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公开(公告)号:US11055207B2
公开(公告)日:2021-07-06
申请号:US16415534
申请日:2019-05-17
Applicant: The Boeing Company
Inventor: Daniel Ramiro Rebollo , Johan De Prins , Maxim Constantijn Vos , Pawel Kajak , Victor Arcos Barraquero , Bastian Figlar
Abstract: A method for automatic generation of integration tests from unit tests includes automatically running, by a processor, a unit test for each model of a plurality of models making-up a system. The method also includes automatically determining, by the processor, integration of unit test cases of interfacing models for one or more groups of interfacing models of the plurality of models. The method additionally includes automatically running, by the processor, an integration test for each group of interfacing models using the unit tests for each model of the interfacing models. The method further includes automatically detecting, by the processor, at least one of inconsistent, incomplete or incorrect data transmitted between the interfacing models for each group of interfacing models.
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公开(公告)号:US20250136289A1
公开(公告)日:2025-05-01
申请号:US18496099
申请日:2023-10-27
Applicant: THE BOEING COMPANY
Inventor: David Garrido López , Johan De Prins , Maxim Constantijn Vos , Geun II Klm , José Alexandre Tavares Guerreiro Fregnani
IPC: B64D45/00
Abstract: A system and a method include a control unit configured to determine drag factors and fuel flow factors for different phases of one or more prior flights of an aircraft, and determine a fuel level for one or more upcoming flights of the aircraft based on the drag factors and the fuel flow factors for the different phases of the one or more prior flights of the aircraft.
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公开(公告)号:US10017253B1
公开(公告)日:2018-07-10
申请号:US15435384
申请日:2017-02-17
Applicant: THE BOEING COMPANY
IPC: B64D11/00 , G08B21/18 , G06F3/0488
CPC classification number: B64D11/00155 , B64D13/06 , B64D2013/0603
Abstract: A cabin pressure assessment system for an aircraft includes a plurality of polling devices within an internal cabin of the aircraft. The plurality of polling devices are associated with passenger seats onboard the aircraft. A cabin pressure assessment control unit is communicatively coupled to the plurality of polling devices. The cabin pressure assessment control unit is configured to receive cabin pressure comfort data from the plurality of polling devices.
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公开(公告)号:US20200327042A1
公开(公告)日:2020-10-15
申请号:US16415534
申请日:2019-05-17
Applicant: The Boeing Company
Inventor: Daniel Ramiro Rebollo , Johan De Prins , Maxim Constantijn Vos , Pawel Kajak , Victor Arcos Barraquero , Bastian Figlar
IPC: G06F11/36
Abstract: A method for automatic generation of integration tests from unit tests includes automatically running, by a processor, a unit test for each model of a plurality of models making-up a system. The method also includes automatically determining, by the processor, integration of unit test cases of interfacing models for one or more groups of interfacing models of the plurality of models. The method additionally includes automatically running, by the processor, an integration test for each group of interfacing models using the unit tests for each model of the interfacing models. The method further includes automatically detecting, by the processor, at least one of inconsistent, incomplete or incorrect data transmitted between the interfacing models for each group of interfacing models.
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公开(公告)号:US10424210B2
公开(公告)日:2019-09-24
申请号:US15915132
申请日:2018-03-08
Applicant: The Boeing Company
Inventor: David Garrido-Lopez , Maxim Constantijn Vos , Johan De Prins , Anne Jacqueline Gertruda Theodora Scholtes
Abstract: A method and electronic device for providing an optimal quantity of aircraft fuel. The method comprises collecting recorded flight data from past flights of an aircraft; determining aircraft specific performance correction parameters per flight phase, using the recorded flight data; collecting a flight plan of the aircraft; determining the total fuel required for the given flight plan, using the aircraft specific performance correction parameters; determining a single synthetic drag factor (ϵDFMS) and a single synthetic fuel factor (ϵFFFMS) that, when used by the aircraft FMS, yield the said total fuel required for the given flight plan; receiving an estimated total fuel required determined by the aircraft FMS based on the flight plan, the single synthetic drag factor (ϵDFMS) and the single synthetic fuel factor (ϵFFFMS). The method allows reducing the fuel weight and total flight cost, and is particularly advantageous for FMS which only admit one single drag factor and one single fuel factor.
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公开(公告)号:US20180261105A1
公开(公告)日:2018-09-13
申请号:US15915132
申请日:2018-03-08
Applicant: The Boeing Company
Inventor: David Garrido-Lopez , Maxim Constantijn Vos , Johan De Prins , Anne Jacqueline Gertruda Theodora Scholtes
Abstract: A method and electronic device for providing an optimal quantity of aircraft fuel. The method comprises collecting recorded flight data from past flights of an aircraft; determining aircraft specific performance correction parameters per flight phase, using the recorded flight data; collecting a flight plan of the aircraft; determining the total fuel required for the given flight plan, using the aircraft specific performance correction parameters; determining a single synthetic drag factor (εDFMS) and a single synthetic fuel factor (εFFFMS) that, when used by the aircraft FMS, yield the said total fuel required for the given flight plan; receiving an estimated total fuel required determined by the aircraft FMS based on the flight plan, the single synthetic drag factor (εDFMS) and the single synthetic fuel factor (εFFFMS). The method allows reducing the fuel weight and total flight cost, and is particularly advantageous for FMS which only admit one single drag factor and one single fuel factor.
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公开(公告)号:US11960385B2
公开(公告)日:2024-04-16
申请号:US17675426
申请日:2022-02-18
Applicant: The Boeing Company
Inventor: Maxim Constantijn Vos , Barend-Jan van Bruchem , Pieter van Gils , Daniel Ramiro Rebollo , Can Onur
IPC: G06F11/36 , G06F11/22 , G06F11/263
CPC classification number: G06F11/3684 , G06F11/368 , G06F11/3688
Abstract: A method for automatic generation of integrated test procedures using system test procedures includes generating a system test case for each system model of a plurality of system models. The method also includes automatically generating an integrated test harness including a group of interacting system models of the plurality of system models. An output signal from one or more of the interacting system models is an input signal to one or more other interacting system models. The method additionally includes automatically generating an integrated test case for each system model in the integrated test harness and automatically running the integrated test case using an integrated test procedure. The method further includes generating an integrated test procedure coverage report in response to running the integrated test case.
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公开(公告)号:US20220269593A1
公开(公告)日:2022-08-25
申请号:US17675426
申请日:2022-02-18
Applicant: The Boeing Company
Inventor: Maxim Constantijn Vos , Barend-Jan van Bruchem , Pieter van Gils , Daniel Ramiro Rebollo , Can Onur
IPC: G06F11/36
Abstract: A method for automatic generation of integrated test procedures using system test procedures includes generating a system test case for each system model of a plurality of system models. The method also includes automatically generating an integrated test harness including a group of interacting system models of the plurality of system models. An output signal from one or more of the interacting system models is an input signal to one or more other interacting system models. The method additionally includes automatically generating an integrated test case for each system model in the integrated test harness and automatically running the integrated test case using an integrated test procedure. The method further includes generating an integrated test procedure coverage report in response to running the integrated test case.
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公开(公告)号:US20220063831A1
公开(公告)日:2022-03-03
申请号:US17363727
申请日:2021-06-30
Applicant: The Boeing Company
Inventor: Can Onur , Pieter van Gils , Maxim Constantijn Vos , Daniel Ramiro Rebollo , Barend-Jan van Bruchem
Abstract: A method for air separation module management includes determining an amount of nitrogen-enriched-air to be supplied to each fuel tank of a plurality of fuel tanks of an aircraft. The method also includes evaluating a status and usage of each air separation module of a plurality of air separation modules onboard the aircraft. The method additionally includes determining an optimal distribution of workload among the plurality of air separation modules based on the amount of the nitrogen-enriched-air to be supplied to each fuel tank and the status and usage of each air separation module. The method further includes regulating a valve associated with each air separation module or a group of air separation modules based on the optimal distribution of workload to each air separation module.
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公开(公告)号:US12097968B2
公开(公告)日:2024-09-24
申请号:US17363727
申请日:2021-06-30
Applicant: The Boeing Company
Inventor: Can Onur , Pieter van Gils , Maxim Constantijn Vos , Daniel Ramiro Rebollo , Barend-Jan van Bruchem
CPC classification number: B64D37/32 , A62C3/08 , B01D53/00 , B01D53/30 , B01J19/14 , B01D2256/10 , B01D2257/104 , B01D2259/4575
Abstract: A method for air separation module management includes determining an amount of nitrogen-enriched-air to be supplied to each fuel tank of a plurality of fuel tanks of an aircraft. The method also includes evaluating a status and usage of each air separation module of a plurality of air separation modules onboard the aircraft. The method additionally includes determining an optimal distribution of workload among the plurality of air separation modules based on the amount of the nitrogen-enriched-air to be supplied to each fuel tank and the status and usage of each air separation module. The method further includes regulating a valve associated with each air separation module or a group of air separation modules based on the optimal distribution of workload to each air separation module.
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