FLUID DISTRIBUTION APPARATUS AND FLUID DISTRIBUTION MODULE WITH CHOKE
20210317938 · 2021-10-14
Assignee
Inventors
Cpc classification
F16L55/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/87265
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F28F9/0217
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20781
ELECTRICITY
F28F9/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0214
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0275
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0204
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L41/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L41/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/87539
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F16L41/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L41/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluid distribution apparatus and a fluid distribution module with choke are provided. The fluid distribution apparatus includes a first fluid conveying pipe, a second fluid conveying pipe, multiple fluid manifolds located between the first fluid conveying pipe and the second fluid conveying pipe and connected with the first fluid conveying pipe and the second fluid conveying pipe, an inlet disposed on a side of the first fluid conveying pipe and between both ends of the first fluid conveying pipe; and an outlet disposed on a side of the second fluid conveying pipe and set corresponding to a position where the inlet is set. The fluid is supplied from the inlet to the first fluid conveying pipe, and the fluid is conveyed to the fluid manifolds along the first fluid conveying pipe, and flows into the second fluid conveying pipe through the fluid manifolds and flows out from the outlet.
Claims
1. A fluid distribution apparatus, comprising: a first fluid conveying pipe; a second fluid conveying pipe; a plurality of fluid manifolds respectively located between the first fluid conveying pipe and the second fluid conveying pipe, and respectively connected with the first fluid conveying pipe and the second fluid conveying pipe; an inflow guiding device comprising a plurality of first flow-guiding holes, wherein the inflow guiding device is arranged on an outside of the first fluid conveying pipe, and the plurality of first flow-guiding holes are respectively connected with the first fluid conveying pipe; an inlet provided on the inflow guiding device and located between both ends of the first fluid conveying pipe; and an outlet provided on a side of the second fluid conveying pipe, and disposed corresponding to a position where the inlet is provided, wherein, a fluid flowing in from the inlet directly flows into the first fluid conveying pipe through the plurality of first flow-guiding holes respectively, the fluid flowing into the first fluid conveying pipe is delivered to the plurality of fluid manifolds along the first fluid conveying pipe, the fluid flowing into the plurality of fluid manifolds flows into the second fluid conveying pipe and flows out from the outlet.
2. The fluid distribution apparatus according to claim 1, wherein the fluid distribution apparatus is installed on one side of a rack, and the inlet is located between two adjacent fluid manifolds.
3. The fluid distribution apparatus according to claim 1, wherein the fluid distribution apparatus is installed on one side of a rack, and the fluid distribution apparatus further comprises: an outflow guiding device provided with the outlet and comprising a plurality of second flow-guiding holes, wherein the outflow guiding devices arranged on an outside of the second fluid conveying pipe, the plurality of second flow-guiding holes are respectively connected with the second fluid conveying pipe, and the fluid flowing out from the second fluid conveying pipe directly flows into the outlet through the plurality of second flow-guiding holes respectively.
4. The fluid distribution apparatus according to claim 1, wherein the number of the plurality of first flow-guiding holes is at least three, which are respectively disposed at both ends of the first fluid conveying pipe and at a position between the both ends.
5. The fluid distribution apparatus according to claim 3, wherein the number of the plurality of second flow-guiding holes is at least three, which are respectively disposed at both ends of the second fluid conveying pipe and at a position between the both ends.
6. The fluid distribution apparatus according to claim 3, wherein one of the plurality of first flow-guiding holes adjacent to the uppermost fluid manifold and one of the plurality of second flow-guiding holes adjacent to the uppermost fluid manifold are respectively spaced apart from the uppermost fluid manifold at a distance larger than or equal to 5D, wherein D is an inner diameter dimension of the fluid manifold.
7. The fluid distribution apparatus according to claim 3, wherein one of the plurality of first flow-guiding holes adjacent to the lowest fluid manifold and one of the plurality of second flow-guiding holes adjacent to the lowest fluid manifold are respectively spaced apart from the lowest fluid manifold at a distance larger than or equal to 5D, wherein D is an inner diameter dimension of the fluid manifold.
8. The fluid distribution apparatus according to claim 1, wherein a cross-sectional area A of the inflow guiding device and the outflow guiding device each is larger than or equal to (5D)2, and D is an inner diameter dimension of the fluid manifold.
9. The fluid distribution apparatus according to claim 1, wherein a first end of each of the plurality of fluid manifolds is connected with the first fluid conveying pipe, and a second end of each of the plurality of fluid manifolds is connected with the second fluid conveying pipe.
10. The fluid distribution apparatus according to claim 1, further comprising: a baffle provided at the inlet to reduce a flow rate of the fluid.
11. The fluid distribution apparatus according to claim 10, wherein the baffle has a shape of one of a rectangle, a circle, and a square.
12. The fluid distribution apparatus according to claim 10, wherein an area of the baffle is one third of an area of the inlet.
13. A fluid distribution module with choke, comprising: a fluid conveying pipe; at least two fluid manifolds; a choke; and an inflow guiding device comprising a plurality of first flow-guiding holes, wherein the inflow guiding device is arranged on an outside of the fluid conveying pipe, and the plurality of first flow-guiding holes are respectively connected with the fluid conveying pipe; wherein, the fluid conveying pipe is connected to the at least two fluid manifolds and a pipeline of the choke respectively, a fluid flowing in from the inlet directly flows into the fluid conveying pipe through the plurality of first flow-guiding holes respectively, the fluid flowing into the fluid conveying pipe is delivered to the plurality of fluid manifolds along the fluid conveying pipe.
14. The fluid distribution module according to claim 13, wherein: the inlet is located between both ends of the fluid conveying pipe, the choke is provided at the inlet to reduce a flow rate of the fluid.
15. The fluid distribution module according to claim 13, wherein a shape of the choke is one of a rectangle, a circle, and a square.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DESCRIPTION OF EMBODIMENTS
[0031]
[0032] The inlet 130 is provided on a side of the first fluid conveying pipe 110 and located between both ends of the first fluid conveying pipe 110. The outlet 140 is provided at a side of the second fluid conveying pipe 120, and is set corresponding to the position where the inlet 130 is provided. That is, the positions of the inlet 130 and the outlet 140 are symmetric.
[0033] In this embodiment, preferably the inlet 130 is provided in the center of the first fluid conveying pipe 110 and the outlet 140 is provided in the center of the second fluid conveying pipe 120. However, in other embodiments, the inlet 130 and the outlet 140 may be disposed at a position closer to the upper end or at a position closer to the lower end, which is not limited herein.
[0034]
[0035]
[0036] Please refer to
[0037] The inflow guiding device 310 is provided with an inlet 130, and includes first flow-guiding holes 311 and 312. The outflow guiding device 320 is provided with an outlet 140, and includes second flow-guiding holes 321 and 322. Here, the first flow-guiding hole 311 and the second flow-guiding hole 321 are disposed at an upper position and higher than the position of the first fluid manifold 150. The first flow-guiding hole 312 and the second flow-guiding hole 322 are disposed at a lower position and lower than the position of the last fluid manifold 150.
[0038] The first flow-guiding holes 311 and 312 are respectively connected with the first fluid conveying pipe 110, and the fluid flowing in from the inlet 130 flows into the first fluid conveying pipe 110 through the first flow-guiding holes 311 and 312, respectively. The second flow-guiding holes 321 and 322 are respectively connected with the second fluid conveying pipe 120, and the fluid flowing out of the second fluid conveying pipe 120 flows into the outlet 140 through the second flow-guiding holes 321 and 322, respectively.
[0039] In addition, the first flow-guiding hole may also be provided at the inlet 130 of the inflow guiding device 310 to be connected with the first fluid conveying pipe 110, so that the fluid flowing in from the inlet 130 not only can flow into the first fluid conveying pipe 110 through the first flow-guiding holes 311 and 312 respectively, but also can directly flow into the first fluid conveying pipe 110 (as shown in
[0040] Here, the disclosure provides no limitation to the number of the first flow-guiding holes and the second flow-guiding holes, and in other embodiments, more first flow-guiding holes and second flow-guiding holes may be provided.
[0041]
[0042] In order to prevent the excessively fast flow rate from causing the anticorrosive coating in the fluid manifold 150 to peel off, the flow rate in the pipe should be less than 1.5 m/s. Based on this, the total flow Q of the fluid should be less than or equal to 9×10.sup.4×A (unit: LPM (liter per minute)), wherein A is the cross-sectional area of the inflow guiding device 310, and the unit is m.sup.2. Based on the above, the cross-sectional area A of the inflow guiding device 310 has to be larger than or equal to Q/(9×10.sup.4)m.sup.2. According to this formula, if the average flow is less than or equal to 2 LPM and the flow rate of the inflow guiding device 310 does not exceed 1.5 m/s, then the cross-sectional area A of the inflow guiding device 310 has to be larger than or equal to 930 mm.sup.2.
[0043]
[0044]
[0045] At present, in a common 42U rack on the market, the number of fluid manifold 150 is 42, and the average flow of each of the fluid manifolds 150 (total flow 42 LPM divided by 42) is about 1 LPM or less. Therefore, if the average flow range of the fluid manifold 150 satisfies 2 LPM or less, the error between the flow rate in each of the fluid manifolds 150 and the average flow rate is within 10%, and has to satisfy that the average flow rate in the main pipe (inflow guiding device 310, outflow guiding device 320) is less than 1.5 m/s. Therefore, the cross-sectional area A of the outflow guiding device 320 is preferably set to be larger than or equal to (5D).sup.2. Here, D is the inner diameter dimension of the fluid manifold 150. When the inner diameter dimension D of the fluid manifold 150 is 6 mm, the cross-sectional area A of the inlet 130, the outlet 140, the inflow guiding device 310, and the outflow guiding device 320 should be larger than or equal to 930 mm.sup.2. The above-mentioned embodiments can effectively improve the problem of uneven flow.
[0046]
[0047]
[0048] The following is a flow distribution comparison between the embodiment in which the inlet 130 and the outlet 140 are provided at the bottom (bottom-in and bottom-out) and the embodiment in which the inlet 130 and the outlet 140 are disposed in the middle (middle-in and middle-out).
[0049]
[0050]
[0051] In the examples of
[0052] On the other hand, when the fluid distribution apparatus 100 is provided with the baffle 910, as shown by the black bar in
[0053] Based on this, it can be clearly seen from
[0054] In addition, in other embodiments, a fluid distribution module with choke is provided. The fluid distribution module includes a fluid conveying pipe, at least two fluid manifolds, and a choke. The fluid conveying pipe is connected to the at least two fluid manifolds and the choke respectively. The fluid distribution module further includes an inlet. The inlet is provided on a side of the fluid conveying pipe and located between both ends of the fluid conveying pipe. Fluid is supplied from the inlet to the fluid conveying pipe, and the fluid is delivered to the at least two fluid manifolds along the fluid conveying pipe. The choke is provided at the inlet to reduce the flow of the fluid. The choke is, for example, a baffle, and its shape is one of a rectangular, a circular, and a square shape.
[0055] In summary, the above-mentioned embodiments solve the problem of large difference in flow at different outlet positions of the existing flow distribution apparatus, and can achieve the effect that the difference in flow distribution is less than 10%. Moreover, the above-mentioned embodiments utilize a simple mechanism design to solve the problem of flow distribution, which conforms to the principle of easy manufacturing. Accordingly, it is possible to prevent the cooling distribution unit (CDU) from providing excessively high pressure or flow due to uneven flow distribution. In other words, energy consumption can be reduced, that is, the purpose of energy saving can be achieved. For a data center that needs to consume a lot of energy, the purpose of energy saving can be attained, that is, to reduce power usage efficiency (PUE). Since the uneven fluid flow will impact on the heat dissipation effect, the above embodiments solve the problem of uneven fluid flow, which certainly improves the heat dissipation effect. In addition, through the installation of baffles, the problem of excessively fast flow rate at the inlet can be further solved.