Fluid-conducting system with cathodic corrosion protection
10731786 ยท 2020-08-04
Assignee
Inventors
- Alexander Boehm (Frankenthal, DE)
- Karl-Heinz Koefler (Frankenthal, DE)
- Alexander Puetterich (Frankenthal, DE)
- Bernd Schramm (Frankenthal, DE)
- Bjoern Lindell (Billeberga, SE)
Cpc classification
F04D29/4293
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/426
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L23/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L58/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluid conducting system with cathodic corrosion protection is provided for at least one device that influences and/or acts upon a flow rate, such as a pump and/or valve. The device includes at least one connection device such as a device connection flange. At least one flow rate guiding device such as a pipe includes a connection means such as a pipe connection flange. The system includes annular anodes arranged between the connection devices and connection means, where anodes are electrically connected by electrical conducting lines to a monitoring device. The internal diameter of the anodes is preferably equal to the internal diameter of the flow rate guiding device and/or the inner diameter of the inlet and/or outlet of flow influencing device.
Claims
1. A fluid-conducting system with cathodic corrosion protection, comprising: at least one of a pump and a valve device configured to at least one of convey and influence a flow rate and having at least two connection devices; at least two flow rate guiding devices having connection means configured to be connected to the at least two connection devices; annular anodes configured to be arranged between a first connection device of the at least two connection devices and a first connection means of the at least two connection means and between a second connection device of the at least two connection devices and a second connection means of the at least two connection means; at least two reference electrodes; and a monitoring arrangement electrically connected to the annular anodes by lines having one or more conductors, wherein the at least one of the pump and the valve device includes a casing with at least two threaded bores, each of the at least two threaded bores is configured to receive in an electrically conductive manner one of the at least two reference electrodes, the at least two reference electrodes are located on the casing remote from the annular anodes in a manner which provides electrical potential balance of an inner surface of the casing, and an inner diameter of the annular anodes is equal to an inner diameter of an adjacent one of the at least two flow rate guiding devices.
2. The fluid-conducting system as claimed in claim 1, wherein the at least two flow rate guiding devices are pipe elements.
3. The fluid-conducting system as claimed in claim 1, wherein the inner diameter of the annular anodes corresponds to an inner diameter of an adjacent one of an inflow or outflow opening of the at least one of the pump and the valve device.
4. The fluid-conducting system as claimed in claim 1, wherein the at least two reference electrodes are arranged relative to one another to maximize the electrical potential balance of an inner surface of the casing.
5. The fluid-conducting system as claimed in claim 1, wherein the monitoring arrangement includes a control unit, a first rectifier, a second rectifier, and a measuring module.
6. The fluid-conducting system as claimed in claim 5, wherein the at least two reference electrodes are electrically connected to the monitoring arrangement.
7. The fluid-conducting system as claimed in claim 6, further comprising: an annular and electrically insulating first insulation washer arranged between one of the annular anodes and the adjacent one of the at first and second connection devices; and an annular and electrically insulating second insulation washer arranged between another of the annular anodes and the adjacent one of the first and second connection means.
8. The fluid-conducting system as claimed in claim 7, further comprising: at least one electrically insulating sleeve configured to be located within co-axial bores of the at least one of the first and second connecting devices and the adjacent one of the first and second connection means.
9. The fluid-conducting system as claimed in claim 8, wherein the at least one electrically insulating sleeve includes a collar at a free end.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) A device 1 conveying a flow rate is illustrated in
(6) An annular first anode 13 formed as an external current anode and insulated with respect to the connection device 7 and the connection means 9 is arranged between the first connection device 7 of the device 1 conveying a flow rate and the connection means 9 of the pipe element 10. An annular second anode 14 formed as an external current anode and insulated with respect to the connection devices 8 and the connection means 11 is arranged between the second connection device 8 of the device 1 conveying a flow rate and the connection means 11 of the pipe element 12. The inner diameter d.sub.A of the anodes 13 and 14, as shown in detail in
(7) A threaded bore (not illustrated) is provided on the inlet connection piece 3, there being a first reference electrode 16 screwed into said bore. The outlet connection piece 5 also comprises a threaded bore (not illustrated), into which a second reference electrode 17 is screwed. A third reference electrode 18 is screwed on the upper side of the casing 2 into a further threaded bore (not shown). First, second and third reference electrodes are electrically conductively connected to the casing 2, screwed into the bores. The reference electrodes, which are preferably produced from pure zinc, silver or a silver alloy, come directly into contact with the fluid or flow rate within the casing 2 without protruding into the casing interior or forming a dead space, i.e. a blind hole-like indentation. In the case of the spiral casing pump 1 shown in
(8) The reference electrodes 16, 17 and 18 are preferably arranged relative to one another such that they can balance the greatest possible inner surface of the casing in terms of the potential. In
(9) The monitoring arrangement 19 is also supplied with electrical energy from a conventional AC voltage source via a supply line 31. The monitoring arrangement 19 is preferably additionally attached to an alarm bus line 32.
(10)
(11) An annular first anode 113 insulated with respect to the connection device 107 and the connection means 109 is arranged between the first connection device 107 of the device 101 influencing a flow rate and the connection means 109 of the pipe element 110. An annular second anode 114 insulated with respect to the connection device 108 and the connection means 111 is arranged between the second connection device 108 of the valve 101 and the connection means 111 of the pipe element 112. The inner diameter d.sub.A of the anodes 113 and 114 corresponds substantially to the inner diameter d.sub.R of the pipe elements 110 and 112 and to the inner diameter d.sub.v of the inflow or outflow opening 104 and 106 respectively. The structure of the anodes corresponds to the structure described with reference to
(12) A first reference electrode 116 is screwed into a threaded bore at the inlet connection piece 103. A second reference electrode 117 is screwed into a threaded bore in the outlet connection piece 105. As necessary, a third reference electrode 118 can be screwed into a further threaded bore in the upper part of the casing 102. First, second and third reference electrodes are screwed into the bores and in so doing are electrically conductively connected to the casing 102. The reference electrodes come directly into contact with the fluid inside the casing 2 without protruding into the valve interior or without forming a dead space.
(13) The attachment of the casing 102, the reference electrodes 116, 117 and 118 and of the anodes 113 and 114 to a monitoring unit (not illustrated here) is performed in accordance with the circuit examples shown in
(14)
(15) In the monitoring arrangement 19 shown in
(16) The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. Since modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.
LIST OF REFERENCE SIGNS
(17) 1 device conveying a flow rate 2 pump casing 3 inlet connection piece 4 inflow opening 5 outlet connection piece 6 outflow opening 7 first connection device 8 second connection device 9 connection means 10 pipe element 11 connection means 12 pipe element 13 first anode 14 second anode 15 substrate 16 first reference electrode 17 second reference electrode 18 third reference electrode 19 monitoring arrangement 20 control or regulation unit 21 first rectifier 22 second rectifier 23 measuring module 24 line 25 line 26 line 27 line 28 line 29 line 30 line 31 supply line 32 alarm bus line 33 first insulation washer 34 second insulation washer 35 bore 36 bore 37 insulation sleeve 38 collar 101 device influencing a flow rate 102 casing 103 inlet connection piece 104 inflow opening 105 outlet connection piece 106 outflow opening 107 first connection device 108 second connection device 109 connection device 110 pipe element 111 connection device 112 pipe element 113 first anode 114 second anode 115 substrate 116 first reference electrode 117 second reference electrode 118 third reference electrode