Intelligent system for real-time measurement and analysis, quantitative and qualitative evaluation and acceptance of fuel oil

A portable system with real-time measurement and chemical analysis addresses bunkering challenges, ensuring accurate fuel delivery and quality, reducing economic losses and risks through immediate feedback and compliance with ISO 8217 specifications.

JP7741337B2Active Publication Date: 2025-09-17エンソマトシス グループ リミテッド +3
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Patent Information

Application Number
JP2024548501
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-16
Publication Date
2025-09-17
Estimated Expiration
2042-02-16

AI Technical Summary

Technical Problem

The existing bunkering process for ships faces challenges in accurate quantitative measurement and delayed qualitative analysis of fuel, leading to economic losses, engine damage, and environmental risks due to adulterated fuel, with no real-time solutions available.

Method used

A portable system with real-time measurement and chemical analysis capabilities, utilizing ultrasonic technology and satellite/GPS for data transmission, provides immediate feedback on fuel quantity and quality, ensuring compliance with ISO 8217 specifications.

Benefits of technology

Enables precise fuel delivery and quality assurance, minimizing economic losses and fraudulent activities by allowing immediate process adjustments, thus protecting shipowners and suppliers from financial and operational risks.

✦ Generated by Eureka AI based on patent content.

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Abstract

1. The system allows the acquisition, monitoring, display, analysis and storage, notification and alarm of a number of parameters in real time during the bunkering process of a ship (or any means of transport) or the loading and unloading process of a fuel cargo. The system consists of (at least) the following parts: a. It is installed along the fuel flow and (1) it is capable of recording a number of parameters related to the quantitative delivery-acceptance of fuel: ■ Operating and standard (normalized to any desired temperature) fuel volumetric rates (m 3 / h). ■ Operating and standard (normalized to any desired temperature) fuel mass velocity (tn / h). ■ Operating and standard (normalized to any desired temperature) total fuel volume (m 3 (2) provide a measurement of the operating and standard (normalized to any desired temperature) total fuel mass (tn); and (3) identify the fuel category / type (e.g., RMG 380, RMG 180, gasoline, etc.); (3) Detect possible fuel entrainment (providing an alarm if detection levels exceed desired limits); and (4) perform instantaneous / real-time chemical analysis of the fuel, providing: ■ the fuel's kinematic viscosity and kinetic viscosity (cSt); ■ the fuel's dynamic and standard (normalized to any desired temperature) density (kg / m 3 ) and API degree, ■Fuel temperature (°C), ■Fuel humidity (% water content (P 1 / 20)), ■% content of various chemical elements such as S, Al, Si, Ca, V, P, Zn, Na (all elements of the "Periodic Table" can be detected depending on the application), (5) locating the location (WGS84 coordinates) of the bunkering site using all available global navigation satellite systems, (6) providing notifications and alarms if any of the measured fuel parameters exceed certain limits / thresholds defined in valid international / national standards, (7) providing geo-fencing notifications and alarms, (8) transmitting all the aforementioned data to a cloud application and database via a wireless link for communication with a cellular network or satellite communication or local router / gateway, and ■ to a mobile application via a short-range wireless link available in a mobile phone, and (9) detecting the limits / thresholds. The thresholds, sampling rates, various configuration parameters and firmware (FW) can be updated remotely: ■ from a cloud application, via a wireless link for communication with a cellular network or satellite communication or a local router / gateway, ■ from a mobile application, via a short-range wireless link available on the mobile phone; (10) a portable device (powered by a rechargeable battery or an external DC or AC power source) that stores all the above data; b. cloud applications and databases supporting: (1) all the functions of the portable device described in paragraph 1.a; (2) data analysis and statistics; (3) historical data storage and processing; (3) user management; c. a mobile application developed to support the functions of the portable device described in paragraph 1.a. This application is used on a mobile phone in the vicinity of the portable device. The radio access technology (RAT) between the mobile phone and the portable device allows for a short-range wireless link available on the mobile phone.2. The system: a. ensures the delivery and receipt of the correct amount (volume and mass) of fuel; b. ensures the delivery and receipt of fuel of appropriate quality in accordance with valid international / national standards; c. ensures optimal management of the ship's bunkering or loading / unloading process of the fuel cargo and the minimization (or elimination) of economic losses for all stakeholders due to adulterated or poor quality fuel.
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Description

[Technical Field]

[0001] 1. Application Areas

[0002] a. The present invention is primarily applicable to the bunkering process of ships, but potentially can be applied to the bunkering process of any means of transport. The international term for the bunkering process of ships is "bunkering". Furthermore, the present invention can be applied to the loading and unloading process of any kind of fuel oil used in cargo. The main objectives of the present invention are as follows:

[0003] (1) Delivery-acceptance of the correct amount of fuel.

[0004] (2) Delivery and acceptance of fuel quality in accordance with ISO 8217:2017 specifications or valid international / national standards relevant to the bunkering process or the loading and unloading of fuel cargoes, thereby eliminating or minimizing cases of adulterated or poor quality fuel that could have devastating consequences for the ship / vehicle's engine and / or the environment.

[0005] (3) Optimal management of the bunkering / bunkering or fuel cargo loading / unloading process and minimizing (or eliminating) economic losses.

[0006] b. The present invention is a system that achieves the above objectives by collecting, monitoring, presenting and analyzing a number of parameters of interest in real time during the refueling / bunkering or fuel cargo loading / unloading process by utilizing at least the following subsystems:

[0007] (1) Portable devices.

[0008] (2) Cloud applications and databases (DBs).

[0009] (3) Mobile applications (for smartphones or any portable device with short-range wireless communication capabilities). [Brief explanation of the drawings]

[0010] [Figure 1] The fuel supply pipe connections are shown. [Figure 2] The fuel supply pipe connections are shown. [Figure 3] The parameters are shown. [Figure 4] The device is shown. [Figure 5] 1 shows the portable device and fuel flow. [Figure 6] 1 shows a portable device. DETAILED DESCRIPTION OF THE INVENTION

[0011] 2. Explanation of the problem and necessity of the invention

[0012] The process described below focuses on, but is not limited to, bunkering procedures (i.e., it can be generalized to the process of loading and unloading fuel cargoes, the process of refueling all modes of transport, etc.).

[0013] a. The ship's bunkering process includes the following steps and procedures:

[0014] (1) Step 1: A floating fuel tank (vessel) approaches the ship to be refueled. The international term for this tank is "barge."

[0015] (2) Step 2: The barge connects its pipe to the ship's bunkering pipe. The connection can be direct if the two pipes have the same cross section, or through a "cross-section converter" (called a "reducer" in shipping) if the two pipes have different cross sections. The connection is made with flanges and bolts, as shown in Figures 1 and 2.

[0016] (3) Step 3: The fuel sample collection assembly is fitted / attached to the connection point between the aforementioned pipes (see step 2). At the end of the bunkering process, the collected fuel is divided into four equal samples / portions as follows: (a) Two parts remain on board. (b) One part is delivered to the barge. (c) One portion will be sent by the shipowning company to a third-party laboratory where chemical analysis will be carried out.

[0017] (4) Step 4: The bunkering process is carried out at a specific pressure (measured in bar) and fuel flow rate (m 3 The fuel temperature during bunkering must allow for smooth fuel flow. Therefore, high viscosity fuels (measured in centistokes (cSt)) shall be supplied (from the barge) at a relatively high temperature (e.g., 40°C).

[0018] (5) Step 5: The bunkering process is finished and the quantitative receipt of fuel is as follows: The ship's engineer (manually) measures the level / height of the fuel in the ship's tanks, which corresponds to a certain fuel quantity (based on knowledge of the tank dimensions). This procedure is performed in all cases.

[0019] b. Qualitative acceptance of the fuel will be communicated several days after completion of the laboratory chemical analysis (see step 3 / c above).

[0020] c. The main problems with the above process are:

[0021] (1) Quantitative Acceptance (a) The procedure for measuring the "height" of fuel in a ship's tanks is not generally accepted. Barges usually dispute the accuracy of measurements made on board, but the measurements (made with "positive displacement" or "Coriolis" flow meters) are considered, in accordance with international practice, to be the most valid. In such cases, the general solution is to: 1 / Mutual compromise results in significant economic loss to one of the two parties (ship or barge). 2 / Or a court decision again causes significant economic loss to one of the two parties. (b) When air bubbles are introduced into the fuel supplied (from the barge), the "height" of the fuel in the ship's tanks is "temporarily" correct. After a period of time (after the barge has departed and a quantitative intake of fuel has taken place), the air bubbles escape from the fuel and the level in the tanks therefore drops dramatically. However, the shipowner company cannot prove any fraud that would result in significant financial losses after the barge has departed. The introduction of air bubbles into the fuel supply is known in shipping as the "cappuccino effect".

[0022] (2) With regard to qualitative acceptance, as described in paragraph 2a (3) (c) above, the chemical analysis of the fuel carried out by the laboratory is always delayed for several days. Meanwhile, the ship continues to travel on the received fuel. If the fuel quality is inadequate (e.g., a high proportion of water or chemical elements that exceed the limits, causing problems in the operation of the engine), this will affect the operation, efficiency and service life of the ship's engines, with significant medium- to long-term economic consequences for the shipowner. If the quality of the supplied fuel is so poor that it causes immediate and serious problems in the operation of the engines, the ship will have to abort the voyage and immediately unload the supplied fuel, a process that involves very high costs for the shipowner.

[0023] d. The added value of this invention lies in at least the following:

[0024] (1) It is the only known portable system capable of real-time measurement and chemical analysis for quantitative and qualitative evaluation and acceptance during bunkering.

[0025] (2) Measurements and data are available in real time on cloud or mobile applications.

[0026] (3) To the inventor's knowledge, there are no other similar systems used in the bunkering process. A simple flow meter is not considered a "similar system" for the following reasons: (a) They are not portable. (b) In most cases, they do not transmit data or provide notifications and / or alarms. (c) They do not perform chemical analysis.

[0027] (4) Through the chemical analysis carried out, it is possible to provide the ship’s personnel and the shipowner with direct / real-time information on the quality of the received fuel, allowing an immediate decision to stop the bunkering process if the fuel quality is outside the ISO 8217 specifications.

[0028] (5) Able to be implemented in a generally accepted system that minimizes or eliminates: (a) Events of fraud. (b) Economic loss due to: 1 / Delivery of less fuel (than paid for). 2 / Low efficiency of ship's engines. 3 / Damage to the ship's engine. 4 / The need for fuel unloading. 5 / Litigation costs.

[0029] 3. Analysis of the technical and economic objectives of the invention

[0030] As an example or case study illustrating the usefulness of the present invention, the following incident recorded in shipping and related to the bunkering process can be mentioned (names of the companies involved are not given):

[0031] In 2011, a ship received 410 tons of IFO-180cSt fuel in West Africa. The delivery of the fuel was handled by a German-Cypriot company (an intermediary supplier) that purchased the fuel from an African supplier. After delivery, the ship set sail, but after 72 hours on the road, its engines began to malfunction due to poor fuel quality (as determined by chemical analysis several days later). The need to remove the fuel from the ship's tanks became urgent. The fuel removal process took place in a Swedish port (the only port available for this process due to the ship's size). This process resulted in financial losses totaling US$350,000 for the intermediary supplier (i.e., the German-Cypriot company), and the intermediary supplier was unable to claim the corresponding amount from the African supplier. Furthermore, the ship suffered severe engine damage, causing a 10-day delay in its scheduled voyage, resulting in significant financial impacts for the shipowner.

[0032] Clearly, an on-site (real-time) chemical analysis system for fuel would have stopped the bunkering process from the very first minutes, protecting both the shipowner and the intermediate supplier from significant financial losses.

[0033] Many similar incidents have been reported in the shipping industry. Generally, shipowners' losses for each bunkering are estimated to range from tens of thousands of US dollars, mainly due to underdelivery of fuel, to hundreds of thousands of US dollars due to the delivery of "non-ISO 8217" fuel (causing damage to the ship's engines), delays, legal costs, etc. The losses taken into account are estimated to be 4% (at least) of the fuel cost supplied for each bunkering.

[0034] Thus, for a fleet of only 10 ships, with an average fuel load of 1000 tn IFO-380cSt per ship, the annual economic loss is calculated as follows: [Number of ships] x [Average fuel load (tn)] x [Cost / tn (USD)] x [Number of bunkers / year] x [4% loss] = 10 x 1000 x 650 x 10 x 4% = $2,600,000.00 (Note: Cost per tn is assumed to be 650 USD based on current bunker oil costs (February 2022)).

[0035] Using an intelligent system for real-time quantity and quality measurement / analysis can save shipowners the aforementioned amounts (on an annual basis). Additionally, it can protect intermediary suppliers from deliveries of less and / or unexpected quality fuel, which can lead to significant financial and reliability losses.

[0036] To achieve the objectives of the present invention, the system: ■High reliability. ■Certified for use in marine environments. ■Flexible design and ease of use - easy to handle. ■Affordable price.

[0037] 4. System Description

[0038] The system includes the following configuration items / components / equipment:

[0039] 4.1. Portable Measurement and Chemical Analysis Equipment

[0040] This is a portable sensor platform / device powered by a rechargeable battery. The device has the shape of a pipe and is adapted / installed at the end of the ship's bunkering or fuel cargo loading / unloading pipe along the fuel flow as shown in Figure 4. The device does not block or impede the fuel flow during the bunkering process. However, the device can also be "fixed installed" in the ship's piping system (along the fuel flow) and permanently powered by a DC / DC or AC / DC adapter. The device performs at least the following functions simultaneously and in real time:

[0041] a. Provide measurements of a number of parameters related to the quantitative acceptance of fuel. Indicative parameters include: (1) Operating and standard (normalized to any desired temperature) fuel volume rate (m3 / h). (2) Operating and standard (normalized to any desired temperature) fuel mass rate (tn / h). (3) Operating and standard (normalized to any desired temperature) total fuel volume (m 3 ). (4) Operating and standard (normalized to any desired temperature) total fuel mass (tn).

[0042] b. Identify the fuel category / type (e.g., RMG 380, RMG 180, gasoline, etc.).

[0043] c. Detecting possible fuel contamination by air bubbles (providing an alarm when detected levels exceed desired limits).

[0044] d. Perform instant chemical analysis of fuel to determine: (1) Fuel kinematic viscosity and dynamic viscosity (cSt). (2) The operating and standard (normalized to any desired temperature) density of the fuel (kg / m 3 ) and API degree. (3) Fuel temperature (°C). (4) Fuel humidity (% water content (H2O)). (5) % content of various chemical elements in the fuel, such as S, Al, Si, Ca, V, P, Zn, Na, etc. (All elements in the "periodic table" can be detected depending on the application).

[0045] e. Use available global navigation satellite systems (GPS, GLONASS, Beidou, Galileo) to detect the location of the bunkering site.

[0046] f. Providing notifications and alarms when any of the parameters (in paragraph 4.1.ad.) exceed specific limits / thresholds defined in ISO 8217:2017 (Petroleum products - Fuels (Class F) - Specification for marine fuels) or current international / national standards related to the bunkering or fuel cargo loading / unloading process, as shown in Figure 3. Regarding location (4.1.e), geofencing notifications and alarms can be provided. These limits / thresholds can be dynamically and remotely set / configured by the system user in the following ways: (1) From a cloud application via a cellular network (using any available cellular technology) or satellite communication or any wireless link (e.g., but not limited to, WiFi, WiMax, LoRa, LoRaWAN, Zigbee, Bluetooth, Z-Wave, Sigfox, etc.) for communication with a local router / gateway. (2) From a mobile application, over a short-range wireless link (using any short-range wireless link available on the mobile phone).

[0047] g. Perform measurements as per paragraph 4.1.ae. at a remotely configurable sampling rate and transmit all bunkering / fuel cargo data to: (1) To a cloud application via a cellular network (using any available cellular technology) or satellite communication or any wireless link (e.g., but not limited to, WiFi, WiMax, LoRa, LoRaWAN, Zigbee, Bluetooth, Z-Wave, Sigfox, etc.) for communication with a local router / gateway. (2) to a mobile application via a short-range wireless link (using any short-range wireless link available on the mobile phone);

[0048] i. Store all the above data locally.

[0049] To implement the functions described in paragraph 4.1.a., the portable device employs ultrasonic (u / s) technology based on commercially available solutions specifically configured and customized for the needs of this invention. More specifically, an audio source generates and transmits a periodic sound signal—pulses of the appropriate frequency (Hz) that pass through the fuel and are received by the u / s receiver. This occurs in both the direction of fuel flow and the opposite direction, as shown in Figure 5. The system can measure the propagation delay of the sound signal between the transmitter and receiver, which is affected by the fuel's flow rate, density (or API degree), and temperature. As shown in Figure 5, neither the u / s transmitter nor the receiver is in contact with the fuel. The measured propagation delay of the sound signal corresponds to a specific combination of density (or API degree) and fuel velocity. Temperature measurement is also taken into account and is performed using a dedicated temperature probe. Knowing the fuel's density, velocity, and temperature, as well as the dimensions of the portable device, the device calculates the parameters described in paragraphs 4.1.a.-b., as well as the presence of gas bubbles in the fuel (described in 4.1.c.), which "distort" the fuel flow and affect various diagnostic parameters monitored (in real time) by the device's processing unit.

[0050] For the measurements of paragraph 4.1.de, the portable device employs a variety of sensors of appropriate technology. All device functions include: ■ Real-time measurement execution, ■ Real-time analysis, processing and storage of measurements, ■ Real-time transmission of measurements, notifications and alarms, ■Remote settings and firmware (FW) updates are Implemented by a suitable ECU (Electronic Control Unit) which includes: ■ Embedded processing units based on microprocessor units and various interfaces; ■ Any wireless link for communicating with a cellular transceiver (using available cellular technology) or satellite transceiver or local router / gateway (e.g., but not limited to, WiFi, WiMax, LoRa, LoRaWAN, Zigbee, Bluetooth, Z-Wave, Sigfox, etc.); ■Real-time clock (RTC).

[0051] The display of the portable device is shown in Figure 6.

[0052] 4.2. Cloud Applications and Databases

[0053] Cloud application and system databases: a. Supports all functions / features of the portable device detailed in paragraph 4.1; b. Other features, including: (1) Historical data storage and processing. (2) Statistical and economic analysis. (3) User management. It is developed to support.

[0054] Mobile Applications

[0055] A mobile application is being developed to support the functionality in paragraph 4.1. This application shall be used on a mobile phone in the vicinity of the portable device. The radio access technology (RAT) between the mobile phone and the portable device may be any short-range wireless link available to the mobile phone.

[0056] 5. Conclusion

[0057] The present invention has been designed and tested in a laboratory where a functional prototype has been validated. The results show that the present invention contributes to: a. Delivery / acceptance of precise amounts of fuel (tolerance ≤ 0.5%). b. Delivery - Acceptance of fuel quality in accordance with ISO 8217:2017 specifications or valid international / national standards. c. Optimal management of the bunkering / bunker cargo loading / unloading process and minimization (or elimination) of economic losses.

[0058] The innovation of this invention is that:

[0059] a. The system is the only portable system capable of providing ship's personnel and shipowner with real-time information on the quantity and quality of fuel received, allowing for early stopping / pausing of the bunkering / bunker cargo offloading process if certain conditions and limits / thresholds are not met. In this context, the present invention can be applied to any generally accepted system that can minimize or eliminate economic losses and fraudulent activities.

[0060] b. The bunkering / fuel cargo loading / unloading process is supported by cloud applications and databases, and mobile applications that enable: ■Remote real-time data acquisition. ■Remote real-time notifications and alarms. ■Remote management, configuration and firmware updates for portable devices. ■Data analysis. ■Storage of historical data and statistics.

Claims

1. 1. A system for real-time measurement and analysis and quantitative and qualitative assessment and acceptance of fuel oil, said system being configured to acquire, monitor, display, analyze and store a number of parameters in real time during the process of bunkering a ship or loading or unloading a fuel cargo; a. A portable device installed along the fuel flow at the end of the ship's bunkering or fuel cargo loading / unloading pipe so as not to interrupt or impede the fuel flow or to remove fuel samples from the fuel flow; ・Quantitative evaluation and acceptance, Elemental analysis in conjunction with qualitative assessment, i.e., determination of the % content of several chemical elements in the fuel; a portable device including a sensor and means employing ultrasound technology to perform an analysis for b. Cloud applications; c. Mobile applications; Implemented using The means employing ultrasonic technology is a means for: i) providing measurements of parameters related to the quantity of the fuel; ii) identifying the category of the fuel; and iii) detecting contamination of the fuel by gas bubbles. system.

2. The portable device has a shape of a pipe. The system of claim 1 .

3. the portable device includes an electronic control unit (ECU) including an embedded processing unit, a cellular or satellite transceiver or a wireless link for communicating with a local router / gateway, and a real-time clock, the ECU being connected to the sensors and configured to transmit measurements stored in the ECU to the cloud application and the mobile application; 3. The system according to claim 1 or 2.

4. A method for using a system according to any one of claims 1 to 3, comprising: i) installing the portable device at the end of a bunkering or fuel cargo loading / unloading pipe of the ship along the fuel flow; ii. Measuring a parameter related to the quantity of fuel; iii. Identifying the fuel category / type; iv. detecting contamination of said fuel by air bubbles, if any, and providing an alarm when the detected level exceeds a desired limit; v. performing instant chemical elemental analysis of the fuel; vi. setting threshold limits for any of the parameters, the fuel category / type, the contamination of the fuel by gas bubbles, and the chemical element analysis; vii. Providing notifications and alarms when any of said threshold limits are exceeded; method.

5. setting threshold limits for any of the parameters defined in ISO 8217:2017, the fuel category / type, the contamination of the fuel by gas bubbles, and the chemical element analysis; The method of claim 4.

6. 6. The method of claim 4 or 5, comprising identifying the fuel category / type in accordance with ISO 8217:2017.

7. 1. An apparatus for real-time measurement and analysis and quantitative and qualitative assessment and acceptance of fuel oil, said apparatus being configured to acquire, monitor, display, analyze and store a number of parameters in real time during the process of bunkering a ship or loading or unloading a fuel cargo; a. the device is portable; b. the device is installed along the fuel flow at the end of the ship's bunkering or fuel cargo loading / unloading pipe so as not to interrupt or impede the flow of fuel or to remove fuel samples from the fuel flow; - Quantitative analysis, including quantitative evaluation and acceptance; Chemical elemental analysis, i.e., determination of the % content of several chemical elements in the fuel; and a sensor employing ultrasonic technology to perform the c. the device has an electronic control unit (ECU) including an embedded processing unit, a cellular or satellite transceiver or a wireless link for communicating with a local router / gateway, and a real-time clock, the ECU being connected to the sensors and configured to transmit measurements stored in the ECU to a cloud application and a mobile application; The means employing ultrasonic technology is a means for: i) providing measurements of parameters related to the quantity of the fuel; ii) identifying the category of the fuel; and iii) detecting contamination of the fuel by gas bubbles. Device.

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