Water Distribution Network
20190113039 ยท 2019-04-18
Inventors
Cpc classification
F05D2260/85
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D15/0005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D15/0066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E03B7/075
FIXED CONSTRUCTIONS
E03B5/00
FIXED CONSTRUCTIONS
F04B49/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2203/0209
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17D3/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
In a water distribution network having at least one pump for distributing water over the network, the pump is driven by an electric motor and a variable speed device, and there is a device for operating the pump in phases. On starting the pump in a first starting phase the pump speed rises rapidly from zero to a threshold speed between zero and a maximum pump speed, in a second starting phase the threshold speed is maintained, in a third starting phase the pump speed is increased more slowly to a maximum speed, and in a fourth operating phase the maximum speed is maintained. On stopping the pump, in a first stopping phase the pump speed decreases gradually from a maximum speed to an intermediate speed, and in a second stopping phase the pump speed decreases rapidly from the intermediate speed to zero.
Claims
1. A water distribution network having at least one pump device for distributing water over the network, the pump device comprising a pump driven by an electric motor and a variable speed device, and a device for operating the pump in phases, such that on starting the pump in a first starting phase the pump speed rises rapidly from zero to a threshold speed between zero and a maximum pump speed, in a second starting phase the threshold speed is maintained, in a third starting phase the pump speed is increased more slowly to a maximum speed, and in a fourth operating phase the maximum speed is maintained.
2. The water distribution network as claimed in claim 1, wherein the increase of pump speed in the third starting phase includes stages of increase and maintained speed until the maximum speed is reached.
3. A water distribution network having at least one pump device for distributing water over the network, the pump device comprising a pump driven by an electric motor and a variable speed device, and a device for operating the pump in phases such that on stopping the pump, in a first stopping phase the pump speed decreases gradually from a maximum speed to an intermediate speed, and in a second stopping phase the pump speed decreases rapidly from the intermediate speed to zero.
4. The water distribution network as claimed in claim 3, wherein at least one further phase is included, such that the intermediate speed is maintained in a third stopping phase, before the second stopping phase of rapid decrease to zero.
5. The water distribution network as claimed in claim 4, wherein the third stopping phase includes stages of maintained speed and decrease.
6. A water distribution network having at least one pump device for distributing water over the network, the pump device comprising a pump driven by an electric motor and a variable speed device, and a device for operating the pump in phases, such that on starting the pump in a first starting phase the pump speed rises rapidly from zero to a threshold speed between zero and a maximum pump speed, in a second starting phase the threshold speed is maintained, in a third starting phase the pump speed is increased more slowly to a maximum speed, and in a fourth operating phase the maximum speed is maintained, and such that on stopping the pump, in a first stopping phase the pump speed decreases gradually from a maximum speed to an intermediate speed, and in a second stopping phase the pump speed decreases rapidly from the intermediate speed to zero, wherein the intermediate speed is the same as the threshold speed.
7. The water distribution network as claimed in claim 1, wherein the pump operating means comprises a microprocessor device, such as a programmable logic circuit, used to control the variable speed device to control the electric motor.
8. The water distribution network as claimed in claim 7, wherein the programmable logic circuit is separate from the pump or provided as a component of the pump.
9. The water distribution network as claimed in claim 3, wherein the pump operating means comprises a microprocessor device, such as a programmable logic circuit, used to control the variable speed device to control the electric motor.
10. The water distribution network as claimed in claim 9, wherein the programmable logic circuit is separate from the pump or provided as a component of the pump.
11. The water distribution network as claimed in claim 1, wherein the variable speed device includes an inverter used to control the frequency and voltage supplied to the electric motor according to the demand in the system.
12. The water distribution network as claimed in claim 11, wherein the inverter is connected to a non-return valve for the pump.
13. The water distribution network as claimed in claim 12, wherein the points at which the non-return valve opens and closes are used to determine the transitions between the starting or stopping phases.
14. The water distribution network as claimed in claim 13, wherein on pump starting, the open point of the non-return valve determines the end of the first starting phase.
15. The water distribution network as claimed in claim 13, wherein on pump stopping, the close position of the non-return valve determines a change in the rate of decrease at the intermediate speed.
16. The water distribution network as claimed in claim 12, wherein a pressure sensor is provided on each side of the non-return valve.
17. The water distribution network as claimed in claim 16, wherein the pressure sensors are connected to the pump operating means to indicate when the non-return valve is about to open.
18. The water distribution network as claimed in claim 17, wherein the pump operating means determines the pump speed at the open position automatically.
19. The water distribution network as claimed in claim 3, wherein the variable speed device includes an inverter used to control the frequency and voltage supplied to the electric motor according to the demand in the system.
20. The water distribution network as claimed in claim 19, wherein the inverter is connected to a non-return valve for the pump.
21. The water distribution network as claimed in claim 20, wherein the points at which the non-return valve opens and closes are used to determine the transitions between the starting or stopping phases.
22. The water distribution network as claimed in claim 21, wherein on pump starting, the open point of the non-return valve determines the end of the first starting phase.
23. The water distribution network as claimed in claim 21, wherein on pump stopping, the close position of the non-return valve determines a change in the rate of decrease at the intermediate speed.
24. The water distribution network as claimed in claim 20, wherein a pressure sensor is provided on each side of the non-return valve.
25. The water distribution network as claimed in claim 24, wherein the pressure sensors are connected to the pump operating means to indicate when the non-return valve is about to open.
26. The water distribution network as claimed in claim 25, wherein the pump operating means determines the pump speed at the open position automatically.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Embodiments of the aspects of the invention are described, by way of example only, in the accompanying drawings, in which:
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION OF THE INVENTION
[0022] The water distribution network 1 of
[0023] The pumping station 6 shown in
[0024]
[0025]
[0026] In the third phase 24 the slower rise in speed to the optimum or maximum speed does not create a pressure spike. There is no risk of damage to the pump 7 as the water is flowing and maintaining lubrication of the pump. This method of operation does not affect the volume of water pumped to any significant extent.
[0027]
[0028]
[0029] In
[0030] It will be appreciated that the use of a programmable logic circuit as the operating means 10 has the advantage that the speeds and phase lengths can be changed if requirements alter. A programmable logic circuit can also be set up easily to accommodate different pumps 7.
[0031] The non-return valve 11 may be used in the setting up of the operating means 10. The non-return valve 11 cracks open to allow flow at a predetermined pressure differential across the valve, determined by the force in a spring (not shown), and then opens fully. The non-return valve 11 closes when the flow through it falls to a given level, equivalent to a pump speed. The point at which the non-return valve 11 cracks open (the open point) and closes (the close point) may be used to determine the transitions between the starting phases and/or the stopping phases.
[0032] Thus, on pump starting, the open point of the non-return valve 11 can determine the end of the first phase 20. The open point may be determined empirically for each pump 7 in its particular location in the network 1, and the programmable logic circuit programmed for the threshold speed according to the pump speed at the open point.
[0033] On pump stopping, the close position of the non-return valve 11 may determine the intermediate speed for the transition between the first and second stopping phases.
[0034] The length of the various phases will also be determined empirically.
[0035]
[0036] As explained above, the pressure sensors 12 cannot indicate the close point of the non-return valve 11. The operating means 10 may then be programmed to take the threshold speed of the second starting phases 22 as the intermediate speed for the second stopping phase 32, or a given amount above or below that speed.