The present invention relates to a monitoring system, and to a method of determining a status of a floating roof of a storage tank.
In certain tanks, in particular storage tanks for petroleum products at refineries and the like, use is frequently made of a floating roof which floats on the product in liquid state in the tank and therefore is displaceable in a vertical direction. Thus, the floating roof is capable of following the level of the product in liquid state when the product is discharged from or filled into the tank. Floating roofs of this type are used for preventing leakage of product vapor from the tank into the atmosphere and ingress of rain and the like into the space defined by the tank walls and the floating tank roof. Typically, the prevention of leakage and ingress is enhanced by a sealing arrangement fitted along a perimeter of the floating roof for providing sealing and sliding contact with the inner wall of the tank. Further, using a roof that floats on the product in liquid state enables minimizing a volume between the liquid surface and the roof, thereby minimizing the amount of product in vapor phase in the tank.
Floating roofs for these purposes are usually manufactured as large steel structures with float means (pontoons) and have a weight in the order of a hundred tons and a diameter of tens of meters. With regard to size and environmental aspects, it is important to monitor the normal operation and undisturbed floating of the floating roof, such that any disturbance thereof is identified at an early stage.
Different situations of disturbance to normal operation and floating have been observed in the past.
In filling of the tank, part of the floating roof could get stuck to the inner wall of the tank. As the filling proceeds, the floating roof would then be partially flooded by product in liquid state, potentially resulting in a hazardous situation.
In discharging of the tank, part of the floating roof could get stuck to the inner wall of the tank. As the discharging proceeds considerable amounts of air could enter the space between the liquid and the floating roof. In the event of a subsequent roof collapse, an explosive atmosphere could form above the collapsed roof.
Regulations tend to become stricter to minimize evaporation of liquid from floating roof tanks. This has resulted in floating roof designs which exhibit a higher friction in the sealing arrangement between the perimeter of the floating roof and the inner wall of the tank. This increase in friction could increase the risk of a roof getting stuck.
Abnormal function and floating may similarly occur if a large amount of rain or snow is present or unevenly distributed on the roof. This could cause the roof to sink or tilt and collapse.
For years, issues like those described above have attracted attention in the petroleum industry. There seems to be an increasing demand for systems that address the issues.
Various existing methods of monitoring floating roofs are based on measuring relative positions or inclinations of several locations on the floating roof when in operation. There is also monitoring that combines this with, for instance, video monitoring or detection of the presence of gas on top of the floating roof.
In view of the above, a general object of the present invention is to provide for improved monitoring of a floating roof, in particular requiring less complex installation of equipment.
Aspects of the present invention are based on the realization that selective evaluation of reflected energy traveling from the floating roof in each propagation direction of a plurality of different propagation directions can be used as a basis for determining the status of the floating roof, and that this allows floating roof monitoring using a single radar level gauge system arranged above the floating roof.
According to a first aspect of the present invention, it is provided a method of determining a status of a floating roof of a storage tank using a radar level gauge system arranged above the floating roof, the radar level gauge system including a transceiver, an antenna arrangement, and processing circuitry, wherein the radar level gauge system is controllable to selectively evaluate reflected energy traveling towards the antenna arrangement in each propagation direction of a plurality of different propagation directions, the method comprising the steps of: radiating, by the radar level gauge system, an electromagnetic transmit signal towards the floating roof; receiving, by the radar level gauge system, an electromagnetic reflection signal resulting from reflection of the transmit signal at the floating roof; selectively evaluating, by the radar level gauge system based on the reflection signal, reflected energy traveling from the floating roof towards the antenna arrangement in each propagation direction of the plurality of different propagation directions; and determining the status of the floating roof based on the selective evaluation.
According to a second aspect of the present invention, it is provided a floating roof monitoring system, for determining a status of a floating roof of a storage tank, the floating roof monitoring system including a radar level gauge system for arrangement above the floating roof, the radar level gauge system comprising: a transceiver for generating, transmitting and receiving electromagnetic signals; an antenna arrangement coupled to the transceiver for radiating an electromagnetic transmit signal towards the floating roof and receiving an electromagnetic reflection signal resulting from reflection of the transmit signal by the floating roof; and processing circuitry configured to: control the transceiver to generate and transmit an electromagnetic transmit signal; selectively evaluate based on an electromagnetic reflection signal resulting from reflection of the transmit signal at the floating roof and received by the transceiver, reflected energy traveling from the floating roof towards the antenna arrangement in each propagation direction of the plurality of different propagation directions; and determine the status of the floating roof based on the selective evaluation.
Embodiments of the method and system according to the present invention allow determination of various aspects of the status of the floating roof. Such aspects may, for example, include an indication of a local inclination of the floating roof, positions of a plurality of predefined locations on the floating roof, the distribution of stress in the roof, the location of the floating roof in relation to the product in liquid state in the tank, etc. Based on determined information about the status of the floating roof, an early warning can be provided to the tank operator indicating that the floating roof is not functioning as intended and, optionally, also indicating the type of malfunction.
The term “selectively evaluating”/“selective evaluation” should, in the context of the present application, be understood to mean that at least one property of the reflected energy traveling from the floating roof is individually evaluated for the different propagation directions. Examples of the at least one evaluated property may, for example, include a magnitude of the reflected energy, a distance to an origin (point/area of reflection) of the reflected energy, etc.
The antenna arrangement may be realized in the form of a radiating antenna that is controllable to transmit and/or receive towards/from different directions. Such an antenna may be physically movable, and/or the direction of preferred transmission/reception may be electronically controllable. In the latter case, the antenna may be a so-called patch antenna, which may be controlled using, per se, well-known phased-array control methods.
Alternatively, or in combination, the antenna arrangement may comprise a plurality of antennas configured to transmit/receive towards/from mutually different directions.
The “transceiver” may be one functional unit capable of transmitting and receiving electromagnetic signals or may be a system comprising separate transmitter and receiver units.
It should be noted that the processing circuitry may be provided as one device or several devices working together.
In summary, the present invention thus relates to a method of determining a status of a floating roof of a storage tank using a radar level gauge system arranged above the floating roof, the radar level gauge system being controllable to selectively evaluate reflected energy traveling towards the radar level gauge system in each propagation direction of a plurality of different propagation directions, the method comprising the steps of: radiating, by the radar level gauge system, an electromagnetic transmit signal towards the floating roof; receiving, by the radar level gauge system, an electromagnetic reflection signal resulting from reflection of the transmit signal at the floating roof; selectively evaluating, by the radar level gauge system based on the reflection signal, reflected energy traveling from the floating roof towards the radar level gauge system in each propagation direction of the plurality of different propagation directions; and determining the status of the floating roof based on the selective evaluation.
These and other aspects of the present invention will now be described in more detail, with reference to the appended drawings showing a currently preferred embodiment of the invention, wherein:
As is schematically indicated in
In addition to the floating roof monitoring system 1, the tank 3 in
The radar level gauge system 11 comprised in the floating roof monitoring system 1 may be fixedly attached to the tank wall 5, by means of a suitable support arrangement, such as the support 33 schematically indicated in
In the example embodiment of
Alternatively, communication may, for example, take place over an analog and/or digital wire-based communication channel. For instance, the communication channel may be a two-wire 4-20 mA loop and a signal indicative of the status of the floating roof may be communicated by providing a certain current corresponding to the filling level on the two-wire 4-20 mA loop. Digital data may also be sent across such a 4-20 mA loop, using the HART protocol. Furthermore, pure digital communication protocols such as Modbus or Foundation Fieldbus may be used.
In the following, example embodiments of the method according to the present invention will be described with reference to the flow-chart in
In a first step 100, an electromagnetic transmit signal ST is radiated towards the floating roof 7 by the radar level gauge system 11 comprised in the floating roof monitoring system 1. The transmit ST signal may be formed by a set of measurement sweeps (i.e. one or more measurement sweeps), or the transmit signal ST may be a pulsed signal. Furthermore, depending on the particular embodiments of the monitoring system and method according to the present invention, the transmit signal ST may exhibit a substantially fixed radiation pattern, or may sequentially be directed in different propagation directions towards different target areas 15a-c on the floating roof 7.
In the subsequent step 101, the radar level gauge system 11 comprised in the floating roof monitoring system 1 receives, via the antenna arrangement 25, an electromagnetic reflection signal SR resulting from reflection of the transmit signal ST at the floating roof 7.
After having received the reflection signal SR, the radar level gauge system 11 selectively evaluates, in step 102, reflected energy traveling from the floating roof 7 towards the antenna arrangement 25 in each propagation direction rR of a plurality of different propagation directions, based on the reflection signal SR.
Based on the selective evaluation carried out in step 102, the status of the floating roof 7 is then determined in step 103. A signal indicative of the determined status may then be provided in step 104, either continuously, or conditionally depending on the determined status of the floating roof 7.
In the example embodiments of
The step of determining the status of the floating roof (step 103) here comprises estimating an inclination α1 of the first target area 15a based on the measure indicative of the amount of reflected energy, indicated by ‘E’ on the vertical axis of the diagram in
As was explained above with reference to the flow-chart in
In the example embodiments of
The step of determining the status of the floating roof (step 103) here comprises determining a representation of the floating roof 7 based on the respective position of each of the target areas 15a-c of the floating roof 7. The representation based on the three positions in
In any one of the example embodiments described so far, a measure indicative of a vertical distance between the radar level gauge system 11 of the floating roof monitoring system 1 and the floating roof 7 may be determined based on the transmit signal ST and the reflection signal SR, and the determination of the status of the floating roof 7 may be additionally based on this measure.
If, for instance, it is determined based on this vertical distance that the floating roof 7 moves less or more than expected when product 9 is added to or removed from the tank 3 at known rates of addition or removal, this may be taken as an indication that the floating roof 7 is not following the movements of the liquid product 9 in a satisfactory manner, and a signal indicative of this may be provided.
Furthermore, a measure indicative of a filling level of the product 9 in the tank 3 may be acquired from the filling level determining system 17 (see
The person skilled in the art realizes that the present invention by no means is limited to the preferred embodiments described above. On the contrary, many modifications and variations are possible within the scope of the appended claims.
Number | Date | Country | Kind |
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19196949.2 | Sep 2019 | EP | regional |