SYSTEM AND METHOD FOR DIGITALLY MONITORING A PRESSURE VESSEL
20240011604 ยท 2024-01-11
Inventors
Cpc classification
F17C2250/032
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2250/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2250/034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
System and method for digitally monitoring the level of gas in liquid form in a composite pressure vessel made of at least a gas tight inner liner inside a layer of composite material, wherein the system comprises capacitive measuring unit for measuring the level of gas in liquid form in the pressure vessel, at least two sensor electrodes connected to the capacitive measuring unit, a communication unit for communicating the information measured by the capacitive measuring unit and a power unit for supplying power to at least one of the at least two electrodes, the capacitive measuring unit and the communication unit.
Claims
1. System for measuring the level of gas in liquid form in a composite pressure vessel that uses electrical capacitance to perform the measuring wherein the system comprises: a capacitive measuring unit for measuring the level of gas in liquid form in the pressure vessel, at least two sensor electrodes connected to the capacitive measuring unit a communication unit for communicating the information measured by the capacitive measuring unit, and a power unit for supplying power to at least one of the at least two electrodes, the capacitive measuring unit and the communication unit.
2. System according to claim 1 wherein the at least two electrodes comprise at least one transmitting electrode and at least one receiving electrode with interdigitized fingers.
3. System according to claim 1 wherein the capacitive measuring unit and the sensor electrodes is in the form of an elongated strip arranged to extend substantially the vertical height of an inner liner of the composite pressure vessel.
4. System according to claim 2 wherein a sensor unit has a reference point situated near a first end of the sensor unit to be arranged on the composite pressure vessel at a level where the gas always is in liquid form and a reference point situated near a second end of the sensor unit to be arranged on the composite pressure vessel at a level where the gas is always in gas form.
5. System according to claim 1 wherein the power unit is an energy harvester.
6. System according to claim 1 wherein the communication unit is a short-range radio communication unit for communicating information measured by the capacitive measuring unit to a receiver.
7. System according to claim 6 wherein the information displayed to the user can be either the amount of gas left in the pressure vessel or the amount of gas in liquid form in the vessel.
8. System according to claim 6 wherein the receiver is a display situated on the composite pressure vessel displaying the amount of gas left in the composite pressure vessel.
9. System according to claim 1 wherein the system further comprises a temperature sensor, a pressure sensor and a memory unit.
10. Method for digitally monitoring the level of gas in liquid form in a composite pressure vessel made of at least a gas tight inner liner inside a layer of composite material, wherein the system comprises a sensor unit attached to the liner of the composite pressure vessel that uses electrical capacitance to measure the amount of gas present in the vessel, wherein the sensor unit comprises:a capacitive measuring unit for detecting the amount of gas in the pressure vessel,at least two sensor electrodes connected to the capacitive measuring unit,a communication unit for communicating the amount of gas left detected by the capacitive measuring unit, and a power unit for supplying power to the capacitive measuring unit, the electrodes and the communication unit; wherein the method comprises the following steps: supplying power from the power unit to the capacitive measuring unit, at least one of the electrodes and the communication unit; measuring the amount of gas present in the composite pressure vessel with the capacitive measuring unit utilizing absolute or relative changes in electrical capacitance, communicating the measured amount of gas present with the communication unit to i. a memory unit, storing the measured amount of gas present in the composite pressure vessel in the memory and/or ii. a receiver and/or iii. a user, and/or iv. displaying the information to a user.
11. Method according to claim 10 wherein the power unit is an energy harvester that gathers energy from an ambient radio frequency spectrum.
12. Method according to claim 10 wherein the system comprises a temperature sensor for measuring the temperature of the composite pressure vessel and a pressure sensor for measuring the pressure within the pressure vessel, and the method comprises calculating the amount of gas in the composite pressure vessel based on the measured temperature, the measures pressure and the measured level of gas in liquid form in the composite pressure vessel.
13. A composite pressure vessel comprising a system for measuring the amount of gas left according to claim 1.
14. Composite pressure vessel according to claim 13, wherein the composite pressure vessel is a cylindrical vessel arranged for a vertical alignment of the cylinder axis, wherein the sensor unit is arranged vertically on the inner liner.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Following drawings are appended to facilitate the understanding of the invention. The drawings show embodiments of the invention, which will now be described by way of example only, where:
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
DETAILED DESCRIPTION
[0036] In the following, embodiments of the invention will be discussed in more detail with reference to the appended drawings. It should be understood, however, that the drawings are not intended to limit the invention to the subject-matter depicted in the drawings.
[0037]
[0038] The sensor unit 5 is placed on the side of the liner 4 of the composite pressure vessel. The sensor unit 5 is comprised of sensor electrodes 9 and a capacitive measuring unit 8. The sensor unit 5 has two reference points 6, 11. A first reference point 11 is positioned towards the lower end of the liner 4. This is a reference point for gas in liquid phase. Towards the top end of the liner 4 there is placed a second reference point 6 which is a reference point 6 for gas in gas phase.
[0039] The sensor unit 5 can be placed on the inside and outside of the liner 4, on the inside and on the outside of the composite material and on the inside and on the outside of the plastic cover.
[0040] The more material there is between the sensor unit 5 and the gas in the pressure vessel the more power is required to perform the measurements. The preferred placements of the sensor unit 5 are therefore as close to the gas as possible without being in contact with it like on the outside of the liner 4 on the composite pressure vessel.
[0041] For the sensor unit 5 to function properly the sensor unit 5 is glued to the side of the liner 4. It is important that there is proper contact between the sensor unit 5 and the vessel since the sensor unit 5 must stretch together with the pressure vessel to get accurate measurements.
[0042]
[0043]
[0044] The sensor unit 5 has a Bluetooth transmitter, preferably a Bluetooth Low Energy (BLE) transmitter 7. This transmitter can transmit the information gathered by the sensors to a receiver. The receiver can be a mobile phone wherein the measured information can be showed in an app on the phone. Alternatively, the receiver can be an IoT gateway which transmits the information to an internet server where the information can be accessed by a user.
[0045] The sensor unit 5 can also be comprised of a pressure sensor 10 and a temperature sensor 18. These sensors can contribute to the surveillance of the condition of the pressure vessel, but they are not necessary to measure the level of the gas in liquid phase.
[0046] The pressure sensor can be made up of a double E capacitive sensor. This sensor expands and contract as the pressure in the tank either increases or decreases. The capacitance changes in relation to the expansion and contraction of the sensor. The close contact between the sensor and the pressure vessel has a positive effect on the accuracy of the sensor. Preferably the sensor is either attached to the pressure vessel using a strong adhesive or the sensor is embedded in either the liner, the composite material or the outer casing.
[0047] To be able to perform the measurements and to transmit the measurements via BLE, the sensor unit 5 needs a power source. In a preferred embodiment of the present invention the power is supplied by an energy harvesting chip like the chip described in patent applications NO20170555, NO 20181285, NO20181286 and NO20181283. This energy harvesting chip gathers energy from radio waves. In an alternative solution the energy can be harvested by using solar panels attached to the pressure vessel. Both solutions have the benefit that they are maintenance free since they do not need to be recharged in the same way as a battery need. However, a battery can also be used as a power source.
[0048] The sensor unit 5 can also be fitted with a memory unit 16. This allows the capacitive measuring unit 8 to store the measurements if the pressure vessel is not in contact with a Bluetooth receiver.
[0049] On the backside of the sensor unit 5 there is a layer of adhesive material which ensures that the sensor unit 5 has a good attachment to the surface of the pressure vessel it is attached to.
[0050]
[0051] The information can be shown to the user as either the level of gas in liquid phase or as the amount of gas left in the pressure vessel. The amount of gas left in the pressure vessel is calculated using the level of gas in liquid phase, the pressure in the pressure vessel and the volume of the pressure vessel. The amount of gas left in the pressure vessel can be displayed as a percentage of the maximum amount of gas allowed in the pressure vessel.
[0052] If the app registers that the pressure in the vessel is reduced without it being in use an alarm can be given. Further if the sensor unit 5 registers that the gas level in the container is rapidly decreasing it can transmit an alarm to the receiver that something might be wrong.
[0053]
[0054] Further the service provider can be informed if there are any unnatural leakage of gas from the pressure vessel.
[0055]
[0056]
[0057] In order to keep track of the individual pressure vessels each vessel can be fitted with a unique ID. This makes it possible to store historical data related to each individual composite pressure vessel. The location of all the pressure vessel that the supplier is responsible for can be displayed in a map in order to make it easier for the supplier to find out where an empty pressure vessel is located. Alternatively, it can be stored as information in a data sheet.
[0058] When an empty pressure vessel is collected the supplier can fill the vessel and relocate it to another location. The supplier can put in the new location of the pressure vessel into datasheet or mark it on the map. Alternatively, each composite pressure vessel can be fitted with a satellite navigation unit that allows the supplier to keep track of the pressure vessel in real time. This makes it possible to keep track of the pressure vessel even if it has been moved.
[0059]
[0060] In addition to only measuring the gas level of the pressure vessel it is possible to keep track of the number of times the pressure vessel has been refilled.
REFERENCE LIST:
[0061] 1: Casing [0062] 2: Composite layer [0063] 3: Valve [0064] 4: Inner liner [0065] 5: Sensor unit [0066] 6: Point of reference always gas phase [0067] 7: Bluetooth Low Energy transmitter/communication unit [0068] 8: Capacitive measuring unit [0069] 9: Sensor electrodes [0070] 10: Pressure sensor [0071] 11: Point of reference always liquid phase [0072] 12: Flex [0073] 13: Backside surface [0074] 14: Capacitance measuring line [0075] 15: NTC [0076] 16: Memory unit [0077] 17: Power unit/energy harvester [0078] 18: Temperature sensor [0079] 19: Composite pressure vessel (LPG Cylinder) [0080] 20: Asset management platform [0081] 21: Multicloud Management Platform (MCMP) [0082] 22: Billing, rating and payment module [0083] 23: Data management module [0084] 24: Communication interface [0085] 31: Mobile device [0086] 32: Gateway [0087] 33: Digital display [0088] 34: Third party receiver