[0001] The invention concerns a method for reducing the risk of back-corona in an electrostatic
precipitator to which hot dust-containing gases are conducted via a gas supply duct
and through which the gases are conducted for dust separation, wherein the gas temperature
is reduced and the gas humidity increased by the addition to the gases, before these
are conducted through the precipitator, of water which evaporates in the gases.
[0002] Usually, electrostatic precipitators are made up of a plurality of successive precipitator
units through which dust-containing gases are conducted for cleaning. Each of these
units has an inner chamber which is divided into a plurality of parallel gas passages
by means of a plurality of juxtaposed vertical curtains of earthed steel plates forming
the collecting electrodes of the unit. A plurality of vertical wires, to which a negative
voltage is applied, are arranged in each gas passage and form the discharge electrodes
of each unit. Owing to corona discharges at the discharge electrodes, the gases are
ionised in the electric field in the gas passages. The negative ions are attracted
by the collecting electrodes and, when moving towards these, collide with dust particles
in the gases, thereby charging the particles which are separated from the gases by
being attracted by the nearest collecting electrode, where they deposit and build
up a layer of dust.
[0003] Generally, dust separation efficiency increases with the voltage between the electrodes.
The voltage should, however, not be too high, since that may cause flash-overs between
the electrodes. Too high a current per unit area towards the collecting electrode
may entail that the dust layer is charged faster than it is discharged towards the
collecting electrode. Then, this charging of the dust layer leads to sparkings in
the layer proper, what is generally referred to as back-corona, and dust is flung
back into the gases, thereby impairing the dust separation efficiency. Further, the
risk of back-corona increases with the resistivity of the dust.
[0004] To reduce the risk of back-corona, especially in the separation of dust of high resistivity,
while maintaining such a current supply to the discharge electrodes that evenly distributed
corona discharges occur at these electrodes, the discharge electrodes are now usually
supplied with current pulses. Each precipitator unit has a separately controllable
current and/or voltage supplying circuit with associated control equipment, such that
the current and/or voltage supply to each unit can be separately controlled. Thus,
the current supply to the discharge electrodes of each unit is separately adjusted
in such a manner that maximum dust separation efficiency is obtained.
[0005] Another method for reducing the risk of back-corona consists in adding water to lower
the temperature of the hot gases and increase their humidity, thereby reducing the
resistivity of the dust. Such cooling of the hot gases by direct evaporation of water
is usually carried out in a conditioning tower through which the gases are conducted
before being conveyed to the electrostatic precipitator. Such towers are very large,
since all the water injected therein must be evaporated before the gases leave.
[0006] US-A-3,512,340 discloses a method in which dust particles and liquid are introduced
separately at different locations into the gas supply duct. First, the dust particles
are introduced, which are rapidly heated by the hot gases, and then the liquid is
injected into the gas supply duct to be evaporated by heat exchange with the heated
dust particles. The water is injected directly into the gas supply duct. In practice,
it has been found that some of the water reaches the wall of the duct before it has
been evaporated. In this manner, the wall is wetted, which in turn results in dust
particles adhering to the wall as a deposit, which is a major problem. This problem
has not been solved in a satisfactory manner, although this was one of the primary
aims of the invention according to the US patent specification. Such a direct injection
of water could apparently only be carried out with the aid of large conditioning towers.
[0007] In other prior art methods for reducing the risk of back-corona in an electrostatic
precipitator, anhydrous sulphur trioxide gas (see US-A-7 533 364), a phosphoric acid
component, ammonia or sodium are added to the gases before these are conducted through
the precipitator. These prior art methods are, however, difficult to carry out and
often expensive, since they require the provision of large plants, involving high
operational costs, adjacent to the precipitators.
[0008] Thus, the object of the invention is to provide a simple, inexpensive and practicable
method for reducing the risk of back-corona on the principle of reducing the gas temperature
and increasing the gas humidity by adding water which evaporates in the gases.
[0009] This object is achieved by a method of the type stated in the introduction to this
specification, which is characterised in that some of the dust particles separated
in the precipitator are employed as carriers for an amount of liquid, chiefly water,
proportioned to bring about the desired reduction in temperature, and are recycled
by being injected into the gas supply duct jointly with the liquid carried by dust
particles.
[0010] Preferably, the larger dust particles are employed as carriers for the liquid, and
are recycled. When using a precipitator made up of several successive precipitator
units, the liquid-carrying and recycled dust particles are dust particles separated
in the first precipitator unit.
[0011] In some applications, the liquid suitably consists of water to which sodium has been
added, preferably in the form of a sodium salt. In other applications, it suitably
consists of water to which sulphur has been added, preferably in the form av sulphuric
acid.
[0012] The invention will now be described in more detail below with reference to the accompanying
drawing schematically illustrating a plant for cleaning flue gases from a coal-fired
boiler plant. The illustrated plant comprises equipment for carrying out the inventive
method.
[0013] The drawing schematically illustrates a plant for cleaning dust-containing flue gases
from a coal-fired boiler plant 1. A preheater 2 is adapted to transfer heat from the
hot flue gases to combustion air which, through a duct 2a, is supplied to the plant
1 by means of a fan 3.
[0014] The hot flue gases, which may have a temperature of about 150°C, are conducted through
a duct 4 to an electrostatic precipitator 5 made up of three successive precipitator
units 5a, 5b, 5c through which the gases are conducted for cleaning. The thus cleaned
flue gases are conducted through a duct 6 to a flue gas fan 7 which conveys the gases
through a duct 8 to a chimney 9 for emission into the atmosphere.
[0015] Each of the successive precipitator units 5a, 5b, 5c is of conventional type and
has an inner chamber divided into a plurality of parallel gas passages by means of
a plurality of juxtaposed vertical curtains of earthed steel plates, i.e. collecting
electrodes. A plurality of vertical wires, i.e. discharge electrodes, connected to
a voltage of about -50 kV, are arranged in each gas passage. The flue gases are ionised
in the electric field in these passages. The negative ions are attracted by the collecting
electrodes and collide, when moving towards these, with dust particles in the flue
gases, thereby charging these particles, which are separated from the gases by being
attracted by the nearest collecting electrode, where they are deposited.
[0016] The dust particles deposited on the collecting electrodes build up a layer of dust
which at regular intervals are dislodged. Then, the dust particles drop into the collecting
hopper 10a, 10b and 10c of each precipitator unit. The dust particles collected by
the hopper 10b of the second unit 5b, being smaller than those collected by the hopper
10a of the first unit 5a, as well as the dust particles collected by the hopper 10c
of the third unit 5c, being smaller than those collected in the hopper 10b of the
second unit 5b, are removed from the hoppers 10b and 10c by conveyor means 11b and
11c, shown only schematically.
[0017] Some of the dust particles collected by the hopper 10a of the first unit 5a are recycled
in the system via a device 12 in a manner described in more detail below. The remaining
dust particles in the hopper 10a of the first unit 5a are removed by a conveyor means
11a (shown only schematically) and the conveyor means 11b and 11c.
[0018] The device 12 shown most schematically comprises a container 13 for intermediate
storage of the dust particles which are to be recycled. A valve device or gate-type
feeder 14 is arranged below the container 13 and adapted to feed the dust particles
to a screw conveyor 15, which transports the dust particles to a conduit 16 ending
in the flue gas duct 4. A strong air current (indicated by arrows) is blown through
the conduit 16. Before reaching the discharge end of the screw conveyor 15, the dust
particles are showered with water. The water is supplied to the screw conveyor 15
through a connection 17, and conveyed to the conduit 16 jointly with the dust particles.
The dust particles serving as carriers for the added water are blown into the flue
gas duct 4. The water evaporates in the flue gases, thus reducing the gas temperature
and increasing the gas humidity. The amount of water admitted through the connection
17 is porportioned so as to bring about the desired reduction in temperature of the
flue gases. To further enhance dust separation efficiency, the water may in some applications
contain sodium, added in the form of a sodium salt, or sulphur, added in the form
of sulphuric acid.
1. A method for reducing the risk of back-corona in an electrostatic precipitator (5)
to which hot dust-containing gases are conducted via a gas supply duct (4) and through
which the gases are conducted for dust separation, wherein the gas temperature is
reduced and the gas humidity increased by the addition to the gases, before these
are conducted through the precipitator (5), of water which evaporates in the gases,
characterised in that some of the dust particles separated in the precipitator (5) are employed
as carriers for an amount of liquid, chiefly water, proportioned to bring about the
desired reduction in temperature, and are recycled by being injected into the gas
supply duct (4) jointly with the liquid carried by dust particles.
2. The method of claim 1, characterised in that the larger dust particles are employed as carriers for the liquid, and are
recycled.
3. The method of claim 2, which is implemented in a precipitator (5) composed of several
successive precipitator units (5a, 5b, 5c), characterised in that the liquid-carrying and recycled dust particles are dust particles separated
in the first precipitator unit (5a).
4. The method of any one of claims 1-3, characterised in that the liquid consists of water to which sodium has been added, preferably in
the form of a sodium salt.
5. The method of any one of claims 1-3, characterised in that the liquid consists of water to which sulphur has been added, preferably
in the form of sulphuric acid.
1. Verfahren zum Reduzieren der Gefahr von Rücksprühen in einem elektrostatischen Staubabscheider
(5), dem heisse, Staub enthaltende Gase durch einen Gaszufuhrkanal (4) zugeführt werden
und durch welchen die Gase zum Staubabscheiden geleitet werden, in welchem Verfahren
die Gastemperatur reduziert und die Gasfeuchtigkeit erhöht wird, dadurch, dass den
Gasen, bevor sie durch den Staubabscheider (5) geleitet werden, Wasser zugesetzt wird,
das in den Gasen verdampft, dadurch gekennzeichnet, dass einige der im Staubabscheider (5) abgeschiedenen Staubteilchen als Träger für
eine der erwünschten Temperatursenkung angepasste Menge von Flüssigkeit, hauptsächlich
Wasser, verwendet und zurückgeführt werden, dadurch, dass sie zusammen mit der von
den Staubteilchen getragenen Flüssigkeit in den Gaszufuhrkanal (4) eingespritzt werden.
2. Verfahren nach Anspruch 1, dadurch gekennzeichnet, dass die grösseren Staubteilchen als Träger für die Flüssigkeit verwendet und zurückgeführt
werden.
3. Verfahren nach Anspruch 2, das in einem Staubabscheider (5) durchgeführt wird, der
aus mehreren nacheinander angeordneten Abscheideeinheiten (5a, 5b, 5c) aufgebaut ist,
dadurch gekennzeichnet, dass die die Flüssigkeit tragenden und zurückgeführten Staubteilchen in der ersten
Abscheideeinheit (5a) abgeschiedene Staubteilchen sind.
4. Verfahren nach einem der Ansprüche 1-3, dadurch gekennzeichnet, dass die Flüssigkeit aus Wasser besteht, dem Natrium zugesetzt worden ist, vorzugsweise
in Form von Natriumsalz.
5. Verfahren nach einem der Ansprüche 1-3, dadurch gekennzeichnet, dass die Flüssigkeit aus Wasser besteht, dem Schwefel zugesetzt worden ist, vorzugsweise
in Form von Schwefelsäure.
1. Procédé de réduction des risques de décharges en retour par effet corona dans un précipitateur
électrostatique (5) auquel des gaz chauds contenant de la poussière sont conduits
par une conduite d'alimentation en gaz (4) et à travers lequel les gaz sont conduits
en vue de la séparation de poussière, procédé dans lequel la température du gaz est
réduite et l'humidité du gaz est augmentée par l'addition aux gaz, avant que ceux-ci
ne soient conduits à travers le précipitateur électrostatique (5), de l'eau qui s'évapore
dans les gaz, caractérisé en ce qu'un certain nombre des particules de poussière séparées dans le précipitateur
électrostatique (5) sont utilisées en tant que porteurs d'une certaine quantité de
liquide, principalement de l'eau, proportionnée à provoquer la réduction voulue de
la température, et sont recyclées en étant injectées dans la conduite d'alimentation
en gaz (4) conjointement avec le liquide porté par les particules de poussière.
2. Procédé selon la revendication 1, caractérisé en ce que les particules de poussière les plus grandes sont utilisées en tant que
porteurs du liquide et sont recyclées.
3. Procédé selon la revendication 2, qui est exécuté dans un précipitateur électrostatique
(5) composé de plusieurs unités de précipitateur électrostatique (5a, 5b, 5c) successives,
caractérisé en ce que les particules de poussière porteuses de liquide et recyclées sont des
particules de poussière séparées dans la première unité de précipitateur électrostatique
(5a).
4. Procédé selon l'une quelconque des revendications 1 à 3, caractérisé en ce que le liquide utilisé est composé de l'eau à laquelle on a ajouté le sodium,
de préférence sous forme d'un sel de sodium.
5. Procédé selon l'une quelconque des revendications 1 à 3, caractérisé en ce que le liquide utilisé est composé de l'eau à laquelle on a ajouté le soufre,
de préférence sous forme d'acide sulfurique.