Method for fluid measurement for a discrete area of a fluid supply network
11340134 · 2022-05-24
Assignee
Inventors
- Alexey Alexandrovich Karnachev (Oblast Archangelsk g. Mirny, RU)
- Oleg Vladimirovich MANGUTOV (St. Petersburg, RU)
- Ilya Igorevich MOKHOV (St. Petersburg, RU)
- Alexey Petrovich KOZIONOV (Pskov, RU)
- Nicolay Andreevich VENIAMINOV (St. Petersburg, RU)
Cpc classification
G01M3/28
PHYSICS
International classification
G01M3/28
PHYSICS
G01F15/00
PHYSICS
Abstract
A method for fluid flow measurement for a discrete area of a fluid supply network, where the fluid supply network includes a network of pipes that includes a main pipe for transporting fluid from a source into the fluid supply network for delivery to consumers, wherein the main pipe crosses a boundary between the discrete area and a further area of the fluid supply network, which is outside of the discrete area, and a plurality of distribution pipes each transport fluid from the main pipe to a consumer, where fluid pressure and the fluid consumption on at least two selected key metering points located inside and outside of the discrete area are measured, and where the fluid pressure and the fluid consumption measured on these selected key metering points the fluid flow in the main pipe that crosses the boundary of the discrete area is calculated.
Claims
1. A method for fluid flow measurement in at least one main pipe for a discrete area of a fluid supply network, the fluid supply network comprising a network of pipes for delivering a fluid to consumers, the network of pipes comprising the at least one main pipe to transport fluid from a source into the fluid supply network, the main pipe crossing a boundary between the discrete area and a further area of the fluid supply network, and a plurality of distribution pipes, each distribution pipe being configured to transport fluid from the main pipe to a consumer directly connected to the distribution pipe, and the network of pipes further comprising a plurality of nodes that are junctions of at least two pipes, two of said nodes located on the same main pipe on different sides of the boundary without any further nodes located therebetween being boundary nodes, and further comprising a plurality of key metering points in which each key metering point is located on a distribution pipe and equipped with a pressure sensor and a consumption gauge, each pressure sensor being configured to perform a measurement of fluid pressure in the distribution pipe at which the pressure sensor is installed, and each consumption gauge being configured to measure fluid consumption by consumers which are directly connected to the distribution pipe on which the consumption gauge is installed, the method comprising: a) taking measurements of the fluid pressure and the fluid consumption on at least one selected first key metering point which is located inside the discrete area; b) taking measurements of the fluid pressure and the fluid consumption on at least one selected second key metering point which is located inside the further area; c) calculating the fluid flow using the fluid pressures and the fluid consumptions measured on selected key metering points.
2. The method of claim 1, wherein within step c) the fluid flow is calculated in accordance with the following relationship:
3. The method of claim 2, wherein each key metering point is located on a distribution pipe and is equipped with a pressure sensor and a consumption gauge; and wherein the pressure sensor and the consumption gauge are located on different places on the distribution pipe, such that the consumption gauge is located downstream the pressure sensor.
4. The method of claim 1, wherein for the measurements of step a) at least one selected first key metering points inside the discrete area is selected, such that the selected first key metering points are located on distribution pipes which are directly connected to the boundary node that is inside of the discrete area; wherein only said first key metering points are selected and used for the measurement of step a), which are located next to the boundary node inside the discrete area; wherein for the measurement of step b) at least one selected second key metering points outside the discrete area is selected, such that the selected second key metering points are located on distribution pipes which are directly connected to the boundary node which is outside of the discrete area.
5. The method of claim 4, wherein each key metering point is located on a distribution pipe and is equipped with a pressure sensor and a consumption gauge; and wherein the pressure sensor and the consumption gauge are located on different places on the distribution pipe, such that the consumption gauge is located downstream the pressure sensor.
6. The method of claim 1, wherein each key metering point is located on a distribution pipe and is equipped with a pressure sensor and a consumption gauge; and wherein the pressure sensor and the consumption gauge are located on different places on the distribution pipe, such that the consumption gauge is located downstream the pressure sensor.
7. The method of claim 6, wherein each key metering point is equipped with the plurality of the consumption gauges which are located downstream of the pressure sensor; and wherein the fluid consumption on each key metering point is a total fluid consumption measured via the plurality of consumption gauges.
8. The method of claim 1, wherein the fluid supply network comprises a water supply network and the discrete area comprises a district metered area (DMA).
9. A system for fluid flow measurement in at least one main pipe for a discrete area of a fluid supply network, the fluid supply network comprising: a network of pipes for delivering a fluid to consumers, the network of pipes comprising: the at least one main pipe to transport fluid from a source into the fluid supply network, the at least one main pipe crossing a boundary between the discrete area and a further area of the fluid supply network and a plurality of distribution pipes, each distribution pipe being configured to transport fluid from the main pipe to a consumer directly connected to the distribution pipe; and a plurality of nodes which are junctions of at least two pipes, two of said nodes which are located on the same main pipe on different sides of the boundary without any further nodes located therebetween being boundary nodes; a plurality of key metering points in which each key metering point is configured to be located on a distribution pipe and is equipped with a pressure sensor and a consumption gauge, each pressure sensor being configured to perform a measurement of fluid pressure in the distribution pipe at which the pressure sensor is installed, each consumption gauge being configured to measure fluid consumption by consumers that are directly connected by the distribution pipe, at least one key metering point being located within the discrete area and at least one key metering point being located within the further area, which is outside of the discrete area and the key metering points being configured to provide measured fluid pressure and the measured fluid consumption; and a control unit configured to calculate the fluid flow using the measured fluid pressure and the measured fluid consumption on the key metering points.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a more complete understanding of the present invention and advantages thereof, reference is now made to the following description taken in accompanying drawings. The invention is explained in more detail below using exemplary embodiments which are specified in the schematic figures of the drawings, in which:
(2)
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(4)
(5)
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DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS
(9) Various embodiments are described with reference to the drawings, where like reference numerals are used to refer to like elements throughout. In the following description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of one or more embodiments. It may be evident that such embodiments may be practiced without these specific details.
(10) The invention relates to a system 36 for fluid flow measurement for a discrete area 2 of a fluid supply network 1.
(11)
(12) In contrast to the prior art system shown in
(13) However there are junctions of at least two pipes, main pipe 4 and/or distribution pipes 13, which establish nodes 11, 12, 26, 30. Here, two such nodes 11, 12 that are located on the same main pipe 4 on different sides of the boundary 8 without any further nodes located between them are boundary nodes 11, 12.
(14) These two boundary nodes 11, 12 are pipe junctions, in this particular case, the junctions of the main pipe 4 with the distribution pipes 5, 13. These two boundary nodes 11, 12 are located on the same main pipe 4, but from different sides of the boundary 10 of the discrete area 2: the boundary node 12 is located inside the discrete area 2 and the boundary node 11 is located outside of the discrete area 2, i.e., inside the further area 9.
(15) Key metering points 14, 15 are installed between the boundary nodes 11, 12 and the consumers 18 on each of these distribution pipes 5, 13. Each of key metering points 14, 15 is equipped with a pressure sensor 16 and a consumption gauge 17, where each pressure sensor 16 is adapted to make a measurement of fluid pressure P.sub.i in the distribution pipe 5, 13 where the pressure sensor 16 is installed, and each consumption gauge 17 is configured to measure fluid flow q.sub.i through the distribution pipe 5, 13 where the consumption gauge 17 is installed, therewith measuring fluid consumption by consumer 18 that is fluidly connected to the main pipe 4 by the concerned distribution pipe 5, 13.
(16)
(17) At step 19 the measurement of the fluid pressure Pi and the fluid consumption qi on at least one selected first key metering point 14 that is located inside the discrete area 2 is performed.
(18) At step 20 the measurement of the fluid pressure P.sub.2 and the fluid consumption q.sub.2 on at least one selected second key metering point 15 that is located outside the discrete area 2, i.e., in the further area 9, is performed.
(19) At steps 19 and 20 the measurement of the fluid consumptions q.sub.1, q.sub.2 on each key metering point 14, 15 that are fluid flow q through the distribution pipes 5, 13 measured by the consumption gauge 17 are performed within a given time frame. The time frame can be 15 minutes, or 1 hour. The fluid pressure P.sub.1, P.sub.2 is the average of the fluid pressure within the time frame when the fluid consumption q.sub.1, q.sub.2 is measured. The less the time frame of measuring the fluid consumption, the more accurate the fluid flow Qi is calculated.
(20) In the ideal case, measurements at steps 19 and 20 on different key metering points 14, 15 must be performed at the same time. However, performing such measurements on different key metering points 14, 15 with a time difference is possible. The time difference should be less that the time frame of measuring the fluid consumption q.sub.1, q.sub.2 on the respective key metering points 14, 15.
(21) At step 21, the fluid flow Qi through the boundary 8 by the main pipe 4 is calculated using the measured fluid pressure P.sub.1, P.sub.2 and fluid consumption q.sub.1, q.sub.2 on the selected key metering points 14, 15 that are located inside and outside of the discrete area 2.
(22) The flow Qi might be derived from the fluid transport equations:
(23)
where Q.sub.i is a fluid flow in the main pipe 4 that crosses the boundary 8 of the discrete area 2, i.e., between the two boundary nodes 11, 12, ΔP.sup.P is a pressure drop between the boundary nodes 11, 12, R is an equivalent hydraulic resistance of the main pipe 4 between the boundary nodes 11, 12, R.sub.1, R.sub.2 are an equivalent hydraulic resistances of the distribution pipes 17, 5 on which the selected key metering points 14, 15 are installed, P.sub.1, P.sub.2 are the fluid pressure in the respective distribution pipe 17, 5 measured by the pressure sensors 16 that are installed on the key metering point 14, 15, q.sub.1, q.sub.2 are consumptions of the fluid on the key metering points 14, 15 measured by the consumption gauges 17, and γ is a flow exponential parameter.
(24) As a result, an installation of a costly flow meter 7 on the main pipe 4 is not needed to measure the flow of the fluid Q.sub.i by using this approach.
(25) The same method should be applied to calculate the fluid flow Q.sub.i for every further pipe that crosses the boundary 8 of the discrete area 2. Afterwards, by summing up the fluid flows Q.sub.i of the individual main pipes the total fluid flow into/out of the discrete area 2 can be calculated.
(26) Within an enhanced embodiment of the method, the criteria to select appropriate key metering points are defined to further improve accuracy of the fluid flow calculation.
(27) On one side of the boundary 8, inside of the discrete area 2, the boundary node 12 is a junction of the main pipe 4 and the distribution pipe 13 with the key metering point 14 equipped. There are also other nodes 30 in the discrete area 2 that are fluidly connected to the consumers 18 via distribution pipes 13 with key metering points 31 installed on them.
(28) However, on the other side of the boundary 8 that is in the further area 9, outside of the discrete area 2, there is a complicated pipe structure with junctions that form nodes 11, 22, 23, 24, 26, 27. Some nodes 23, 24, 26, 27 are junctions of the main pipes 4, 37, 38, 39 with the distribution pipes 5, where the distribution pipes 5 are equipped with the key metering points 15, 28, 29. Other junctions 11, 22 are junctions of main pipes 4, 37, 38, 39 of the further area 9.
(29) Every key metering point 14, 31, 15, 28, 29 is equipped with a pressure sensor 16 (not shown on this
(30) To provide accurate calculation of the fluid flow Q.sub.11-12 through the boundary 8 on the main pipe 4 between two boundary nodes 11, 12, within the step 19 of the method, at least one selected first key metering point 14 in the discrete area 2 for taking measurement should be defined. The measurement of the fluid pressure 214 and the fluid consumption q.sub.14 should be taken from the selected first key metering point 14 that is inside of the discrete area 2. To be selected for further measurements, the at least one selected key metering point should fit a requirement to be located next to the boundary node inside the discrete area 2. In other words, all and only such key metering points should be selected as first key metering points 14, which are located on their distribution pipe 13 such that no further key metering point is located between the selected key metering point 14 and the respective boundary node 12 inside the discrete area 2.
(31) Other key metering points 31 in the discrete area 2, while located on the distribution pipes 13 that are fluidly connected to the boundary node 12, do not satisfy the requirement of being the next to the boundary node 12. Correspondingly, those remaining key metering points 31 should be excluded from the calculation of the fluid flow Q because the requirement of being the next to the boundary node 12 is not met and because the boundary node 12 itself includes the distribution pipe 13 with the key metering point 14 installed on it.
(32) Furthermore, within step 20 at least one selected second key-metering point 15 for taking measurement for further fluid flow calculation should be defined and selected in the further area 9.
(33) The key metering points 15 located in the further area 9 should be taken for further measurement. All of them are located on distribution pipes 5 that are fluidly connected to the boundary node 11 in the further area 9, and each selected second key metering point 15 is a next one to the boundary node 11, i.e., there are no further key metering points located between the respective selected second key metering points 15 and the boundary node 11 outside the discrete area 2, i.e., inside the further area 9. Lastly, all and only such key metering points 15 are selected as second key metering points 15, which are located on their distribution pipe 5 such that no further key metering point is located between the selected key metering point 15 and the boundary node 11 inside the discrete area 2.
(34) In contrast, the remaining key metering points 29, 28 should be excluded from the calculation because the requirement of being the next to the boundary node 11 is not met. For example, between the boundary node 11 and the key metering point 29 there is another node 24 to which the distribution pipe 5 with one of the selected second key metering points 15 equipped on it is attached.
(35) The key metering point 32 is not taken for further measurement because it is located on a distribution pipe 40 that is not fluidly connected to the boundary node 11. This key metering point 32 is located on another main pipe 33 that is fluidly connected to a boundary node 34. Therefore, the fluid flow on the main pipe 33 might be calculated separately using the steps 19-21.
(36) After definition and selection of the first and second key metering points 14, 15 as described above, the fluid flow Q.sub.11-12 through the main pipe 4 that crosses the boundary 8 between the boundary nodes 11, 12 into or out of the discrete area 2 can be calculated by using the Kirchhoff's system of equations, which are well known, applied to the water supply network 1.
(37) The system of equations should include equations for every selected key metering point 15, 14 to calculate the fluid pressure in the nodes 12, 23, 24 of accession of a distribution pipe 5 where the respective selected key metering point 14, 15 is installed on as it was described above.
(38) Also for every two nodes 23 and 22, 11 and 24, 11 and 23, 11 and 12 that are next to each other the fluid transport equations should be created:
(39)
where Q.sub.i-j is the fluid flow through the pipe between two nodes i and j, P.sub.1, P.sub.i is the fluid pressure in the respective nodes i and j, and R.sub.i-j is an equivalent hydraulic resistance of the pipe between the respective nodes i and j.
(40) Moreover, for every node 22, 11 that is a junction of a plurality of main pipes 4, 37, 38, 39 that is located between the boundary 8 and the respective key metering point 15 the equation in accordance with the Kirchhoff's junction rule should be created. The Kirchhoff's junction rule means that the algebraic sum of fluid flows meeting at a node 11, 22 is zero.
(41) Such a system of equations can be solved because the number of the unknown parameters equals the number of equations created. Therefore, the fluid flow Q.sub.11-12 through the main pipe 4 that crosses the boundary 8 between two boundary nodes 11, 12 into or out of the discrete area 2 can be derived from this system.
(42) After the calculation of the fluid flow Q.sub.i is performed for every main pipe 4, 33 that crosses the boundary 8 of the discrete area 2, the total fluid flow can be derived by summing up the fluid flow Q.sub.i for every main pipe 4, 33.
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(45) In a possible embodiment, the fluid supply network is a water supply network and the discrete area is a district metered area DMA.
(46)
(47) Each pressure sensor 16 is configured to perform a measurement of fluid pressure P.sub.i in the distribution pipe 5, 13 at which the pressure sensor 16 is installed. Each consumption gauge 17 is configured to measure fluid consumption q.sub.i by consumers 18 that are fluidly connected by the distribution pipe 5, 13. Moreover, at least one key metering point 14 is located inside the discrete area 2 and at least one key metering point 15 is located in the further area 9, i.e., outside of the discrete area 2. The key metering points 14, 15 are configured to provide measured data.
(48) The system also comprises a control unit 35 configured to perform calculation of the fluid flow by using the measured data in accordance with the method of the disclosed embodiments.
(49) While the invention has been illustrated and described in detail with the help of preferred embodiment, the invention is not limited to the disclosed examples. Other variations can be deducted by those skilled in the art without leaving the scope of protection of the claimed invention.
(50) Thus, while there have been shown, described and pointed out fundamental novel features of the invention as applied to a preferred embodiment thereof, it will be understood that various omissions and substitutions and changes in the form and details of the devices illustrated, and in their operation, may be made by those skilled in the art without departing from the spirit of the invention. For example, it is expressly intended that all combinations of those elements and/or method steps which perform substantially the same function in substantially the same way to achieve the same results are within the scope of the invention. Moreover, it should be recognized that structures and/or elements shown and/or described in connection with any disclosed form or embodiment of the invention may be incorporated in any other disclosed or described or suggested form or embodiment as a general matter of design choice. It is the intention, therefore, to be limited only as indicated by the scope of the claims appended hereto.