow out via the outlets of the adjacent channels. As a result, the probability of collision between the free radicals produced in the combustion process and the channel wall surfaces is greatly increased, which is helpful for flame quenching. The flame near the circumference of the flame arrester expansion chamber 4 that doesn't pass through the buffering and splitting cover 6 can directly flow into the Z-type wall flow multi-channels flame arresting core 7 after it passes through the flame arrester expansion chamber 4; likewise, the probability of collision between the free radicals produced in the combustion process and the channel wall surfaces is increased, which is helpful for flame quenching.