The invention relates to a safety device comprising a connection point for a pressure accumulator that is connected to a bursting device at the gas side via the connection point.
Such safety devices are state of the art. In systems, in which gaseous working media are used, safety devices of this type are employed to obtain a safe, i.e. not environmentally hazardous pressure reduction in the event of a problem. In particular in the case of systems which contain pressure accumulators, which during operation produce high gas pressures that can be 100 bar or higher, it is necessary to ensure that, when there are pressure increases exceeding a safe limit value, of the kind produced by operation interruptions due to malfunction of system components or due to temperature increases, for example in the case of a fire, a safe pressure reduction takes place through activation of the bursting device.
Given this prior art, the problem addressed by the invention is to provide a safety device which ensures a particularly safe activation of the bursting device assigned to a pressure accumulator.
According to the invention, this problem is solved by means of a safety device having the features of claim 1 in its entirety.
Because, according to the characterizing part of claim 1, the bursting device can be triggered by means of an actuatable force element, by contrast with the prior art where the bursting device is activated simply when an excess pressure exceeding a given value is reached, a triggering can occur in the case of a problem or in a hazardous situation without excess pressure prevailing or even before the excess pressure is reached. This makes it possible to react to hazardous situations, for example in the case of a fire, with a pressure reduction before a dangerous excess pressure is reached due to heating in the case of a fire. The invention is thus particularly advantageously suitable for applications in mobile systems in which pressure accumulators are present, such as in vehicles which are provided with an energy recovery device in conjunction with a hydrostatic travel drive. Such systems comprise at least one pressure accumulator which can be charged to a high pressure level for storage of braking energy, in this regard refer to document DE 10 2008 062 836 B3 for example, which presents such a drive system for utility vehicles or other vehicles which can be deployed on roads. The safety device according to the invention used in such vehicles permits a non-hazardous, preventive pressure reduction in the case of problems, for example a vehicle crash or the like.
In advantageous exemplary embodiments, the bursting device has a bursting disk which is triggered when a maximum gas-side pressure is exceeded and/or when the force element is actuated. Because the breakage of the bursting disk makes the pressure reduction take place in the case of excess pressure even without activation of the force element, the invention satisfies particularly high safety requirements.
A pyrotechnic object can particularly advantageously be provided as the force element which, when the propellant is ignited, deforms or destroys a wall section of a housing in such a way that the bursting device accommodated therein is triggered, or which destroys the bursting disk of the bursting device by means of an activation pin. While in the former case the shock wave released by ignition of the propellant itself leads to the destruction of the bursting disk, in the latter case the breakage of the bursting disk takes place by the mechanical action of a mechanical part moved by the explosion pressure of the ignited propellant.
The actuation of the force element can be coupled to a sensor system, in particular to the sensor system of an airbag, which also activates the force element when the airbag is triggered. This has the advantage that for the detection of an accident, which calls for a safe pressure discharge, there is no need for the force element to have its own sensor system.
The arrangement can advantageously be such that the bursting disk of the bursting device is fixed in a pressure-conveying channel in the housing and seals this channel in a pressure-tight manner, which channel leads to the gas side of the pressure accumulator and opens into the environment. By means of pressure from the bursting disk, a direct connection is thus formed between the gas side of the pressure accumulator and the environment.
The bursting disk can particularly advantageously lie inside the channel in the same plane as the direction of action of the pyrotechnic force element, with the wall section of the housing which can be destroyed or deformed by means of the propellant extending transverse to this plane.
In particularly advantageous exemplary embodiments, the force element carries, encapsulated on its front face side, the pyrotechnic propellant to be electrically ignited, which is connected to the wall section, on which the bursting device is at least partially laid. In this arrangement the wall section is directly exposed to the pressure shock wave produced by the propellant.
In a particularly advantageous manner, the housing can also form the support for functional elements belonging to a corresponding pressure accumulator to be rendered safe, such as a pressure sensor, a temperature sensor, a safety fuse device, a filling connection for pressurized gas and/or a test connection for a testing device. A safety fuse device, which realizes a temperature-dependent pressure release even without activation of the force element, provides an additional safety feature.
In advantageous exemplary embodiments, all of the functional elements used in the housing, including the bursting device, are connected to a common channel system, which is connected in a pressure-conveying manner to the gas side of the pressure accumulator. The overall assembly can thus be realized in the form of a compact unit.
The pressure accumulator to be rendered safe can be a piston accumulator, which is part of an energy recovery system in a motor vehicle and which, on its accumulator housing side with the pressurized gas, carries the block-like housing with its own functional elements.
The invention is explained in detail below with reference to an exemplary embodiment depicted in the drawings, in which:
At the point of the branch of the first channel 33 from the pressure connection an additional fourth channel 53 extending parallel to the third channel 43 branches off, which forms the connection of the bursting device 55 according to the invention to the pressure connection.
For the triggering of the bursting disk 61 of the bursting device 55 realized by means of an actuatable force element the present exemplary embodiment provides a pyrotechnic device having a cartridge 73, which contains an electrically ignitable propellant 75. This propellant is encapsulated in the cartridge 73 in such a way that, when the propellant 75 is ignited, an explosion pressure wave is discharged starting from the top side of the cartridge 77 with a direction of action along the cartridge longitudinal axis 79. For the electric ignition the cartridge 73 has, at the end 81 opposite the top side 77, contact pins 83 with connecting lugs 85 for ignition lines. As
As
While the depicted exemplary embodiment uses the direct action of the explosion pressure wave of a pyrotechnic cartridge 73 to trigger the bursting device 55, it goes without saying that the breakage of the bursting disk 61 can be brought about by mechanical action of a mechanical force element. For example, instead of a pyrotechnic device generating an explosion pressure wave a pyrotechnic element can be provided which, when ignited, provides the drive for a mobile pin (not depicted), which destroys the bursting disk by means of mechanical action. At the same time, with the depicted direct use of the explosion pressure wave, the safety device can be realized with a simple construction at little expense.
Number | Date | Country | Kind |
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10 2015 014 797.8 | Nov 2015 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2016/001605 | 9/27/2016 | WO | 00 |