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EP 0 499 138 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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09.08.1995 Bulletin 1995/32 |
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Date of filing: 06.02.1992 |
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International Patent Classification (IPC)6: B03C 3/68 |
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An assembly for controlling a voltage pulse feeder in a electrostatic precipitator
Zusammenbau um Spannungsimpulsversorgung in einem elektrostatischen Abscheider zu
steuern
Montage pour contrôler une alimentation d'impulsion de tension dans un précipitateur
électrostatique
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Designated Contracting States: |
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AT BE CH DE DK ES FR GB GR IT LI LU NL SE |
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Priority: |
15.02.1991 IT MI910398
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Date of publication of application: |
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19.08.1992 Bulletin 1992/34 |
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Proprietor: ENTE NAZIONALE PER L'ENERGIA ELETTRICA -
(ENEL) |
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I-00198 Roma (IT) |
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Inventor: |
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- Bogani, Valerio
I-Pisa (IT)
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Representative: Ferraiolo, Ruggero et al |
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Via Napo Torriani, 10 20124 Milano 20124 Milano (IT) |
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References cited: :
EP-A- 0 035 209 WO-A-87/01306
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EP-A- 0 044 488
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] This present invention relates to an assembly for controlling a voltage pulse feeder
in an electrostatic precipitator, in particular in an electrostatic precipitator in
a coal combustion plant and, anyway, in a plant wherein particles are to be collected
which have an high resistivity, from 10⁸ Ω . cm and over.
[0002] The prior art comprises in said precipitators voltage pulse feeders (which will be
referred to only as - feeder(s) - in the following description) by means of which
the insulated electrode is given a negative polarity direct voltage of some tens of
kV, to which direct voltage, voltage pulses are added which range from tens to hundreds
of microseconds (»s) with a convenient frequency and peak values of some tens of kV
(said negative polarity direct voltage will be referred to only as - base direct voltage
- in the following description). As known, the voltage pulses having short life and
proper voltage give the ash particles in the smokes remarkable electric charges, so
that the electric field generated by the base direct voltage works to collect the
particles by electrostatic action.
[0003] In particular, the prior art comprises feeders made according to two different assemblies
:
a) an assembly that generates the voltage pulses starting from an auxiliary direct
voltage source of relatively low voltage and adds said pulses to the base direct voltage
through a step-up transformer and the interpositioning of a capacitor having capacity
suitable for said auxiliary direct voltage.
b) an assembly that generates the voltage pulses starting from an auxiliary direct
voltage source of high voltage and adds said voltage pulses to the base direct voltage,
still by the interpositioning of a capacitor of capacity suitable for said auxiliary
direct voltage , but without using a step-up transformer.
[0004] The peculiarity of both said assemblies is to afford manually or automatically an
independent control of the base direct voltage and voltage pulse amplitude.
[0005] Finally, document EP-A-0044488 discloses a procedure for operating a precipitator
fed by variable direct voltage and superposed pulses wherein at least one of the parameters
(pulse height, frequency, rise velocity) is variable, still wherein the direct voltage
and/or one of the pulse parameters is iteratively varied in such a way that the sum
of the electrical energies in the direct voltage and in the pulses as absorbed by
the precipitator are lead to a minimum value in order to maintain a predetermined
average value according to the amount of ashes in the gas. It appears that the scope
of this invention is rather to minimize the energy without affording an efficiency
improvement.
[0006] A drawback in the prior art is that the efficiency in collecting the solid particles
is much jeopardized by unsteadyness of said voltages and, particularly after a discharge
in a precipitator, is jeopardized on resetting the base direct voltage and the amplitude
of the voltage pulses. After investigating about the reasons of such drawback, the
inventor found that the base direct voltage and the pulse voltage added thereto are
interdependent in other words, when one of said voltages rises the other lows, and
vice versa. It is just this interdependency that makes unsteady the working of the
voltage pulse feeder and prevents from optimizing its control assembly, the nature
of this drawback being well realized if one considers that the ashes produced from
coals of different kinds present different resistivities and consequently the precipitators
installed in a combustion plant should fit with different ashes.
[0007] The object of this invention is to obviate the low efficiency caused by said interdependency
between said voltages in the assemblies according to the prior art.
[0008] The invention, as characterized in the claims, provides an assembly which automatically
keeps steady the base direct voltage on varying the pulse amplitudes added thereto
and, similarly, automatically keeps steady the auxiliary direct voltage in order to
generate the pulse on varying the base direct voltage. This assembly works to generate
the base current voltage and/or the pulse voltage irrespective of the control being
manual or automatic.
[0009] The invention will be described in detail herebelow with reference to the accompanying
drawings which illustrate specific embodiments , in which:
FIG. 1 is a much simplified diagram showing a control assembly,
FIG. 2 is the diagram of pulse feeder assembly provided with a step-up transformer,
FIG. 3 is the diagram of a pulse feeder assembly not provided with a step-up transformer
and
FIG. 4 is the diagram of an electronic controller for operating the feeders allustrated
in Figures 1, 2 and 3 by a base current voltage kept steady automatically.
[0010] Fig. 1 shows an assembly comprising: a feeder 1 comprising a base direct voltage
generator 2; an auxiliary direct voltage generator 3 which generates voltage pulses;
a precipitator 4 comprising an insulated filiform sender electrode 5, and a collecting
electrode 6 for collecting solid particles; a couple of electronic controllers 7A,
7B made by the firm SIATEM in Padova (Italy) with components type L141 and » A747,
respectively adapted to control automatically the base direct voltage and the auxiliary
direct voltage for generating pulses and to balance for both voltages all the variations
caused by said interdependency; a voltage divider 8 which shows continuously the value
of the base direct voltage; a voltage divider 9 which shows continuously the value
of the direct voltage associated with the voltage pulses; a voltage divider 10 which
shows continuously the value of total voltage on the precipitator 4; wires 11A, 11B;
12A, 12B respectively connecting said generators with said electronic controllers
7A, 7B; wires 13A, 13B respectively connecting said generators with the voltage dividers
8, 9 and said sender electrode 5; wires 14A, 14B respectively connecting said voltage
dividers 8, 9 with said electronic controllers 7A, 7B; a wire 16 connecting said sender
electrode 5 with said total voltage divider 10 and a wire 17 connecting said total
voltage divider 10 with an oscilloscope 18 which continuously shows the value of the
total voltage on the sender electrode 5.
[0011] In general, it was experienced that the collecting highest efficiency in the electrostatic
precipitator is obtained by setting and keeping steady a predetermined value of the
base direct voltage selected depending on the amount and quality of the solid particles
in the precipitator; to the base direct voltage a voltage pulse is added whose amplitude
is increased gradually until a discharge occurs in the precipitator. Said collecting
voltage pulse shall be of low frequency, from 1 Hz to 50 Hz. Immediately after the
discharge, the base direct voltage and the pulse voltage are drawn to zero by the
control assembly and, after a predetermined time period of some tens of milliseconds,
the base direct voltage rapidly returns to the predetermined value, while the pulse
voltage rapidly returns to that value which caused the discharge, reduced by a predetermined
percentage, and then it increases along a low slope until a further discharge occurs
in the precipitator.
[0012] Fig. 2 shows an assembly comprising:
- a set of thyristors 20 in antiparallel which control the three-phase voltage applied
to a step-up transformer 22 that feeds the circuit which generates the pulses;
- a group 21 controlling the starting step of thyristors 20;
- said step-up transformer 22;
- a group 23 for rectifying the feeding of a capacitor 24 whose discharge causes the
pulse generating voltage;
- a block and equalization inductance 25;
- a step-up transformer 26 for the pulse amplitude provided with a primary winding 27
under a maximum voltage of about 8 kV, a secondary winding 28 under a high voltage
with a maximum pulse amplitude of about 100 kV;
- thyristors 29 provided with diodes in antiparallel whose starting generates the oscillating
voltage which causes the pulse;
- an inductance 30 that, added to the leakage inductance of the step-up transformer
26, defines the pulse life;
- a set of thyristors 31 in antiparallel for controlling the three-phase voltage applied
to a transformer 33 which feeds the circuit of the base direct voltage;
- a group 32 which controls the starting step of the thyristors 31;
- a step-up transformer 33;
- a rectifier 34 for the base direct voltage;
- a block inductance 35;
- a capacitor 36 which separates the base direct voltage from the secondary winding
of the pulse step-up transformer 26;
- electrodes 37 receiving the sum of the base direct voltage and the pulse voltage;
- a voltage divider 38 detecting the value of the direct voltage associated with the
pulse voltage;
- a voltage divider 39 for the base direct voltage;
- an electronic controller 40 receiving the voltage from the voltage dividers 38, 39
and from a voltage divider 41 which will be better described hereinafter; in particular,
this voltage divider 41 receives the voltages from the voltage dividers 38, 39 and
delivers to the assemblies 42, 43 (defined hereinafter) separate signals proportional
with the value of the base voltage and of the direct voltage associated with the pulses;
- the above mentioned assembly 42 that receives the signal of the direct voltage associated
with the voltage pulse supplied from the electronic controller 40 and delivers said
signal to the phase control 21 which finally is the means that controls the pulse
amplitude;
- the above mentioned assembly 43 that receives the signal of the base direct voltage
supplied from the electronic controller 40 and delivers said signal to the phase control
32 which finally is the means that controls the value of the base direct voltage;
- the above mentioned voltage divider 41 for detecting the peak value of the voltage
applied to the node A ( base voltage plus pulse amplitude ), this node being connected
with said electrodes 37 in the precipitator 44.
[0013] Fig. 3 shows an assembly comprising;
- a set of thyristors 50 in antiparallel for controlling the three-phase voltage applied
to a transformer 52 which feeds the base direct voltage circuit;
- a group 51 which controls the starting-phase in the thyristors 50;
- a step-up transformer 52;
- a rectifier 53 for the base direct voltage;
- a block inductance 54;
- a capacitor 55 for separating the base direct voltage circuit from the pulse generating
circuit;
- a voltage divider 56 for the base direct voltage;
- a set of thyristors 57 in antiparallel for controlling the three-phase voltage applied
to a step-up transformer 59 which feeds the pulse generating circuit;
- a group 58 for controlling the starting phase in the thyristors 57;
- said step-up transformer 59;
- a group 60 for rectifying the feeding to a capacitor 61 whose discharge causes the
pulse generating voltage;
- a block inductance 62;
- a voltage divider 63 for detecting the value of the direct voltage associated with
the voltage pulse (because the life of the pulse is very short with respect to the
time between two subsequent pulses);
- thyristors 64 provided with diodes in antiparallel whose starting causes the oscillating
voltage which generates the pulse;
- a voltage dividers 65 for detecting the peak voltage applied to node A (base voltage
plus pulse amplitude);
- an inductance 66 for defining the pulse life by the capacity provided by capacitors
55, 61 and a precipitator 67 as mentioned hereinafter, in series;
- electrodes 68 that receive the sum of the base voltages and the pulse voltage,
- said precipitator 67;
- an electronic controller 69 which receives the voltages from the voltage dividers
56, 63 and 65. In particular, this controller takes the voltage values supplied from
the voltage dividers 56 and 63 and delivers to the below specified assemblies 70,
71 separate signals relevant to the base voltage value and to the direct voltage value
associated with the pulses;
- the above mentioned assembly 70 takes the signal from the base direct voltage as delivered
by the electronic controller 69 and supplies said signal to the control group 51 that
finally controls the value of the base direct voltage;
- the above mentioned assembly 71 takes the signal from the base direct voltage associated
with the voltage pulse as delivered by the electronic controller 69 and supplies said
signal to the control group 58 that controls the starting step which finally controls
the voltage pulse amplitude.
[0014] Fig. 4 is a diagram of an electronic controller which may be used for automatically
keeping steady, in the illustrated case, the base direct voltage for the feeder as
illustrated in Figures 1, 2 and 3. A similar electronic controller is used for automatically
keeping steady the auxiliary direct voltage associated with the pulses.
[0015] Said controller comprises:
- a potentiometer 80 located on the feeder control boards for setting the base direct
voltage to be stabilized;
- a terminal 81 in the potentiometer 80 fed with a direct stabilized voltage of 15 V;
- a voltage divider 82;
- a terminal 83 connected with the low voltage shunt in the voltage dividers 39, 56
respectively of Figures 2 and 3;
- a chart 84 containing all the components of the controller ;
- an input impedance 85;
- an operational amplifier 86;
- an integration grid 87 for generating rapid upward slopes after discharges;
- an input impedance 88;
- an operational amplifier 89 working as a reverser;
- a resistor 90 for adapting the signal;
- resistors 91 for comparing the signals coming from potentiometer 80 and voltage divider
82;
- an input impedance 92;
- an operational amplifier 93 working as error amplifier;
- a regulation grid 94 for the control system of the base direct voltage;
- an assembly 95, equivalent to assemblies 43 and 70 respectively in Figures 2 and 3,
which receives the control signal at a terminal 96;
Specifications are supplied herebelow which show operational values for a pulse
feeder according to the invention associated with an electrostatic precipitator wherein
the plate spacing is 300 mm and the diameter of the filiform electrodes is 5 mm, the
SCA, specific collecting area, is about 150 m²/m³/sec, there are three electric fields
in series and the smokes enter, at about 150°C temperature produced by combustion
of a South African coal known as AMCOAL:
| - Base direct voltage: This voltage 19 steady since the control assembly which generates
the voltage is set manual. Anyway, this voltage is inclined to lower while increasing
the amplitude of the voltage pulse, but the assembly according to the invention keeps
this voltage steady at the predetermined value. |
about 30kV |
| - Voltage pulse value The control system for generating the pulses is set in automatic
and the amplitude of the pulse increases until discharge is reached. |
about 45kV |
| - Life of the voltage pulse |
about 70»s |
| - Pulse frequency |
about 10Hz |
| - Total voltage on the precipitator Such voltage value corresponds to the voltage
level at which the discharge occurs and results from the addition of the base direct
voltage with the voltage pulse. |
about 75kV |
| - Current density in the precipitator |
about 1-2 ηA/cm² |
| - Number of dicharges in a minute in the precipitator |
2 - 4 |
| - Collecting efficiency in the precipitator |
about 99.9% |
1. An assembly for controlling voltage pulse feeders for an electrostatic precipitator
(4) which is provided with insulated sender electrodes (5) and collecting electrodes
(6) for collecting solid particles in the smokes and is associated with a generator
of a base direct voltage (2) applied to said sender electrodes and to a generator
of an auxiliary direct voltage (3) in order to generate voltage pulses applied to
said sender electrodes (5), the assembly being characterized in that it comprises a first voltage controller (7A) which is connected to a first
voltage divider (8), is connectable to said generator of the base direct voltage (2)
and is adapted to automatically maintain steady the base direct voltage in order to
balance all the variations of same base direct voltage due to the variations of the
voltage pulses added thereto as well as it comprises a second voltage controller (7B)
which is connected to a second voltage divider (9), is connectable to said generator
of an auxiliary direct voltage (3) and is adapted to automatically maintain steady
the auxiliary direct voltage in order to generate voltage pulses on varying the base
direct voltage, the association of said first (7A) and second (7B) voltage controllers
and dividers (8,9) drawing to zero all the variations of said two voltages caused
by the interdependency of said same two voltages.
2. An assembly according to claim 1 characterized in that the frequency of said voltage
pulses ranges from between 1 Hz and 50 Hz.
3. An assembly according to claims 1 or 2, characterized in that said first voltage divider
(8) connected with said first voltage controller (7A) and with said generator of base
direct voltage (2) is used to detect and indicate continuously the value of the base
direct voltage to said voltage controller (7A) and to an operator; said second voltage
divider (9) connected with said second voltage controller (7B) and with said generator
of auxiliary direct voltage (3) is used to detect and indicate continuously the value
of the auxiliary direct voltage associated with said pulses to said second voltage
controller (7B); a third voltage divider (10) connected with said sender electrodes
(5) is used to detect and indicate continuously the value of the total voltage in
the precipitator (4).
4. An assembly according to any of the preceding claims, characterized in that a voltage
pulse is added which increases gradually until a discharge occurs in the precipitator
(4) to a preselected value of the base direct voltage, the base direct voltage and
the pulse direct voltage are drawn to zero after said discharge during a time period
of some tens of millisecond and then the base direct voltage is rapidly drawn to said
preselected value and the direct voltage associated with the pulse is rapidly drawn
to that value it had before the discharge, but reduced by a predetermined percentage,
and then it increases by a predetermined low rise slope until a value required for
a further discharge is reached.
1. Anordnung zum Steuern der Spannungsimpulsversorgung für einen elektrostatischen Abscheider
(4), der mit isolierten Sendeelektroden (5) und Kollektorelektroden (6) zum Sammeln
fester Partikel in Rauch versehen ist, und der mit einem Generator einer Basisgleichspannung
(2) verbunden ist, die an die Sendeelektroden angelegt ist, und mit einem Generator
einer Hilfsgleichspannung (3) verbunden ist, um Spannungsimpulse zu erzeugen, die
an die Sendeelektroden (5) angelegt werden, dadurch gekennzeichnet, daß die Anordnung eine erste Spannungssteuereinheit (7A) enthält, die mit einem
ersten Spannungsteiler (8) verbunden ist und mit dem Generator der Basisgleichspannung
(2) verbindbar ist und so ausgelegt ist, daß sie die Basisgleichspannung automatisch
gleichförmig hält, um alle Änderungen dieser Basisgleichspannung aufgrund der Änderungen
der zu ihr aufaddierten Spannungsimpulse auszugleichen, und eine zweite Spannungssteuereinheit
(7B) enthält, die mit einem zweiten Spannungsteiler (9) verbunden ist und mit dem
Generator einer Hilfsgleichspannung (3) verbindbar ist und so ausgelegt ist, daß sie
die Hilfsgleichspannung automatisch gleichförmig hält, um Spannungsimpulse bei Veränderung
der Grundgleichspannung zu erzeugen, wobei durch die Verknüpfung der ersten (7A) und
der zweiten (7B) Spannungssteuereinheit und der Spannungsteiler (8, 9) alle Veränderungen
der zwei Spannungen, die durch die gegenseitige Abhängigkeit der beiden Spannungen
verursacht sind, auf null gezogen werden.
2. Anordnung nach Anspruch 1, dadurch gekennzeichnet, daß die Frequenz der Spannungsimpulse
zwischen 1 Hz und 50 Hz liegt.
3. Anordnung nach einem der Ansprüche 1 oder 2, dadurch gekennzeichnet, daß der erste
Spannungsteiler (8), der mit der ersten Spannungssteuereinheit (7A) und mit dem Generator
der Basisgleichspannung (2) verbunden ist, verwendet wird, um kontinuierlich den Wert
der Basisgleichspannung zu detektieren und ihn der Spannungssteuereinheit (7A) und
einem Betreiber anzuzeigen, wobei der zweite Spannungsteiler (9), der mit der zweiten
Spannungssteuereinheit (7B) und mit dem Generator einer Hilfsgleichspannung (3) verbunden
ist, verwendet wird, um den mit den Impulsen verknüpften Wert der Hilfsgleichspannung
zu detektieren und der zweiten Spannungssteuereinheit (7B) anzuzeigen, und wobei ein
dritter Spannungsteiler (10), der mit den Sendeelektroden (5) verbunden ist, verwendet
wird, um kontinuierlich den Wert der Gesamtspannung in dem Abscheider (4) zu detektieren
und anzuzeigen.
4. Anordnung nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, daß auf
einen vorherbestimmten Wert der Basisgleichspannung ein Spannungsimpuls aufaddiert
wird, welcher schrittweise erhöht wird, bis eine Entladung in dem Abscheider (4) stattfindet,
wobei die Basisgleichspannung und die Impulsgleichspannung wahrend eines Zeitraums
von einigen zehn Millisekunden nach der Entladung auf null gezogen werden und die
Basisgleichspannung anschließend schnell auf den vorherbestimmten Wert gezogen wird
und die mit dem Impuls verknüpfte Gleichspannung schnell auf den Wert gezogen wird,
den sie vor der Entladung hatte, jedoch gemindert um einen vorherbestimmten Prozentsatz,
und anschließend entsprechend einer vorherbestimmten, langsam ansteigenden Kurve erhöht
wird, bis ein für eine weitere Entladung notwendig erforderlicher Wert erreicht ist.
1. Agencement pour la commande de sources d'alimentation en impulsions de tension fournies
à un filtre électrostatique (4) qui est pourvu d'électrodes émettrices (5) et d'électrodes
collectrices (6) isolées, pour recueillir les particules solides présentes dans des
fumées et qui est associé à un générateur (2) de tension continue de base appliquée
auxdites électrodes émettrices et à un générateur (3) de tension continue auxiliaire
pour générer des impulsions de tension appliquées auxdites électrodes émettrices (5),
l'agencement étant caractérisé en ce qu'il comprend un premier dispositif (7A) de commande de tension, qui est connecté
à un premier diviseur de tension (8), qui peut être connecté audit générateur (2)
de tension continue de base et qui est agencé pour maintenir stable d'une manière
automatique la tension continue de base, afin de compenser toutes les variations de
cette tension continue de base consécutives aux variations des impulsions de tension
ajoutées à cette tension continue de base, et en ce qu'il comprend également un second
dispositif (7B) de commande de tension qui est connecté à un second diviseur de tension
(9), qui peut être connecté audit générateur (3) de tension continue auxiliaire et
qui est agencé pour maintenir stable d'une manière automatique la tension continue
auxiliaire, afin de produire des impulsions de tension s'ajoutant à la tension continue
de base, l'association desdits premier (7A) et second (7B) dispositifs de commande
de tension et des diviseurs (8, 9) ramenant à zéro toutes les variations des deux
dites tensions provoquées par l'interdépendance des deux dites tensions.
2. Agencement selon la revendication 1, caractérisé en ce que la fréquence desdites impulsions
de tension se situe entre 1 Hz et 50 Hz.
3. Agencement selon la revendication 1 ou 2, caractérisé en ce que ledit premier diviseur
de tension (8), connecté audit premier dispositif (7A) de commande de tension et audit
générateur (2) de tension continue de base, est utilisé pour détecter et indiquer
en continu la valeur de la tension continue de base audit dispositif (7A) de commande
de tension et à un opérateur; ledit second diviseur (9) de tension, connecté audit
second dispositif (7B) de commande de tension et audit générateur (3) de tension auxiliaire
continue, est utilisé pour détecter et indiquer en continu la valeur de la tension
continue auxiliaire associée avec lesdites impulsions audit second dispositif (7B)
de commande de tension; un troisième diviseur de tension (10) connecté avec lesdites
électrodes émettrices (5) est utilisé pour détecter et indiquer en continu la valeur
de la tension totale dans le filtre électrostatique (4).
4. Agencement selon l'une quelconque des revendications précédentes, caractérisé en ce
qu'on ajoute une impulsion de tension, qui augmente graduellement jusqu'à ce qu'une
décharge se produise dans le filtre électrostatique (4), à une valeur présélectionnée
de la tension continue de base, où la tension continue de base et la tension de l'impulsion
sont amenées à zéro après ladite décharge pendant une durée de temps de quelques dizaines
de millisecondes et ensuite, la tension continue de base est rapidement amenée à ladite
valeur présélectionnée et la tension associée avec l'impulsion est rapidement amenée
à la valeur qu'elle avait avant la décharge, mais diminuée par un pourcentage prédéterminé,
et ensuite elle est augmentée suivant une augmentation prédéterminée à pente faible
jusqu'à une valeur requise pour qu'une autre décharge se produise.