AP743A - Continuous input cell for data acquisition circuits. - Google Patents
Continuous input cell for data acquisition circuits. Download PDFInfo
- Publication number
- AP743A AP743A APAP/P/1997/001070A AP9701070A AP743A AP 743 A AP743 A AP 743A AP 9701070 A AP9701070 A AP 9701070A AP 743 A AP743 A AP 743A
- Authority
- AP
- ARIPO
- Prior art keywords
- optocouplers
- diode
- parallel
- optocoupler
- lines
- Prior art date
Links
- 238000012545 processing Methods 0.000 description 16
- 230000015556 catabolic process Effects 0.000 description 7
- 238000002955 isolation Methods 0.000 description 3
- 230000003071 parasitic effect Effects 0.000 description 3
- 238000001514 detection method Methods 0.000 description 2
- 101150022121 TRZ1 gene Proteins 0.000 description 1
- 230000000295 complement effect Effects 0.000 description 1
- 239000000470 constituent Substances 0.000 description 1
- 230000007547 defect Effects 0.000 description 1
- 238000010586 diagram Methods 0.000 description 1
- 230000000694 effects Effects 0.000 description 1
- 238000012423 maintenance Methods 0.000 description 1
- 230000007257 malfunction Effects 0.000 description 1
- 230000035484 reaction time Effects 0.000 description 1
- 230000035945 sensitivity Effects 0.000 description 1
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B61—RAILWAYS
- B61L—GUIDING RAILWAY TRAFFIC; ENSURING THE SAFETY OF RAILWAY TRAFFIC
- B61L1/00—Devices along the route controlled by interaction with the vehicle or train
- B61L1/20—Safety arrangements for preventing or indicating malfunction of the device, e.g. by leakage current, by lightning
-
- G—PHYSICS
- G08—SIGNALLING
- G08B—SIGNALLING OR CALLING SYSTEMS; ORDER TELEGRAPHS; ALARM SYSTEMS
- G08B29/00—Checking or monitoring of signalling or alarm systems; Prevention or correction of operating errors, e.g. preventing unauthorised operation
- G08B29/16—Security signalling or alarm systems, e.g. redundant systems
-
- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03K—PULSE TECHNIQUE
- H03K19/00—Logic circuits, i.e. having at least two inputs acting on one output; Inverting circuits
- H03K19/007—Fail-safe circuits
Landscapes
- Engineering & Computer Science (AREA)
- Computer Security & Cryptography (AREA)
- Physics & Mathematics (AREA)
- Automation & Control Theory (AREA)
- Mechanical Engineering (AREA)
- Computer Hardware Design (AREA)
- General Physics & Mathematics (AREA)
- Computing Systems (AREA)
- General Engineering & Computer Science (AREA)
- Mathematical Physics (AREA)
- Electronic Switches (AREA)
- Measurement Of Current Or Voltage (AREA)
- Train Traffic Observation, Control, And Security (AREA)
Abstract
A continuous input cell for data acquisition circuits, particulary in railway aplications lines of identical elements, and each line includes at least one Zener diode (DZ1 or DZ2-). a an optocoupler (Ul or U2). and an optocoupler (U3 or U4) including an LED.
Description
D£ INPUT CELL INTENDED FOR DATA ACQUISITION CIRCUITS .
Subject of the invention.
The present invention relates essentially to a
DC input cell intended for data acquisition circuits, more particularly in railway applications.
Technical background.
Currently, DC input cells intended for data acquisition circuits essentially consist of mechanical safety relays which are connected together by simple cabling.
Objects of the invention.
The present invention aims to provide a cell for DC inputs intended for data acquisition circuits, C-r particularly in railway applications, which has at least equivalent behaviour in terms of safety to that (l of the prior art, while keeping inherent advantages of compactness, easier maintenance and fitting as well as greater longevity.
•’Ti*·'
0 More particularly, the present invention aims to provide a cell in which misreading always errs on the side of safety. ·*·
The present invention also aims to detect malfunctions which may occur in the various constituent elements of the cell.
The present invention furthermore aims to minimize the influence of a variation in the characteristics of the components which are used, under the effect of an external factor such as a rise in temperature, for example.
Principle characteristics of the present invention.
The present invention relates essentially to a DC input cell intended for data acquisition circuits, particularly in railway applications, consisting of electronic components and comprising at least two lines of identical elements. Each line is essentially composed of a Zener diode, a switch, preferably produced by an optocoupler, and a second optocoupler comprising an LED diode.
AP . Ο Ο 7 * 5
- 2 — The voltage thresholding is carried out by 'comparing the input voltage with the reference voltage of the Zener diode, while the DC isolation is provided by the optocouplers .
According to a first embodiment, the two optocouplers comprising the LED diode are arranged in parallel so that data is exchanged between the two lines so as to check the integrity of the system.
According to another preferred embodiment, the 10 two optocouplers are arranged in series head-to-tail, each of them being arranged in parallel with a diode, the two diodes being reverse-biased with respect to the corresponding optocoupler in order to allow current to flow when the corresponding optocoupler is not conducting.
According to a further preferred embodiment, each diode in parallel with an optocoupler comprising the LED diode is replaced by a first resistor, the two first resistors present in each of the lines being strictly identical.
According to a further preferred embodiment, a second Zener diode is provided in each line, where it is arranged in parallel with the first Zener diode followed by the optocoupler fulfilling the function of a switch.
This second Zener diode has the purpose of preventing the reverse voltage of one of the LED diodes of the optocouplers from reaching its minimum breakdown voltage .
According to a further preferred embodiment, a second resistor is placed in series with the optocoupler comprising the LED diode and in parallel with the first resistor, the two second resistors present in each of the lines being also strictly identical.
According to a further preferred embodiment, one of the two lines has a buffer stage with transistor which makes it possible to invert the level of the
Ah/h/
AP. ΰ Ο 7 4 3
- 3 output impedances, in order t-o allow the detection of a 'divergence between the various processing lines in the event that the outputs of the plurality of identical cells are set in parallel by parasitic elements. In this case, this configuration makes it possible to detect a divergence in the event that the various cells are in different states.
Brief description of the figures 10 The present invention will be described in more detail with the aid of the following figures:
Figures 1, 2, 3 and 4 represent outline diagrams which show the essential elements constituting a device according to the present invention.
Figure 5 represents one embodiment of
AP/P/ 97/01070 the device according to the present invention implemented by applying the principles
des-cribec | [ in Figures 1 | to 4 . | |||
Figures | 6 and 8 | represent | sequences of | switch | |
commands | and readout | in an | |||
illustrative embodiment | of the | ||||
25 | software | scanning the | device | ||
according invention. | to the | present | |||
Figures | 7 and 9 | represent | the sample | proces- | |
sing flowcharts for the | |||||
30 | sequences | respectively | given | ||
in Figures | 6 and 8. |
Description of a preferred embodiment of the present invention
In order to understand the 'principles underlying the design of the device according to the present invention, reference will be made essentially
AP . ΰ ύ 7 4 3
- 4 to Figures 1, 2, 3 and 4 which incorporate the principle characteristic elements.
The device according to the present invention, commonly referred to as a DC input cell, as represented in Figure 1 essentially consists of two parallel lines of identical elements arranged in series.
The first line, referred to as line A, comprises a Zener diode DZ1, a switch SW1 which is 10 preferably an optocoupler, a second optocoupler U3 comprising an LED diode as well as a resistor R18, while the second line, referred to as line B, comprises a Zener diode DZ2, a switch SW2 which is preferably an optocoupler, a second optocoupler U3 comprising an LED f* 15 diode as well as a resistor R2.
According to this configuration, it is the Zener diodes DZ1 or DZ2 which make it possible to determine the reference threshold. The main drawback of this device resides in the fact that the consumption 20 guaranteed at the threshold depends strongly on the sensitivity of the optocouplers U3 and U4 .
This is the reason why it is proposed to split the lines of elements. According to the particular configuration presented in Figure 1, the two optocouplers U3 and U4 are arranged in parallel, so that there is a continuous exchange of data between the two lines so as to check the integrity of the system.
According to another embodiment, which is more particularly represented in Figure 2, the two 30 optocouplers are no longer arranged in parallel, but are arranged head-to-tail. In this case, it is clear that it was necessary to arrange a diode in parallel on each of the optocouplers U3 and U4. More particularly, a diode DI is arranged in parallel with the optocoupler 35 U3, while a diode D2 is in parallel with the optocoupler U4 . It is again clear that the two diodes are in opposite directions.
u z lo /α/αν
AP. Ο Ο 7 4 3
- 5 According to another further preferred 'embodiment, the diodes Dl and D2 have been replaced byresistors .
To explain this, in the case of a scheme 5 including diodes, it should be noted that there is a lack of current threshold for the emission of the LED diode. Although the diode does indeed have a dark current, this remains unusable.'
As represented. in Figure 3, by proposing to 10 remove the diodes Dl and D2 as represented in Figure 2 and replacing them by strictly identical first resistors R5 and R12, a guarantee is obtained of minimum current consumption at the threshold for a minimum voltage of IV across the terminals of the LEDs of U3 and U4 when the latter switch. This means that, in order for a diode to emit, the voltage needs to reach the IV threshold, and the current will flow through the resistor of the opposite line. In this way, there will not be an abnormally high voltage.
0 The first resistors R5 and R12 therefore have the task of guaranteeing a minimum current consumption at the threshold.
Another improvement consists in providing the addition of Zener diodes DZ3 and DZ4 in parallel, on the one hand with the Zener diode DZ1 and the switch SW1, and on the other hand with the diode DZ2 and the switch SW2. To explain this, it should be noted that the guarantee of a minimum consumption is based on the presence of the resistors R5 and R12, and that
0 increasing the value of one of the two resistors leads to an increase in the voltage threshold of the cell. A total break of one of the resistors R5 or R12 is normally detected by the fact that the corresponding optocoupler U3 or U4 cannot be turned on.
Nevertheless, in the event that ' the input voltage exceeds a certain threshold, which corresponds to the minimum breakdown voltage of the LED of the optocoupler U3 or U4, it is possible to see operation
AP/P/ 9 7 / 0 1 0 70
AP . Ο Ο 7 4 3
- 6 as-being correct in the event that the LED of the optocoupler driven in reverse starts to conduct through breakdown.
The role of the Zener diodes DZ3 and DZ4 is 5 therefore to prevent the reverse voltage on one of the LEDs of the optocouplers U3 and U4 from reaching the minimum breakdown voltage of the LEDs of the optocouplers. The presence and the value of the Zener diodes DZ3 and DZ4 are .monitored by the optocouplers U3 and U4 during the scanning phases when SW2 and SW1 are both in the open state.
Another improvement, represented in Figure 4, consists in providing in each of the lines A and B the presence of a second resistor in series with each of the optocouplers U3 and U4 comprising the LED diode, it being understood that these second resistors R21 and R25 are in parallel with the first resistors R5 and R12. Again, the second resistors R21 and R25 are strictly identical. The presence of these, second resistors makes it possible to ensure that the reverse voltage which may arise across the terminals of the LED is always less than its breakdown voltage. This is because, if the resistor R12 breaks, the operation of the detection branch could be seen as normal by the processing lines if the LED of U2 enters a breakdown region (in practice, the reverse voltages which the LEDs of optocouplers can withstand are very small and rarely exceed a few volts).
Providing the presence of the second resistors
0 R21 and R2 5 for the maximum input voltage, the reverse voltage which can arise across the terminals of the LED is always certain to be less than its breakdown voltage.
Figure 5 represents a device according to the invention which puts into practice the principles described in the preceding figures.
The device described in Figure 5 essentially consists of two functional units arranged in cascade.
ϋ L 0 10 / L 6 /d/dV
AP.00743
- 7 Unit 1 provides the minimum protection against the overvoltages and essentially consists of a resistor R3 which limits the amplitude of the current peaks of possible discharges in VR1, and the transzorb TRZ1 which clips the overvoltages occurring during possible discharges .
The second unit (Unit II) essentially fulfils the functions of voltage thresholding the cell and· DC isolation between the input and the outputs of the processing lines as explained above.
According to the configuration represented in Figure 5, the switches SWl and SW2 described in the preceding figures are, in this case, optocouplers Ul and U2, while the resistors R18 and R2 have been replaced by injectors II and 12. The injector II is produced using the elements R17, Q6, Q5 , DZ4 and R18, while the injector 12 consis’ts of the elements R19, Q1, Q2, DZ3 and R2.
The Zener diode DZ1, the optocoupler U3 and the current injector II constitute the first reference threshold, while the second reference threshold is produced by the Zener diode DZ2, the optocoupler U4 and the current injector 12.
The optocouplers are programmed in such a way that, on each scan cycle of the DC input, the processing lines collaborate to drive Ul and U2 in the following sequence :
AP/P/ 9 7 / 0 1 0 70
Ul | U2 | |
Step 1 | ON | OFF |
Step 2 | OFF | ON |
Step 3 | ON | ON |
Step 4 | OFF | OFF |
At the end of the scan cycle, one of the two optocouplers Ul or U2 is alternately left on.
AP.00743
- 8 “ At each step of' the scanning cycle, the 'processing lines scan the logic state on the output collector of U3 and U4 .
The decisions regarding the state of operation 5 of the cell and on the logic state of the input voltage are taken as illustrated by the following tables: Case 1
U3 | U4 | |
Step 1 | OFF | OFF |
Step 2 | OFF | OFF |
Step 3 | OFF | OFF |
Step 4 | OFF | OFF |
The input is in the 0 logic state.
Case 2
U3 | U4 | |
Step 1 | ON | OFF |
Step 2 | OFF | ON |
Step 3 | OFF | OFF |
Step 4 | OFF | OFF |
ΔΡ/Ρ/ 9 7 / A 1 Π 7 n
The input is in the 1 logic state.
In practice, the software proceeds as follows:
once per cycle, the processors scan the inputs for 20 ms. They take 32 samples spaced by 625 ps. Outside this scanning phase, one of the switches is kept closed and the other open, in order to ensure permanent consumption. The position of the switches alternates at each cycle, and each line is on in turn.
According to a preferred embodiment, two separate scanning sequences are provided, where in each cycle, the processing lines change scanning sequence. Each scanning sequence is split into two phases: the first lasts 15 ms and the second 5 ms. The following notation is used:
AP. ΰ 0 7 4 3 | |||||
P = | number | of | - 9 - samples read 'in | the high state | at the |
- | output | cf | the optocoupler | of line A (Ul) | during |
the 15 | ms | phase,· | |||
Ν = | number | of | samples read in | the high state | at the |
output | of | the optocoupler | of line B (U2) | during | |
the 15 | ms | phase; | |||
P' = | number | of | samples read in | the high state | at the |
output | of | the optocoupler | of line A (Ul) | during |
the 5 ms phase;
N' = . number of | samples read in | the high | state | at the |
output of | the optocoupler | of line B | (U2) | during |
the 5 ms phase ,Secruence 1
Figure 6 shows the commands applied to the two switches as well as the readouts at the output of the corresponding optocoupler. When the command is in the high state, the switch is closed. If the readout is in the low state, the optocoupler is on.
0 For each phase, Figure 6 gives the number of samples in the high state which the processing lines read.
Figure 7 represents the flowchart of the processing of the samples for sequence 1, in which, during the 15 ms phase, only line A is on. If the input voltage is greater than the threshold, then the optocoupler Ul associated with line A should be on throughout this phase. This gives P = 0 and N = 24.
During the 5 ms phase, the two switches are closed simultaneously. The optocouplers cannot conduct. In this case, P' = Ν' = 8.
After each 20 ms scanning sequence, and on the basis of the number of samples in the high state which are counted by the microprocessor, the variables VALUE and STATUS are re-updated. The variable VALUE indicates whether the. voltage applied to the cell is less than or greater than the threshold:
AP/P/ 9 7 / 0 1 0 7 0
AP.00743
- 10 — f VALUE = 0 —> Uih < U threshold ί VALUE = 1 -> Uir_ > U threshold
The variable STATUS is an indicator-of correct operation of the input cell;
(STATUS = 0 —> fault detected
(.STATUS = 1 —> the cell is functioning correctly
The binary variable which the software takes into account for the rest of the processing is VALUE * STATUS. The input cannot therefore ever be included in the event of a fault.
The sign ? indicates that the variable is not modified.
As shown by Figure 7, certain discrepancies from the ideal number of samples are tolerated. These tolerances are essential to guarantee correct operation of the cell while taking account of the reaction times of the. components (optocouplers, transistors, etc.) when a switch command changes.
Sequence 2
Sequence 2, as represented in Figure 8, is the complement of Sequence 1. During the first 15 milliseconds, only line B is driven. During the last 5 milliseconds, the two lines are cut.
0 Figure 9 represents the flowchart of the processing of the samples.
In order for the software to consider the input voltage to be greater than the threshold voltage, it is necessary that, during 4 successive scans (Sequence 1,
5 Sequence 2, Sequence 1, Sequence 2), the result of the processing gives
VALUE * STATUS = 1.
AP . υ Ο 7 4 3 which is essential optocouplers is that of producing an OR'1 state of the inputs)
- 11 The use of scanning sequences of this type makes it possible to guarantee that the cell is insensitive to any 50 Hz AC voltage.
The principle selection criterion for ^the two optocouplers Ul and U2 fulfilling the function of switches is that of operating with the lowest possible LED current, which makes it possible to guarantee correct operation in switching. The other criterion for the selection of the of obtaining minimum isolation between the input and the output.
The useful signals at the output of the cell are naturally presented on the collectors of the output optocouplers with a high output impedance level for the 1 electrical state and a low impedance level for the 0 electrical state. This characteristic has the risk logic function (as regards the for the two processing lines in the event of defects consisting in the occurrence of a short-circuit between the output signals of the various cells. One precaution consists in using, just for the processing line A as represented in Figure 4, a buffer stage with transistor inverting the level of the output impedances so that there is this time a low impedance level for the 1 electrical state and a high impedance level for the 0 electrical state. This stage consists of the following elements: R9, Q3, R10 and Q4.
By thus creating an asymmetry between the two lines A and B, in the event of multiple parasitic conducting circuits occurring, possibly affecting the same cells for the two processing lines, the following behaviour is profited from: the equivalent of a wired OR function (at the electrical level) is produced on the cells of line A, while the equivalent of a wired AND (at the electrical level) is produced on the cells of line B.
This leads to a divergence between processing lines being detected as soon as the two cells affected
AP/P/ 97/01 070
AP.00743
- 12 by the parasitic conducting circuits are in different states.
Claims (7)
- CLAIMS identical elements, at least one Zener1· DC input cell intended for data acquisition circuits, particularly in railway applications, comprising two parallel lines of each line of elements comprising diode (DZ1 or DZ2) , a switch (SW1 or SW2) , preferably consisting of an optocoupler (U1 or U2) and optionally a resistive element (R2 or R18 5 , characterized in that the two lines are connected by two optocouplers (U3 or U4) each comprising an LED diode.
- 2. Cell according to Claim 1, characterized in (U3 and U4) comprising the in parallel in opposite that the two optocouplers LED diode are arranged directions .
- 3. Cell according to Claim 1, characterized in that the two optocouplers (U3 and U4) comprising the LED diode are arranged in series in opposite directions, each of the two optocouplers (U3 and U4)20 being arranged in parallel with a diode (DI or D2).
- 4. Cell according to Claim 1, characterized in that the two optocouplers (U3 and U4) comprising the LED diode are arranged in series head-to-tail, each of the LEDs of the two optocouplers (U3 and U4) being25 arranged in parallel with a first resistor (R5 or R12).
- 5. Cell according to Claim 4, characterized in that a second resistor (R21 or R25) is arranged in series with each of the optocouplers (U3 or U4) comprising the LED, these second resistors being in30 parallel with the first resistors (R5 or R12).
- 6. Cell according to any one of Claims 1 to 4, characterized in that a second Zener diode (DZ3 or DZ4) is present in each of the lines in parallel with the Zener diode (DZl or DZ2) followed by the switch (SW1 or35 SW2) .
- 7. Cell according to any one of the preceding claims, characterized in that, on just one of the lines (A) it comprises a buffer stage with transistor (R9,
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP95870038 | 1995-04-19 | ||
PCT/BE1996/000041 WO1996033087A1 (en) | 1995-04-19 | 1996-04-12 | Continuous input cell for data acquisition circuits |
Publications (2)
Publication Number | Publication Date |
---|---|
AP9701070A0 AP9701070A0 (en) | 1997-10-31 |
AP743A true AP743A (en) | 1999-04-26 |
Family
ID=8222127
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
APAP/P/1997/001070A AP743A (en) | 1995-04-19 | 1996-04-12 | Continuous input cell for data acquisition circuits. |
Country Status (21)
Country | Link |
---|---|
US (1) | US6043501A (en) |
EP (1) | EP0822908B1 (en) |
JP (1) | JPH11504588A (en) |
KR (1) | KR100385846B1 (en) |
CN (1) | CN1182392A (en) |
AP (1) | AP743A (en) |
AT (1) | ATE189431T1 (en) |
AU (1) | AU709978B2 (en) |
CA (1) | CA2218525A1 (en) |
CZ (1) | CZ292986B6 (en) |
DE (1) | DE69606528T2 (en) |
DK (1) | DK0822908T3 (en) |
EA (1) | EA000205B1 (en) |
ES (1) | ES2142575T3 (en) |
GR (1) | GR3033057T3 (en) |
HU (1) | HUP9802638A3 (en) |
OA (1) | OA10526A (en) |
PL (1) | PL180311B1 (en) |
PT (1) | PT822908E (en) |
SK (1) | SK284293B6 (en) |
WO (1) | WO1996033087A1 (en) |
Families Citing this family (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6650064B2 (en) * | 2000-09-29 | 2003-11-18 | Aerospace Optics, Inc. | Fault tolerant led display design |
ATE445308T1 (en) * | 2005-12-14 | 2009-10-15 | Koninkl Philips Electronics Nv | CIRCUIT ARRANGEMENT FOR MODULATING AN LED AND OPERATING METHOD THEREFOR |
US7906915B2 (en) * | 2008-04-19 | 2011-03-15 | Aerospace Optics, Inc. | Enhanced trim resolution voltage-controlled dimming LED driving circuit |
CN107733422A (en) * | 2017-10-13 | 2018-02-23 | 上海剑桥科技股份有限公司 | Diode circuit with self-healing function |
CN109756115B (en) | 2018-12-21 | 2021-12-03 | 华为数字技术(苏州)有限公司 | Boost power conversion circuit, method, inverter, device and system |
Family Cites Families (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4247790A (en) * | 1976-01-22 | 1981-01-27 | Westinghouse Electric Corp. | Failsafe train vehicle control signal threshold detector apparatus |
US4091292A (en) * | 1977-03-07 | 1978-05-23 | General Signal Corporation | Fail-safe monitor of d.c. voltage |
-
1996
- 1996-04-12 CN CN96193383A patent/CN1182392A/en active Pending
- 1996-04-12 PL PL96323040A patent/PL180311B1/en unknown
- 1996-04-12 WO PCT/BE1996/000041 patent/WO1996033087A1/en active IP Right Grant
- 1996-04-12 AP APAP/P/1997/001070A patent/AP743A/en active
- 1996-04-12 AU AU52627/96A patent/AU709978B2/en not_active Expired
- 1996-04-12 ES ES96908938T patent/ES2142575T3/en not_active Expired - Lifetime
- 1996-04-12 CZ CZ19973221A patent/CZ292986B6/en not_active IP Right Cessation
- 1996-04-12 HU HU9802638A patent/HUP9802638A3/en unknown
- 1996-04-12 KR KR1019970707289A patent/KR100385846B1/en not_active IP Right Cessation
- 1996-04-12 EA EA199700236A patent/EA000205B1/en not_active IP Right Cessation
- 1996-04-12 EP EP96908938A patent/EP0822908B1/en not_active Expired - Lifetime
- 1996-04-12 AT AT96908938T patent/ATE189431T1/en active
- 1996-04-12 DK DK96908938T patent/DK0822908T3/en active
- 1996-04-12 CA CA002218525A patent/CA2218525A1/en not_active Abandoned
- 1996-04-12 JP JP8531362A patent/JPH11504588A/en active Pending
- 1996-04-12 DE DE69606528T patent/DE69606528T2/en not_active Expired - Lifetime
- 1996-04-12 PT PT96908938T patent/PT822908E/en unknown
- 1996-04-12 US US08/952,151 patent/US6043501A/en not_active Expired - Fee Related
- 1996-04-12 SK SK1423-97A patent/SK284293B6/en not_active IP Right Cessation
-
1997
- 1997-10-17 OA OA70109A patent/OA10526A/en unknown
-
2000
- 2000-03-24 GR GR20000400745T patent/GR3033057T3/en unknown
Non-Patent Citations (1)
Title |
---|
NONE * |
Also Published As
Publication number | Publication date |
---|---|
CZ292986B6 (en) | 2004-01-14 |
PL180311B1 (en) | 2001-01-31 |
ES2142575T3 (en) | 2000-04-16 |
EA000205B1 (en) | 1998-12-24 |
HUP9802638A3 (en) | 1999-08-30 |
WO1996033087A1 (en) | 1996-10-24 |
DE69606528D1 (en) | 2000-03-09 |
HUP9802638A2 (en) | 1999-03-29 |
CN1182392A (en) | 1998-05-20 |
PT822908E (en) | 2000-07-31 |
CZ322197A3 (en) | 1998-01-14 |
KR19980703888A (en) | 1998-12-05 |
KR100385846B1 (en) | 2003-08-27 |
DE69606528T2 (en) | 2000-07-27 |
PL323040A1 (en) | 1998-03-02 |
US6043501A (en) | 2000-03-28 |
AP9701070A0 (en) | 1997-10-31 |
DK0822908T3 (en) | 2000-07-24 |
SK142397A3 (en) | 1998-06-03 |
AU709978B2 (en) | 1999-09-09 |
GR3033057T3 (en) | 2000-08-31 |
JPH11504588A (en) | 1999-04-27 |
SK284293B6 (en) | 2005-01-03 |
EA199700236A1 (en) | 1998-02-26 |
EP0822908A1 (en) | 1998-02-11 |
AU5262796A (en) | 1996-11-07 |
CA2218525A1 (en) | 1996-10-24 |
EP0822908B1 (en) | 2000-02-02 |
OA10526A (en) | 2002-04-29 |
ATE189431T1 (en) | 2000-02-15 |
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