The invention relates to a fire detection system for a means of transport, to a method for configuring a fire detection system, and to an aircraft comprising at least one such fire detection means.
According to requirements by aviation authorities, fire warning systems or smoke warning systems which have been, for example, developed for aviation, must be installed in all the spaces of an aircraft that are not continuously occupied. This means that when in an aircraft, for example apart from passenger cabins comprising seats there are also rest compartments for the cabin crew, the fire detection system must also monitor these spaces because rest compartments are not occupied during the entire duration of flight. As a rule, monitoring is provided by a combination of a monitoring device (also known as an electronic central fire alarm system) and sensors (fire sensors and/or smoke warning emitters) that are arranged in the spaces to be monitored. In this arrangement the sensors are connected to the monitoring device by means of connection means in the form of a supply network or the like.
Documents DE 10 2004 034 904 A1 and US 2008 0061996 A1 show smoke warning systems in which several smoke warning emitters are arranged in a cabin of an aircraft and are connected by way of data lines to a monitoring device in the form of an evaluation device.
The monitoring device, the sensors and the connection means between the sensors and the monitoring device must normally be certified for proper operation within an aircraft by the corresponding aviation authorities. This furthermore means that these installations must be subjected to a certification process.
In this connection it is important to mention that during evaluation of the criticality of systems in modern commercial aircraft, a categorisation according to the effects which possible faults can have on (flight) safety is carried out. According to their criticality, functions are classified in five different grades (A-E) extending from functions that are extremely critical to safety (grade A) to functions that are completely non-critical (grade E). Depending on the grade, a development process applies that matches the criticality and that is checked during certification of the corresponding system, with this grade also being known as the “design assurance level” (DAL). In the state of the art the above fire detection system is usually designated “DAL B”. Once a system has been certified for a particular aircraft, said system must no longer be changed because otherwise the entire approval process or certification process is to be undertaken anew.
In particular in the case of monitoring spaces in an aircraft it is clear that in the initial approval, for example of a determined fire detection system, it is impossible to anticipate all the options for dividing the cabin into various spaces, which options will be offered in the future. In the course of ongoing further development of the aircraft type, which reflects changed requirements by aircraft operators and the like, more or less drastic changes in the partitioning of the cabin can be carried out. Accordingly it is necessary, after adaptation to current specifications, for a system that was certified to undergo renewed certification.
Presently it is normal, already at the planning stage and prior to certification of the fire detection system, for each imaginable optional request by an aircraft operator to provide a plug-in contact on the monitoring device. Monitoring of each optional space is then activated by means of connecting the corresponding contact to the ground of the aircraft. Since as a result of this, optionally a multitude of sub-functions can be enabled or removed, this method is also referred to as “pin programming”. This example shows that a large number of contacts are required to meet a multitude of possible requests from aircraft operators. However, the number of contacts in a connector is limited by the connector housing which in turn is predetermined by maximum connector size. In addition, individual contacts need to be individually wired for each aircraft operator and each aircraft so that significant additional work is involved, as is significant increased aircraft weight as a result of the number of unused options which are nevertheless provided. Furthermore, it should be mentioned that in the monitoring device—provided it is programmed by way of corresponding calculation algorithms—complete software modules must already exist that are activateable by means of the above-mentioned pin programming. Consequently not only is programming of the monitoring device complex, but for example during first-time application there can, for example, be no new space without a software change. This would, however, require renewed certification taking into account a development process of category DAL B.
It is the object of the invention to provide a method for fire monitoring or smoke monitoring in a means of transport, which method can be adapted as flexibly as possible to the spaces to be integrated in the means of transport, and which during a change in the configuration to the greatest extent possible requires only simplified certification. Likewise, it is the object of the invention to propose a method for configuring a fire detection system, which method also reduces the expenditure of certification work or adaptation work. It is a further object of the invention to propose a fire detection system and a means of transport comprising at least one fire detection system with the above-mentioned advantages.
The object is met by a fire detection system comprising one or several fire sensors for detecting fire and/or smoke emission, as well as a monitoring unit, a configuration unit, at least one sensor interface for connecting the monitoring unit to the fire sensors, and at least one configuration interface for connecting the monitoring unit to the configuration module, wherein the monitoring unit is configured to transmit signals by way of the sensor interface to the fire sensors, and to receive signals from the fire sensors, wherein the configuration module comprises memory means for storing configuration data and is designed to transmit the configuration data by way of the configuration interface to the monitoring unit, and wherein the configuration data defines fire sensors that are to be used by the fire detection system. Transmitting the configuration data to the monitoring unit preferably takes place on request by the monitoring unit. However, in principle the fire detection system according to the invention is not limited to this.
A fire detection system designed according to the principle according to the invention thus as a main function or core function comprises a monitoring unit that by way of an interface can be connected to any number of sensors. It is not necessary to specify all the possible positions of fire sensors already in the monitoring unit before activating the latter by way of pin programming, which in principle is comparable to flicking a switch. All the data concerning fire sensors can be stored in the configuration module and this configuration can be transmitted to the monitoring unit, if required alternatingly, regularly and the like. In this way there is no need to provide physically present individual pin-programming lines, nor is there any binding to spaces within the means of transport, which spaces are to be specified already during the design of the monitoring unit.
Likewise this functional division makes it possible to certify and register the monitoring unit according to the applicable directives and regulations. The monitoring unit is subjected to a DAL B development process and is certified following corresponding approval. As a result of the separation of functions any changes in the configuration of the means of transport do not result in the monitoring unit having to be certified anew and accordingly also having to undergo a renewed DAL B development process. Only the configuration module that configures the monitoring unit would have to be subjected to an easier certification test (for example DAL D), so that significant savings in time and expenditure result. The discrepancy that results between the two grades DAL D and DAL B used in the example then needs to be compensated for. The DAL D development process relating to the configuration module requires a manual one-off test to validate the configuration data from the lower-level DAL D development process for higher-level DAL B. In the present case this test could, for example, be carried out in the context of the aircraft certification test, which takes place anyway.
The term “fire sensors” relates to the type of sensor that is suitable for detecting the presence of fire and/or smoke and/or strong heat emission. The fire detection system according to the invention is not limited to a single type of sensor that is only suitable for detecting a single isolated physical parameter. Fire sensors in the sense of the invention can thus comprise optical sensors for detecting flames, acoustic sensors and the like, as well as temperature sensors, smoke detectors and similar.
In an advantageous improvement of the fire detection system according to the invention the configuration module is adapted for storing a base configuration and an optional configuration. This makes it possible to already specify a basic configuration relating to each means of transport to be produced, and depending on the request from the operator of the means of transport to accommodate optional spaces and fire sensors arranged therein in an optional configuration. In this manner it is already possible to check and certify a base configuration so that only the optional configuration needs to be correspondingly checked.
In an advantageous improvement of the fire detection system according to the invention the configuration in each case comprises at least one communication address of the fire sensors. Consequently, in the case of communication between the monitoring unit and the fire sensors by way of a bus system or a network system, the use of lines with low cross sections is made possible, which lines can be used by several fire sensors jointly. For unequivocal identification of the fire sensors the respective communication addresses are necessary. With this, by means of configuration, in a simple manner both the position and the availability of the fire sensor can reliably be provided.
In a particularly advantageous fire detection system according to the invention the monitoring unit is configured to send a status request by way of the fire sensor interface to the fire sensors; furthermore, the monitoring unit is configured to receive, by way of the fire sensor interface, response signals emitted by fire sensors. In this way, in particular during initialisation of the fire detection system according to the invention, a determination can be made as to whether all the fire sensors specified in the configuration are available in that they respond to the request sent out.
It is further preferred for the monitoring unit for monitoring the availability of the fire sensors to be configured to compare the response signals from the fire sensors with all the fire sensors that are to be used and that are defined in the configuration data.
Finally, in an advantageous fire detection system according to the invention the monitoring unit is designed, when a fire has been reported by at least one fire sensor, to generate an alarm signal and to transmit it to at least one output means. In this way the actual function of the fire detection system is ensured, for a detected fire can, in the form of an alarm signal, for example in a commercial aircraft, be transmitted to an optical display unit and/or an acoustic signalling device, by means of which a pilot or some other crew member is warned.
Finally, it is preferred if the configuration module is adapted for reading the configuration data from a data carrier. Said data carrier can easily be provided outside the means of transport with the necessary configuration data and can then be placed on board of the means of transport prior to initialisation of the fire detection system according to the invention, so that down times of the means of transport can be reduced.
The object is further met by a method for configuring a fire detection system, with the method comprising the steps of: transmitting configuration data from a configuration module by way of at least one configuration interface to a monitoring unit, wherein the configuration data defines fire sensors that are to be used by the fire detection system; transmitting signals from the monitoring unit to one or several fire sensors; receiving response signals from the fire sensors by the monitoring unit; comparing the available fire sensors, determined from the response signals of the fire sensors, with the fire sensors to be used, which fire sensors are predetermined by the configuration data. By means of such a configuration of the fire detection system it can automatically be ensured that the specified data can be implemented by means of a programmed configuration module or a configuration module that comprises data. In this manner the reliable use of the fire detection system is ensured.
In an advantageous improvement of the method according to the invention for configuring a fire detection system the configuration data is divided for a base configuration and an optional configuration. Due to the advantages already mentioned above, this is particularly preferred because optional designs within the means of transport can be checked as quickly as possible.
Finally, it is preferred if the monitoring unit sends a warning signal to an output means should not all the fire sensors to be used from the configuration data be available. Consequently it is easily possible, for example by the person in charge of the means of transport, to detect that there is a problem with the fire detection system.
Further characteristics, advantages and application options of the present invention are disclosed in the following description of the exemplary embodiments and of the figures. All the described and/or illustrated characteristics per se and in any combination form the subject of the invention, even irrespective of their composition in the individual claims or of their interrelationships. Furthermore, identical or similar components in the figures have the same reference characters. The following are shown:
The fire detection system according to the invention essentially comprises a monitoring unit 52, a configuration module 54, one or several fire sensors 56, at least one fire sensor interface 58 and at least one configuration interface 60, as shown in
If reconfiguration of the fire detection system according to the invention is required, the configuration module 54, as shown in
Following updating of the configuration data, the monitoring unit 52 sends a request 74 to the configuration module 54 which communicates 76 the then current configuration data 72. Thereafter the monitoring unit 52 is in a position to prompt 78 all the fire sensors 56, by way of the fire sensor interface 58, to send feedback relating to availability as well as sending 80 a communication address. Subsequently, the monitoring unit 54 can check 82 whether found fire sensors 84 tally with all fire sensors defined in the configuration data 72 or 62 and 72 in the case of separate base configuration data and optional configuration data. Thereafter the monitoring unit 54 can continue implementing fire monitoring 86. To this effect the monitoring unit 54 regularly communicates with the installed fire sensors 56 and queries their status. If one of the fire sensors 56 detects a fire, the monitoring unit 54 is, furthermore, adapted for emitting an alarm signal 88 which, for example, can be forwarded to an optical 90 and/or acoustic output unit 92 which in the case of an aircraft is, for example, located in the cockpit.
If during a comparison 82 of the found fire sensors 84 with the fire sensors to be used, defined by the configuration data 72, it is detected that not all the fire sensors are available, a warning signal 94 can be issued to an output means 96, which warning signal 94, for example, warns the person in charge of the means of transport. As an alternative to the separate output means 96, it is also possible to use the output means 90 and 92 of the fire detection 86.
Finally,
In addition, it should be pointed out that “comprising” does not exclude other elements or steps, and “a” or “one” does not exclude a plural number. Furthermore, it should be pointed out that characteristics or steps which have been described with reference to one of the above exemplary embodiments can also be used in combination with other characteristics or steps of other exemplary embodiments described above. Reference characters in the claims are not to be interpreted as limitations.
2 Determine requirements
4 Analysis
6 Specification
8 DAL B development process
10 Software development
12 Software integration
14 Software testing
16 Install
18 Pin-programming
20 Operational readiness
22 Provide new spaces
24 Analysis
26 Basic requirements
28 Specification
30 DAL B development process
32 Software development
34 Software integration
36 Software testing
38 Install
40 Spaces to be determined anew
42 Analysis
44 Specification
46 DAL D development process
48 Install
50 Operation
52 Monitoring unit
54 Configuration module
56 Fire sensor
58 Fire sensor interface
60 Configuration interface
62 Configuration data
64 Memory means
66 Data carrier
68 Warning signal
70 Output means
72 Current configuration data
74 Request to configuration module
76 Advise current configuration data
78 Prompt feedback from fire sensors
80 Transmit feedback
82 Check
84 Fire sensors found
86 Fire monitoring
88 Alarm signal
90 Optical output unit
92 Acoustic output unit
94 Warning signal
96 Output means
98 Aircraft
Number | Date | Country | Kind |
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10 2008 039 636.2 | Aug 2008 | DE | national |
This application claims the benefit of the filing date of U.S. Provisional Patent Application No. 61/190,025, filed Aug. 25 2008 and of German Patent Application 10 2008 039 636.2, filed Aug. 25, 2008, the disclosure of which applications is hereby incorporated herein by reference.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2009/060867 | 8/24/2009 | WO | 00 | 3/7/2011 |
Number | Date | Country | |
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61190025 | Aug 2008 | US |