EP1544570A1 - Squib - Google Patents

Squib Download PDF

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Publication number
EP1544570A1
EP1544570A1 EP04029744A EP04029744A EP1544570A1 EP 1544570 A1 EP1544570 A1 EP 1544570A1 EP 04029744 A EP04029744 A EP 04029744A EP 04029744 A EP04029744 A EP 04029744A EP 1544570 A1 EP1544570 A1 EP 1544570A1
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EP
European Patent Office
Prior art keywords
squib
noise
heat generating
generating portion
zener diode
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
EP04029744A
Other languages
German (de)
French (fr)
Other versions
EP1544570B1 (en
Inventor
Junichi Nishimura
Hiromi Aida
Kazuo Matsuda
Kazutaka Saito
Etsuya Miyake
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Honda Motor Co Ltd
Original Assignee
Honda Motor Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Honda Motor Co Ltd filed Critical Honda Motor Co Ltd
Publication of EP1544570A1 publication Critical patent/EP1544570A1/en
Application granted granted Critical
Publication of EP1544570B1 publication Critical patent/EP1544570B1/en
Not-in-force legal-status Critical Current
Anticipated expiration legal-status Critical

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F42AMMUNITION; BLASTING
    • F42BEXPLOSIVE CHARGES, e.g. FOR BLASTING, FIREWORKS, AMMUNITION
    • F42B3/00Blasting cartridges, i.e. case and explosive
    • F42B3/10Initiators therefor
    • F42B3/18Safety initiators resistant to premature firing by static electricity or stray currents
    • F42B3/182Safety initiators resistant to premature firing by static electricity or stray currents having shunting means

Definitions

  • the present invention relates to a squib (i.e., an ignition apparatus) that is used in an explosive-actuated system for driving, for example, a seat belt pretensioner apparatus or an airbag apparatus for an automobile, and, in particular, to a squib that is provided with a heat generating portion capable of generating heat by means of a small amount of energy.
  • a squib i.e., an ignition apparatus
  • an explosive-actuated system for driving for example, a seat belt pretensioner apparatus or an airbag apparatus for an automobile
  • a squib that is provided with a heat generating portion capable of generating heat by means of a small amount of energy.
  • squibs are used with the aim of igniting a gas generating agent in order to operate systems inclusive of, for instance, a seat belt pretensioner apparatus and an airbag apparatus.
  • the squib is attached to an inflator that contains a gas generating agent in an explosive-actuated system.
  • the squib is structured such that a heat generating portion is attached to a header to which pins are fixed, and an explosive is inserted under pressure using a cup so as to be in contact with the heat generating portion.
  • the squib pins are electrically connected to a master control unit.
  • low energy squibs that can operate on only a tiny amount of energy have been proposed as squibs suitable for use in and for mounting on vehicle safety systems (whose number has tended to increase in recent years).
  • This type of low energy squib is constructed with the power generating portion including an energizing portion and a fuel portion, and generates heat efficiently in comparison with a normal squib. When current is supplied to the energizing portion, it causes a violent chemical reaction and a large quantity of heat is generated.
  • the zener diode is simply connected to the heat generating portion of the low energy squib, a certain period of time, i.e., a delay time is needed until the zener diode operates against the applied noise. Therefore, the zener diode does not operate effectively against momentary noise such as static electricity and, therefore, there is a possibility that the noise will intrude into the heat generating portion. This creates the problem that there is a possibility that the reliability thereof will deteriorate.
  • the present invention was conceived in view of the above circumstances, and it is an object thereof to provide a squib that enables a heat generating portion to be protected from noise even when the momentary noise is applied thereto, and that enables reliability to be increased.
  • a squib (for example, the squib 1 in a preferred embodiment) having a heat generating portion (for example, the heat generating portion 3 in the embodiment) that has an energizing portion (for example, the energizing portion 11 in the embodiment) and a fuel portion (for example, the fuel portion 12 in the embodiment), wherein the heat generating portion operates such that heat generated by supplying current to the energizing portion can be transmitted to the fuel portion, comprises: a noise removal device (for example, a two-way zener diode 15 in the embodiment) that is connected in parallel with the heat generating portion; and a circuit element (for example, the capacitor 13 in the embodiment) that temporally scatters noise to the noise removal device.
  • a noise removal device for example, a two-way zener diode 15 in the embodiment
  • a circuit element for example, the capacitor 13 in the embodiment
  • the noise even when the noise is generated due to, for example, static electricity that is generated by the momentary supply of a large amount of power, it is possible to scatter the noise over a sufficient time period by means of the circuit element. As a result, the momentary noise thus scattered can be removed by the noise removal device. Accordingly, the heat generating portion can be protected from the noise even if the momentary noise is applied thereto, and reliability can thereby be increased.
  • the squib according to the first aspect of the invention has a two-way zener diode as the noise removal device.
  • the two-way zener diode can be operated irrespective of the direction of the noise that is applied to the two-way zener diode. As a result, the reliability can be further improved.
  • the squib according to the first or second aspects of the invention has a capacitor as the circuit elementcapacitor for temporally scattering the noise.
  • the influence of the scattering on the ignition current can be reduced to a minimum.
  • the heat generating portion can be protected from noise without losing the characteristics of the low energy squib that achieves an ignition using a small amount of energy being impaired.
  • the first aspect of the present invention enables the heat generating portion to be protected from noise even if the momentary noise is applied thereto, and enables reliability to thereby be increased.
  • the second aspect of the present invention enables the two-way zener diode to be operated irrespective of the direction of the noise, thereby enabling the reliability to be further improved.
  • the third aspect of the present invention enables the influence of the scattering on the ignition current to be practically reduced to a minimum when the noise is being scattered temporally, thereby enabling the heat generating portion to be protected from noise without deteriorating the characteristics of the low energy squib that achieves an ignition using a small amount of energy being impaired.
  • FIG 1 is a vertical cross-sectional view of a squib (i.e., an ignition apparatus) according to an embodiment of the present invention
  • FIG 2 is a cross-sectional view taken along a line A-A in FIG 1.
  • a squib 1 has a capacitor 13, a two-way zener diode 15, and a heat generating portion 3, which is an igniting element, which are placed on a flat top surface of a header portion 4.
  • the header portion 4 is provided with a pin 8 and a pin 7, which are connecting terminals that are provided in order to make a connection with a two-line type of bus wire (not shown), which is an external signal wire.
  • An igniting agent 5 that ignites a gas generating agent of a supplemental restraint system is further placed on top (leftward direction in FIG. 1) of the heat generating portion 3. Note that the pin 7 and the header 4 are connected by welding.
  • the header 4 appears to be in two different locations, in actual fact, the header 4 is positioned so as to surround the pin 8 as shown in FIG 2. Moreover, the space between the pin 8 and the header 4 is filled with a insulating material 9 such as glass in order to fix the pin 8 in position.
  • the igniting agent 5, the heat generating portion 3, the capacitor 13, the zener diode 15 and the header 4 are covered by a circular cylinder shaped cap 2 whose top portion is closed off. Furthermore, the igniting agent 5, the heat generating portion 3, the header 4, and the pin 8 that are covered by the cap 2 are formed integrally by being covered by a resin mold 6 that is made to extend across the portions of the pins 8 and 7 using a molding process. Note that, in the above description, the materials used for each portion are merely examples thereof and a variety of modifications can be employed such as, for example, using a cap 2 formed from metal.
  • the heat generating portion 3 is provided with an energizing portion 11 and a fuel portion 12. If current is supplied to the energizing portion 11, it generates heat and activates the adjacent fuel portion 12. When the fuel portion 12 is activated, it generates a violent chemical reaction and a large quantity of heat is generated. By forming the heat generating portion 3 from the energizing portion 11 and the fuel portion 12 in this manner, it becomes possible to perform an ignition using less energy than in a normal squib.
  • the zener diode 15, the capacitor 13 and the heat generating portion 3 are connected in parallel with a control unit 16.
  • a control unit 16 As a result, when an ignition command signal is input into the control unit 16 via a bus 17, power that is stored in a rechargeable battery (capacitor) in the control unit 16 is supplied to the energizing portion 11.
  • the squib1 is connected to an acceleration rate sensor (not shown) that detects a frontal collision or side collision of the vehicle, and that is connected to the respective control circuits.
  • a plurality of squibs 1 are mounted at positions adjacent to propellant of inflators (i.e., gas generating apparatuses) of airbag systems that inflate in appropriate locations such as in a steering wheel, in a dashboard, in left and right seats, and in left and right side portions of a roof.
  • the pins 7 and 8 of each of the squibs 1 are connected via the common bus 17.
  • a squib 1 having the above described structure is operated in the manner described below. Firstly, when the acceleration rate sensor detects a rate of acceleration exceeding a predetermined value, a superior control unit (not shown) that operates a predetermined airbag system outputs an inflate command signal to the bus 17. When the superior control unit supplies power to the bus 17 and sends a charge command, electric power required for a supplemental restraint system to be operated is stored in the rechargeable battery (not shown) such as a capacitor which is provided in the control unit 16. The supplemental restraint system is designed to be operated in response to the ignition of the heat generating portion 3 of the squib 1 to the igniting agent 5.
  • the superior control unit sends an ignition execute signal (i.e., an ignition execute command) to the squib 1
  • the control unit 16 of the squib 1 conducts the electric power that is stored in the rechargeable battery (not shown) to the heat generating portion 3 of the squib 1, and the igniting agent 5 incorporated in the squib 1 is exploded so that the supplemental restraint system can be operated.
  • the two-way zener diode 15 and capacitor 13 are connected in parallel with the heat generating portion 3. Therefore, even when the noise is generated by the momentary supply of a large amount of power caused by static electricity or such, it is possible to temporally scatter this noise over a longer or sufficient time period using the capacitor 13. As a result, the noise thus scattered can be removed by the two-way zener diode 15. Accordingly, the heat generating portion 3 can be protected from noise even if the momentary noise is applied thereto, and reliability can thereby be increased.
  • the two-way zener diode 15 is used as the noise removing device, the two-way zener diode 15 can be operated irrespective of the direction of flow of the noise that is applied to the two-way zener diode 15. As a result, the reliability can be further improved.
  • the capacitor 13 is used as the circuit element for scattering noise, when the noise is being scattered temporally, the influence thereof on the ignition current can be reduced to a minimum. Accordingly, the heat generating portion 3 can be protected from noise without deteriorating the characteristics of the low energy squib that achieves an ignition using a small amount of energy being impaired.
  • the content of the present invention is not limited to solely the above described embodiment.
  • the capacitor 13 is placed above the header 4, however, the capacitor 13 can also be placed between the pins 7 and 8 or inside a squib connector (not shown).
  • the squib and control circuit are connected by the bus, however, it is also possible to employ a conventional connection manner in which the two are connected one to one (i.e., point to point).
  • a squib enables a heat generating portion to be protected from noise even if momentary noise is applied, thereby enabling reliability to thereby be increased.
  • the squib has a heat generating portion that has an energizing portion and a fuel portion, and that is formed such that heat that is generated by supplying current to the energizing portion can be transmitted to the fuel portion.
  • the squib includes a noise removal device that is connected in parallel with the heat generating portion, and a circuit element that temporally scatters noise in the noise removal device.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Air Bags (AREA)

Abstract

A squib (1) enables a heat generating portion (3) to be protected from noise even if momentary noise is applied, thereby enabling reliability to thereby be increased. The squib (1) has a heat generating portion (3) that has an energizing portion (11) and a fuel portion (12), and that is formed such that heat that is generated by supplying current to the energizing portion (11) can be transmitted to the fuel portion (12). The squib (1) includes a noise removal device (15) that is connected in parallel with the heat generating portion (3), and a circuit element (13) that temporally scatters noise in the noise removal device (15).

Description

    BACKGROUND OF THE INVENTION Field of the Invention
  • Priority is claimed on Japanese Patent Application No. 2003-419478, filed December 17, 2003, the contents of which are incorporated herein by reference.
  • The present invention relates to a squib (i.e., an ignition apparatus) that is used in an explosive-actuated system for driving, for example, a seat belt pretensioner apparatus or an airbag apparatus for an automobile, and, in particular, to a squib that is provided with a heat generating portion capable of generating heat by means of a small amount of energy.
  • Description of Related Art
  • In recent years squibs are used with the aim of igniting a gas generating agent in order to operate systems inclusive of, for instance, a seat belt pretensioner apparatus and an airbag apparatus. Generally, the squib is attached to an inflator that contains a gas generating agent in an explosive-actuated system. The squib is structured such that a heat generating portion is attached to a header to which pins are fixed, and an explosive is inserted under pressure using a cup so as to be in contact with the heat generating portion. The squib pins are electrically connected to a master control unit.
  • Moreover, low energy squibs that can operate on only a tiny amount of energy have been proposed as squibs suitable for use in and for mounting on vehicle safety systems (whose number has tended to increase in recent years). This type of low energy squib is constructed with the power generating portion including an energizing portion and a fuel portion, and generates heat efficiently in comparison with a normal squib. When current is supplied to the energizing portion, it causes a violent chemical reaction and a large quantity of heat is generated.
  • Because the low energy squib having this type of structure is extremely sensitive to electrical noise, the heat generating portion needs to be protected from noise. Therefore, conventionally, a two-way zener diode is connected in parallel with the heat generating portion. By employing this type of structure, excess voltage that is applied to the squib caused by the noise is made to bypass via the zener diode so as to protect the heat generating portion from the noise as described in United States Patent Nos. 5,847,309; 5,905,266; and 6,192,802.
  • However, if the zener diode is simply connected to the heat generating portion of the low energy squib, a certain period of time, i.e., a delay time is needed until the zener diode operates against the applied noise. Therefore, the zener diode does not operate effectively against momentary noise such as static electricity and, therefore, there is a possibility that the noise will intrude into the heat generating portion. This creates the problem that there is a possibility that the reliability thereof will deteriorate.
  • The present invention was conceived in view of the above circumstances, and it is an object thereof to provide a squib that enables a heat generating portion to be protected from noise even when the momentary noise is applied thereto, and that enables reliability to be increased.
  • SUMMARY OF THE INVENTION
  • With the first aspect of the present invention, a squib (for example, the squib 1 in a preferred embodiment) having a heat generating portion (for example, the heat generating portion 3 in the embodiment) that has an energizing portion (for example, the energizing portion 11 in the embodiment) and a fuel portion (for example, the fuel portion 12 in the embodiment), wherein the heat generating portion operates such that heat generated by supplying current to the energizing portion can be transmitted to the fuel portion, comprises: a noise removal device (for example, a two-way zener diode 15 in the embodiment) that is connected in parallel with the heat generating portion; and a circuit element (for example, the capacitor 13 in the embodiment) that temporally scatters noise to the noise removal device.
  • According to the present invention, even when the noise is generated due to, for example, static electricity that is generated by the momentary supply of a large amount of power, it is possible to scatter the noise over a sufficient time period by means of the circuit element. As a result, the momentary noise thus scattered can be removed by the noise removal device. Accordingly, the heat generating portion can be protected from the noise even if the momentary noise is applied thereto, and reliability can thereby be increased.
  • With the second aspect of the present invention, the squib according to the first aspect of the invention has a two-way zener diode as the noise removal device.
  • According to this aspect, the two-way zener diode can be operated irrespective of the direction of the noise that is applied to the two-way zener diode. As a result, the reliability can be further improved.
  • With the third aspect of the present invention, the squib according to the first or second aspects of the invention has a capacitor as the circuit elementcapacitor for temporally scattering the noise.
  • According to this aspect, when the noise is being scattered temporally, the influence of the scattering on the ignition current can be reduced to a minimum. As a result, the heat generating portion can be protected from noise without losing the characteristics of the low energy squib that achieves an ignition using a small amount of energy being impaired.
  • In consequence, the first aspect of the present invention enables the heat generating portion to be protected from noise even if the momentary noise is applied thereto, and enables reliability to thereby be increased.
  • The second aspect of the present invention enables the two-way zener diode to be operated irrespective of the direction of the noise, thereby enabling the reliability to be further improved.
  • The third aspect of the present invention enables the influence of the scattering on the ignition current to be practically reduced to a minimum when the noise is being scattered temporally, thereby enabling the heat generating portion to be protected from noise without deteriorating the characteristics of the low energy squib that achieves an ignition using a small amount of energy being impaired.
  • BRIEF DESCRIPTION THE DRAWINGS
  • FIG 1 is a vertical cross-sectional view of a squib according to an embodiment of the present invention.
  • FIG 2 is a cross-sectional view taken along a line A-A of the squib shown in FIG. 1.
  • FIG. 3 is a perspective view of the heat generating portion shown in FIG.1
  • FIG 4 is a circuit structure diagram of the squib shown in FIG 1.
  • DETAILED DESCRIPTION OF THE INVENTION
  • While preferred embodiments of the invention have been described and illustrated above, it should be understood that these are exemplary of the invention and are not to be considered as limiting. Additions, omissions, substitutions, and other modifications can be made without departing from the spirit or scope of the present invention. Accordingly, the invention is not to be considered as limited by the foregoing description and is only limited by the scope of the appended claims.
  • The squib according to an embodiment of the present invention will now be described in reference to drawings. FIG 1 is a vertical cross-sectional view of a squib (i.e., an ignition apparatus) according to an embodiment of the present invention, while FIG 2 is a cross-sectional view taken along a line A-A in FIG 1.
  • As is shown in FIGs 1 and 2, a squib 1 has a capacitor 13, a two-way zener diode 15, and a heat generating portion 3, which is an igniting element, which are placed on a flat top surface of a header portion 4. The header portion 4 is provided with a pin 8 and a pin 7, which are connecting terminals that are provided in order to make a connection with a two-line type of bus wire (not shown), which is an external signal wire. An igniting agent 5 that ignites a gas generating agent of a supplemental restraint system is further placed on top (leftward direction in FIG. 1) of the heat generating portion 3. Note that the pin 7 and the header 4 are connected by welding. In addition, although in the vertical cross-sectional view shown in FIG. 1, the header 4 appears to be in two different locations, in actual fact, the header 4 is positioned so as to surround the pin 8 as shown in FIG 2. Moreover, the space between the pin 8 and the header 4 is filled with a insulating material 9 such as glass in order to fix the pin 8 in position.
  • The igniting agent 5, the heat generating portion 3, the capacitor 13, the zener diode 15 and the header 4 are covered by a circular cylinder shaped cap 2 whose top portion is closed off. Furthermore, the igniting agent 5, the heat generating portion 3, the header 4, and the pin 8 that are covered by the cap 2 are formed integrally by being covered by a resin mold 6 that is made to extend across the portions of the pins 8 and 7 using a molding process. Note that, in the above description, the materials used for each portion are merely examples thereof and a variety of modifications can be employed such as, for example, using a cap 2 formed from metal.
  • As is shown in FIG 3, the heat generating portion 3 is provided with an energizing portion 11 and a fuel portion 12. If current is supplied to the energizing portion 11, it generates heat and activates the adjacent fuel portion 12. When the fuel portion 12 is activated, it generates a violent chemical reaction and a large quantity of heat is generated. By forming the heat generating portion 3 from the energizing portion 11 and the fuel portion 12 in this manner, it becomes possible to perform an ignition using less energy than in a normal squib.
  • Moreover, as is shown in FIG 4, the zener diode 15, the capacitor 13 and the heat generating portion 3 (i.e., with the energizing portion 11 and the fuel portion 12) are connected in parallel with a control unit 16. As a result, when an ignition command signal is input into the control unit 16 via a bus 17, power that is stored in a rechargeable battery (capacitor) in the control unit 16 is supplied to the energizing portion 11.
  • The squib1 is connected to an acceleration rate sensor (not shown) that detects a frontal collision or side collision of the vehicle, and that is connected to the respective control circuits. A plurality of squibs 1 are mounted at positions adjacent to propellant of inflators (i.e., gas generating apparatuses) of airbag systems that inflate in appropriate locations such as in a steering wheel, in a dashboard, in left and right seats, and in left and right side portions of a roof. The pins 7 and 8 of each of the squibs 1 are connected via the common bus 17.
  • A squib 1 having the above described structure is operated in the manner described below. Firstly, when the acceleration rate sensor detects a rate of acceleration exceeding a predetermined value, a superior control unit (not shown) that operates a predetermined airbag system outputs an inflate command signal to the bus 17. When the superior control unit supplies power to the bus 17 and sends a charge command, electric power required for a supplemental restraint system to be operated is stored in the rechargeable battery (not shown) such as a capacitor which is provided in the control unit 16. The supplemental restraint system is designed to be operated in response to the ignition of the heat generating portion 3 of the squib 1 to the igniting agent 5. In this state, if the superior control unit sends an ignition execute signal (i.e., an ignition execute command) to the squib 1, the control unit 16 of the squib 1 conducts the electric power that is stored in the rechargeable battery (not shown) to the heat generating portion 3 of the squib 1, and the igniting agent 5 incorporated in the squib 1 is exploded so that the supplemental restraint system can be operated.
  • As described above, in the present embodiment, the two-way zener diode 15 and capacitor 13 are connected in parallel with the heat generating portion 3. Therefore, even when the noise is generated by the momentary supply of a large amount of power caused by static electricity or such, it is possible to temporally scatter this noise over a longer or sufficient time period using the capacitor 13. As a result, the noise thus scattered can be removed by the two-way zener diode 15. Accordingly, the heat generating portion 3 can be protected from noise even if the momentary noise is applied thereto, and reliability can thereby be increased.
  • Furthermore, because the two-way zener diode 15 is used as the noise removing device, the two-way zener diode 15 can be operated irrespective of the direction of flow of the noise that is applied to the two-way zener diode 15. As a result, the reliability can be further improved.
  • In addition, because the capacitor 13 is used as the circuit element for scattering noise, when the noise is being scattered temporally, the influence thereof on the ignition current can be reduced to a minimum. Accordingly, the heat generating portion 3 can be protected from noise without deteriorating the characteristics of the low energy squib that achieves an ignition using a small amount of energy being impaired.
  • Note that the content of the present invention is not limited to solely the above described embodiment. For example, in the present embodiment, the capacitor 13 is placed above the header 4, however, the capacitor 13 can also be placed between the pins 7 and 8 or inside a squib connector (not shown).
  • Furthermore, in the present embodiment, the squib and control circuit are connected by the bus, however, it is also possible to employ a conventional connection manner in which the two are connected one to one (i.e., point to point).
  • A squib enables a heat generating portion to be protected from noise even if momentary noise is applied, thereby enabling reliability to thereby be increased. The squib has a heat generating portion that has an energizing portion and a fuel portion, and that is formed such that heat that is generated by supplying current to the energizing portion can be transmitted to the fuel portion. The squib includes a noise removal device that is connected in parallel with the heat generating portion, and a circuit element that temporally scatters noise in the noise removal device.

Claims (4)

  1. A squib (1) having a heat generating portion (3) which includes an energizing portion (11) and a fuel portion (12), said heat generating portion (3) enabling heat generated by supplying current to the energizing portion (11) to transmit to the fuel portion (12), comprising:
    a noise removal device (15) connected in parallel with the heat generating portion (3); and
    a circuit element (13) temporally scattering noise in the noise removal device (15).
  2. The squib according to claim 1, wherein the noise removal device is a two-way zener diode.
  3. The squib according to claim 1, wherein the circuit element is a capacitor.
  4. The squib according to claim 2, wherein the circuit element is a capacitor.
EP04029744A 2003-12-17 2004-12-15 Squib Not-in-force EP1544570B1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2003419478 2003-12-17
JP2003419478 2003-12-17

Publications (2)

Publication Number Publication Date
EP1544570A1 true EP1544570A1 (en) 2005-06-22
EP1544570B1 EP1544570B1 (en) 2007-10-17

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EP04029744A Not-in-force EP1544570B1 (en) 2003-12-17 2004-12-15 Squib

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US (1) US20050132919A1 (en)
EP (1) EP1544570B1 (en)
DE (1) DE602004009519T2 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2012087866A1 (en) * 2010-12-20 2012-06-28 Dyno Nobel Inc. Detonator ignition protection and detection circuit

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2005255032A (en) * 2004-03-12 2005-09-22 Denso Corp Occupant protection device for vehicle
DE102016204945A1 (en) * 2016-03-24 2017-09-28 Robert Bosch Gmbh Protective device for a trigger circuit for a passenger protection device for a vehicle and trigger circuit
DE102016206415A1 (en) * 2016-04-15 2017-10-19 Stabilus Gmbh Safety circuit for a rotary drive

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4967665A (en) * 1989-07-24 1990-11-06 The United States Of America As Represented By The Secretary Of The Navy RF and DC desensitized electroexplosive device
US5309841A (en) * 1991-10-08 1994-05-10 Scb Technologies, Inc. Zener diode for protection of integrated circuit explosive bridge
US5847309A (en) 1995-08-24 1998-12-08 Auburn University Radio frequency and electrostatic discharge insensitive electro-explosive devices having non-linear resistances
US5905266A (en) 1996-12-19 1999-05-18 Schlumberger Technologies, Inc. Charged particle beam system with optical microscope

Family Cites Families (24)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3610153A (en) * 1969-01-08 1971-10-05 Us Army Self-contained delay squib
US3757696A (en) * 1971-04-05 1973-09-11 Us Army Electronic squib firing sequencer
DE2314709A1 (en) * 1973-03-24 1974-09-26 Dynamit Nobel Ag ELECTRIC IGNITION DEVICE
US4306499A (en) * 1978-04-03 1981-12-22 Thiokol Corporation Electric safety squib
US4536693A (en) * 1982-09-02 1985-08-20 Ltv Aerospace And Defense Company High-speed capacitor discharge circuit suitable for the protection of detonation devices
GB2190730B (en) * 1986-05-22 1990-10-24 Detonix Close Corp Detonator firing element
JP2590344B2 (en) * 1987-10-20 1997-03-12 日本油脂株式会社 Electronic delay detonator
US4870902A (en) * 1988-03-29 1989-10-03 Cxa Ltd./ Cxa Ltee Initiating system
US4990889A (en) * 1989-05-10 1991-02-05 The United States Of America As Represented By The Secretary Of The Army Flare simulator and test circuit
US5099762A (en) * 1990-12-05 1992-03-31 Special Devices, Incorporated Electrostatic discharge immune electric initiator
US5166468A (en) * 1991-04-05 1992-11-24 Thiokol Corporation Thermocouple-triggered igniter
US5431101A (en) * 1991-04-16 1995-07-11 Thiokol Corporation Low cost hermetically sealed squib
US5648634A (en) * 1993-10-20 1997-07-15 Quantic Industries, Inc. Electrical initiator
US5440991A (en) * 1993-12-29 1995-08-15 Universal Propulsion Company, Inc. Miniature self contained firing system
US5825282A (en) * 1994-04-12 1998-10-20 Northrop Grumman Corporation Testing device for and method of testing a squib of an electro ballistic system
FR2738334A1 (en) * 1995-09-05 1997-03-07 Motorola Semiconducteurs SEMICONDUCTOR IGNITION DEVICE FOR PYROTECHNIC TRIGGERING AND METHOD FOR FORMING SUCH A DEVICE
US5672841A (en) * 1995-12-15 1997-09-30 Morton International, Inc. Inflator initiator with zener diode electrostatic discharge protection
US5725242A (en) * 1996-02-09 1998-03-10 Siemens Automotive Corporation Airbag squib with silicon circuit and energy storage
US5722687A (en) * 1996-02-09 1998-03-03 Siemens Automotive Corporation Airbags squib with temperature bias
US5760489A (en) * 1996-10-04 1998-06-02 Motorola, Inc. Method for transmitting signals between a microprocessor and an interface circuit
US6164208A (en) * 1998-07-14 2000-12-26 Chung Shan Institute Of Science & Technology Igniter for vehicle airbag inflator
DE19846350A1 (en) * 1998-10-08 2000-04-13 Philips Corp Intellectual Pty Control device for predetermined function, especially data protection against unauthorized access, has at least one transmission device with associated serial data bus and at least one receiver
FR2790077B1 (en) * 1999-02-18 2001-12-28 Livbag Snc ELECTRO-PYROTECHNIC IGNITER WITH INTEGRATED ELECTRONICS
US6943555B2 (en) * 2002-05-23 2005-09-13 Lockheed Martin Corporation Redundant safety circuit for squib testing

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4967665A (en) * 1989-07-24 1990-11-06 The United States Of America As Represented By The Secretary Of The Navy RF and DC desensitized electroexplosive device
US5309841A (en) * 1991-10-08 1994-05-10 Scb Technologies, Inc. Zener diode for protection of integrated circuit explosive bridge
US5847309A (en) 1995-08-24 1998-12-08 Auburn University Radio frequency and electrostatic discharge insensitive electro-explosive devices having non-linear resistances
US6192802B1 (en) 1995-08-24 2001-02-27 Auburn University Radio frequency and electrostatic discharge insensitive electro-explosive devices
US5905266A (en) 1996-12-19 1999-05-18 Schlumberger Technologies, Inc. Charged particle beam system with optical microscope

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2012087866A1 (en) * 2010-12-20 2012-06-28 Dyno Nobel Inc. Detonator ignition protection and detection circuit
US9243877B2 (en) 2010-12-20 2016-01-26 Dyno Nobel Inc. Detonator ignition protection and detection circuit

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EP1544570B1 (en) 2007-10-17
DE602004009519D1 (en) 2007-11-29
US20050132919A1 (en) 2005-06-23

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