Valve arrangement for a guided wave radar level gauge
11860024 · 2024-01-02
Assignee
Inventors
- Håkan Fredriksson (LINKÖPING, SE)
- Mikael Eriksson (Västervik, SE)
- Christoffer Widahl (Västra Frölunda, SE)
Cpc classification
F16K37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G01F23/28
PHYSICS
F16K37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A valve arrangement for a guided wave radar level gauge including a valve housing holding a movable valve element having a through-opening, the movable valve element being configured to be movable between an open position and a closed position. A probe section arranged in the through-opening of the movable valve element. Upper and lower probe sections are located on respective sides of the movable valve element. A spring-loaded connection assembly is configured to form an electrical connection between the upper and the lower probe section via the probe section in the movable valve element when the movable valve element is in an open position.
Claims
1. A valve arrangement for a guided wave radar level gauge comprising: a valve housing holding a movable valve element having a through-opening, the movable valve element being configured to be movable between an open position and a closed position; a probe section arranged in the through-opening of the movable valve element; upper and lower probe sections located on respective sides of the movable valve element; and a spring-loaded connection assembly configured to form an electrical connection between the upper and the lower probe section via the probe section in the movable valve element when the movable valve element is in an open position.
2. The valve arrangement according to claim 1, wherein the spring loaded connection assembly comprises first and second spring loaded probe elements arranged in the valve housing on respective sides of the movable valve element such that the first and second spring-loaded probe elements are pressed against and make contact with the probe section in the movable valve element when the movable valve element is in an open position, to form a probe acting as a transmission line through the valve arrangement.
3. The valve arrangement according to claim 1, wherein the movable valve element further comprises a spacer arranged to hold the probe section in the through opening, wherein the spacer is partially hollow to allow a fluid flow through the movable valve element.
4. The valve arrangement according to claim 1, wherein the probe section in the through opening comprises a first and second probe part configured to be threaded together in the through opening of the movable probe element.
5. The valve arrangement according to claim 2, wherein each of the first and second spring loaded probe elements comprises: an inner probe section and an outer probe section wherein the inner probe section is partially arranged within the outer probe section and wherein the inner and outer probe sections are movable in relation to each other in an axial direction.
6. The valve arrangement according to claim 5, wherein each of the first and second spring loaded probe elements comprises: an inner probe section; an outer hollow probe section; a coil spring arranged to exert a force between the inner and outer hollow probe sections in an axial direction; a contact element attached to an end portion of the inner probe section and configured to form a contact between the inner probe section and the probe section of the movable valve element.
7. The valve arrangement according to claim 6, further comprising a contacting element configured to form a sliding contact between the inner and outer hollow probe sections.
8. The valve arrangement according to claim 7, wherein the contacting element comprises a flexible conductive member attached to the outer hollow probe section and configured exert a force on the inner probe section to form a sliding contact between the inner and outer probe sections.
9. The valve arrangement according to claim 8, wherein the outer hollow probe section comprises at least one opening in a sidewall, wherein the flexible conductive member is arranged to form a contact with the inner probe section through the opening.
10. The valve arrangement according to claim 1, further comprising at least one spacer element arranged in the valve housing and configured to hold the spring-loaded probe elements.
11. The valve arrangement according to claim 2, wherein each of the first and second spring loaded probe elements comprises a curved end portion configured to form a mechanical and electrical contact to the probe section arranged in the through-opening of the movable valve element.
12. The valve arrangement according to claim 1, wherein the spring loaded connection assembly comprises a spring loaded probe element arranged in the through opening of the movable valve element such that the spring loaded probe element is pressed against and make contact with the upper and lower probe sections when the movable valve element is in an open position, to form a probe acting as a transmission line through the valve arrangement.
13. The valve arrangement according to claim 1, wherein the movable valve element is a ball of a ball valve.
14. The valve arrangement according to claim 1, wherein the movable valve element is cylindrical.
15. The valve arrangement according to claim 1, further comprising a transceiver configured to provide a transmit signal, S.sub.T, to be propagated along the probe and to receive a reflected signal, S.sub.R, resulting from a reflection of the transmit signal at a surface of the product; and control circuitry configured to determine the fill level based on the received reflected signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other aspects of the present invention will now be described in more detail, with reference to the appended drawings showing an example embodiment of the invention, wherein:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS
(7) In the present detailed description, various embodiments of the valve arrangement according to the present invention are mainly described with reference to a guided wave radar level gauge installed in a tank located on land. However, the described system and method is suitable for use in other areas such as in marine applications. Moreover, various embodiments of the present invention are mainly discussed with reference to a pulsed radar level gauge system with a signal propagation device in the form of a single lead probe, and wireless communication capabilities.
(8) It should be noted that this by no means limits the scope of the present invention, which also covers a pulsed radar level gauge system with another type of signal guiding device, as well as a pulsed radar level gauge system configured for wired communication, for example using a 4-20 mA current loop and/or other wired means for communication.
(9)
(10) The guided wave radar level gauge system 1 is installed to measure the filling level of a product 7 in the tank 3. The radar level gauge system 1 comprises a measuring unit 9 and a propagation device, here in the form of a single conductor probe 11 extending from the measuring unit 9, through the valve arrangement 10 and the tubular mounting structure 5, towards and into the product 7 in the tank 3. In the example embodiment in
(11) By analyzing a transmitted signal S.sub.T being guided by the probe 11 towards the surface 15 of the product 7, and a reflection signal S.sub.R traveling back from the surface 15, the measurement unit 9 can determine the filling level L of the product 7 in the tank 3. It should be noted that, although a tank 3 containing a single product 7 is discussed herein, the distance to any material interface along the probe can be measured in a similar manner.
(12) The radar level gauge system in
(13) As is schematically illustrated in
(14) The MCU 19 determines the filling level L of the product 7 in the tank 3 and provides a value indicative of the filling level to an external device, such as a control center, from the MCU 19 via the WCU 21 through the communication antenna 23. The radar level gauge system 1 may advantageously be configured according to the so-called WirelessHART communication protocol (IEC 62591).
(15) Although the measurement unit 9 is shown to comprise an energy store (battery 25) and to comprise devices (such as the WCU 21 and the communication antenna 23) for allowing wireless communication, it should be understood that power supply and communication may be provided in a different way, such as through communication lines (for example 4-20 mA lines).
(16) The local energy store 25 need not (only) comprise a battery, but may alternatively, or in combination, comprise a capacitor or super-capacitor.
(17) Moreover, the measurement control unit (MCU) 19 may more generally be referred to as control circuitry 19, and the control circuitry 19 may include a microprocessor, microcontroller, programmable digital signal processor or another programmable device. The control circuitry may also, or instead, include an application specific integrated circuit, a programmable gate array or programmable array logic, a programmable logic device, or a digital signal processor. Where the control circuitry includes a programmable device such as the microprocessor, microcontroller or programmable digital signal processor mentioned above, the processor may further include computer executable code that controls operation of the programmable device.
(18)
(19) The valve arrangement 10 comprises a valve housing 202 holding a movable valve element 204 having a through-opening 206. The movable valve element 204 is configured to be movable between an open position and a closed position as illustrated in
(20) Moreover, the valve arrangement 10 comprises a spring-loaded connection assembly 214 configured to form an electrical connection between the upper probe section 210 and the lower probe section 212 via the probe section 208 in the movable valve element 204 when the movable valve element 204 is in an open position as illustrated in
(21) An example embodiment of the spring-loaded connection assembly 214 will be described in greater detail in the following. The probe section 208 arranged in the through-opening 206 may consist of two portions (not shown) which are inserted into the through-opening 206 from opposite sides and threaded together. Moreover, the spacer 242 of the movable valve element 204 may comprise a seat or groove and the probe section 208 may comprise a corresponding flange or protrusion to prevent the probe section 208 from moving in the through-opening after it has been assembled.
(22) The illustrated valve arrangement 10 comprises an upper flange 216 for connecting the measuring unit 9 to the valve arrangement 10 to and a lower flange 218 for connecting the valve arrangement 10 to the tank 3.
(23) The spring-loaded connection assembly 214 will be described with further reference to
(24) Accordingly, a probe acting as a continuous transmission line through the valve arrangement 10 is formed. Preferably, the probe has substantially the same diameter throughout the whole of the valve arrangement 10. When the valve is closed, the spring-loaded probe elements 220, 222 are only in contact with the outer surface of the movable valve element 204 and there is no electrical connection path though the movable valve element 204. The illustrated embodiment comprises a single lead probe 11. However, the described valve arrangement may equally well be used with other types of probes such as a co-axial probe, wire probe, flexible probe, twin conductor probe and the like.
(25) As illustrated in
(26) Furthermore, the inner probe section 224 comprises a contact element 232 attached to an end portion, or forming the end portion, of the inner probe section 224 and the contact element 232 is configured to form an electrical and mechanical contact between the inner probe section 224 and the probe section 208 of the movable valve element 204.
(27) The illustrated contact element 232 comprises a curved end portion 238 which enables the contact element to automatically align with the hollow probe section 206 of the valve ball 204. The curved end portion 238 in the described embodiment is substantially hemispherical but it may also have other shapes while still achieving the same effect. By means of the described arrangement with a curved end portion 238, the inner probe section 224 can easily be pressed upwards (thereby compressing the coil spring 228) when the movable valve element 204 is rotated to a closed position as illustrated in
(28) The spring-loaded connection assembly 214 further comprises one or more contacting elements 234 configured to form a sliding contact between the inner and outer probe sections 224, 226. The contacting element 234 comprises a flexible conductive member 234 attached to the outer hollow probe section 226 and configured exert a force on the inner probe section 224 in a direction perpendicular to the surface of the inner probe section 224, to form a sliding contact between the inner and outer probe sections 224, 226. Thereby, an electrical contact is formed so that the transmitted microwave signal can propagate unhindered between the inner and outer probe sections 224, 226. Moreover, the described sliding contact 234 allows the inner probe section 224 to move in an axial direction in relation to the outer probe section 226 without breaking the electrical contact between the inner and outer probe sections 224, 226 which increases the reliability of the electrical connection in applications where the valve arrangement 10 may move or vibrate. The described contacting element 234 can for example be an elastic fingerlike structure which is pre-loaded so that it presses against the inner probe section 224 when it is located within the outer probe section 226.
(29) Furthermore, the illustrated outer probe section 226 comprises at least one opening 236 in a sidewall thereof, wherein the flexible conductive member 234 is arranged to form the electrical and mechanical contact with the inner probe section 224 through the opening 236.
(30) As illustrated in
(31)
(32) Even though the invention has been described with reference to specific exemplifying embodiments thereof, many different alterations, modifications and the like will become apparent for those skilled in the art. Also, it should be noted that parts of the system and method may be omitted, interchanged or arranged in various ways, the system and method yet being able to perform the functionality of the present invention.
(33) Additionally, variations to the disclosed embodiments can be understood and effected by the skilled person in practicing the claimed invention, from a study of the drawings, the disclosure, and the appended claims. In the claims, the word comprising does not exclude other elements or steps, and the indefinite article a or an does not exclude a plurality. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage.