BACKGROUND OF THE INVENTION
1. FIELD OF THE INVENTION
[0001] The present invention relates to a discharge tube having a positive glow discharge
characteristic in which the tube voltage increases as the discharge current increases
and a negative arc discharge characteristics in which the tube voltage decreases as
the discharge current increases due to an increase in emission of thermoelectrons.
2. DESCRIPTION OF THE RELATED ART
[0002] It is known that cold-cathode tubes, hot-cathode tubes and semi-hot cathode tubes
are used in discharge-tube applications.
[0003] Cold-cathode tubes have positive discharge characteristics and have the advantages
of long life, low power consumption, low heat dissipation, and the ability to be easily
lit and quenched. The disadvantage of cold-cathode tubes is their low intensity. Hot-cathode
tubes, which are known as fluorescent lamps, have negative thermionic discharge characteristics
and the advantage of high intensity. Hot-cathode tubes, however, have the disadvantages
of short life, high power consumption, high heat dissipation, and cannot be lit and
quenched in themselves. Semi-hot-cathode tubes are arranged such that no filament
electrode is energized by external circuits and have the disadvantage that a relatively
long time is required to reach the desired intensity after energization. Also, semi-hot-cathode
tubes are impractical in terms of life and intensity.
[0004] In Japanese Patent Application No. 63-172761, the present inventor proposes a discharge
tube of the type having a discharge characteristic in which the negative discharge
characteristic of a cold-cathode tube is combined with the positive discharge characteristic
of a hot-cathode tube. More specifically, the proposed discharge tube comprises a
pair of electrode assemblies which are disposed opposite each other in a discharge
space. Each of the electrode assemblies includes a cup-shaped electrode for glow discharge
and, a filament electrode for arc discharge which is disposed in the cup-shaped electrode.
This arrangement is intended to achieve long life with glow discharges and very high
brightness with arc discharges. However, it is necessary that such discharge tube
be provided with an automatic control circuit for controlling discharge current in
order to stably maintain the state of discharge. In this prosed type of discharge
tube, several hours after energization the temperature of the cup-shaped electrode
for glow discharge increases due to emission of thermoelectrons and a transition from
glow discharge to arc discharge occurs. As a result, a phenomenon such as snaking
or flickering takes place and the discharge becomes unstable. For this reason, the
above electronic control circuit is used to control discharge current. However, the
cost of the discharge tube becomes expensive owing to the necessity of such a control
circuit and, even with this control circuit, it is still difficult to eliminate perfectly
flickers of high frequency.
[0005] US-A-2 314 134 discloses an electric discharge device of the luminescent tube type
used in luminous signs. It comprises a sealed tube of glass or other suitable transparent
material, the inside surface of which is coated with fluorescent powder for light
generation. The tube contains an inert gas at a low pressure and also mercury. A respective
electrode is provided at each end of the tube.
[0006] An illustrated electrode is supported by a current-carrying lead sealed in the glass
tube and extending inwardly to a larger diameter portion of nickel or iron. About
the end of the larger diameter portion there is wrapped, and welded thereon, one end
of a filamentary electrode member composed of a tungsten wire. The tungsten filament
is in the form of a coiled coil and is coated with an emittive material comprising
a mixture of barium and strontium oxides.
[0007] On the outside of the larger diameter portion, a tubular quartz insulating member
is secured and has an exterior annular recess in which is secured the lower end of
a second electrode member in the form of a frusto-conical shell of nickel which may,
if desired, be coated interiorly with emittive material. At two or three points along
the inner edge or the shell, a metal, for instance thorium, having comparatively high
emission characteristics when cold is deposited. The filament is connected at its
inward end to the shell by means of a connector wire.
[0008] When a proper voltage is applied to the tube, an arc builds up instantly on the interior
of the shell but, owing to the presence of the insulating member, cannot reach the
lead except through the filament with the result that the tungsten filament heats
up sufficiently to serve as the main electrode during continued operation.
[0009] In a second embodiment for operation at relatively low currents, an electrode arrangement
includes a tungsten filament, a thin frusto-conical metallic shell interiorly coated
with emittive material, and an outer, generally cylindrical, shell of non-conductive
material, a plate connecting the lead wire with the interior of the shell to form
part of a supplementary electrode.
[0010] It is an object of the present invention to provide a discharge tube in which the
above-described problems can be overcome.
[0011] It is also an object of the present invention to provide a high-intensity long-life
discharge tube which has the functions of both arc discharge and glow discharge and
in which a transition from glow discharge to arc discharge is not caused by a rise
in the temperature of an electrode for glow discharge.
[0012] The present invention provides a discharge tube comprising: a tubular member, including
a tubular wall having opposite closed ends defining a gas charged space; first and
second electrode assemblies respectively disposed at said closed ends in said gas
charged space; and means for applying an a.c. voltage to said first and second electrode
assemblies; wherein: each electrode assembly comprises a first, cup-shaped, electrode
having a closed end, an open end and a central axis, and a second electrode extending
along said axis, the second electrode of each electrode assembly of each electrode
assembly including a coating of a thermoelectron emitting material, said electrode
assemblies producing, in use, an arc discharge therebetween; each cup-shaped electrode
has an outer surface directly facing and open to said tubular wall; and each cup-shaped
electrode has an inner surface directly facing the associated second electrode;
characterized in that: each cup-shaped electrode is a glow discharge electrode; voltage is applied to the
cup-shaped electrodes at their closed ends; each cup-shaped electrode is electrically
connected in parallel with the associated second electrode; and said electrode assemblies
produce, in use, glow discharge between said cup-shaped electrodes and arc discharge
between said arc discharge electrodes.
[0013] When a voltage from the same high-frequency electric source is applied to these electrodes,
a high intensity arc discharge and a glow discharge are stably formed in the discharge
space at the same time, whereby a very high intensity of 35,000 nit or more can be
obtained by the synergistic effect of the arc discharge and the glow discharge. For
instance, if metal, such as nickel, is used for electrodes for glow discharge, stable
glow discharge will be obtained up to a current level of about 3 mmA. However, in
general, at current levels of 4 mmA or more the discharge characteristic of the electrodes
for glow discharge enters an arc-discharge region where glow discharge does not stabilize.
In contrast, the above-described arrangement according to the present invention makes
it possible to provide stable glow discharge even when the current increases, and
an intensity of 10,000 nit can be achieved with glow discharge alone.
[0014] Ways of carrying out the invention will now be described with reference to the accompanying
drawings, in which:
Fig. 1 is a diagrammatic view showing a first discharge tube (not, however, embodying
the invention);
Figs. 2-4 are diagrammatic views which show respective modifications of the discharge
tube of Fig. 1, with Figs. 3 and 4 showing modified portions only, Fig. 4 showing
an embodiment of the invention;
Fig. 5 is a graph which serves to illustrate the advantage of the present invention;
and
Fig. 6 is a diagrammatic perspective view showing another embodiment of the present
invention.
[0015] Fig. 1 shows a discharge tube to be described as a background to the present invention.
As illustrated, a rod-like sintered electrode 2 and a filament coil electrode 3 are
disposed at each end of a transparent glass tube 1 which has a diameter of approximately
6 mm and a length of approximately 260 mm. At each end, the rod-like sintered electrode
2 and the filament coil electrode 3 are arranged in parallel and close to each other,
i.e., in a non-contact state. Each of the rod-like electrodes 2 has a diameter of
2 mm and a length of 6 mm and is prepared by mixing tungsten powder, zirconium, nickel
and barium carbonate, forming the mixture with a press, and sintering the formed mixture.
Each of the filament coil electrodes 3 has a good electron emission characteristic
and is prepared by coating a solution of barium hydroxide over the peripheral surface
of a tungsten wire, sintering the tungsten wire to form a coat of barium carbonate,
and forming it into a coil. In the glass tube 1, each of these electrodes 2 and 3
is supported by a tungsten wire or rod-like member 7 and connected to one end of a
lead wire 8 via the tungsten rod-like member 7. One end of each of the lead wires
8 extends into the glass tube 1 through a glass end wall thereof. The inner surface
of the glass tube 1 is coated with a fluorescent film 4 and the interior of the glass
tube 1 is charged with argon gas pressurized at a pressure of 4000 Pa (30 torr) and
5 mmg of mercury 6.
[0016] A strip or trigger coating 9 is formed on the outer surface of the glass tube 1 to
extend along the length thereof. A lead wire 10 is led from the trigger coating 9
and connected to the lead wire 8 which is led from one end of the glass tube 1. The
other ends of the respective lead wires 8 are connected to an A.C. power source 11.
[0017] Fig. 2 shows a discharge tube (not, however, embodying the invetnion) according to
a modification of the discharge tube shown in Fig. 1. In Fig. 2, the same reference
numerals are used to denote the same elements as those shown in Fig. 1. This modification
differs from the first embodiment in that each filament coil electrode 3a is arranged
to surround a corresponding rod-like sintered electrode 2a in a non-contact state.
[0018] For example, if a sine wave of oscillation frequency 40 kHz and effective voltage
1,500 V is applied to the lead wires 8 at both ends of the discharge tube, a highly
stable discharge can be achieved with a discharge current of 20 mA and an intensity
of 35,000 nit. The temperature of the tube wall of the portion of the discharge tube
which is adjacent to each electrode assembly is approximately 15 degrees higher than
room temperature and the amount of heat generated can be reduced compared to conventional
arrangements. Accordingly, it is possible to reduce power consumption. In addition,
since no control circuit for stabilizing discharge is needed, the discharge-tube driving
circuit can be made compact.
[0019] Fig. 3 shows another modification (not, however, embodying the invention) of the
discharge tube of Fig. 1 and only the electrode assembly which differs from that shown
in Fig. 2 is illustrated. This modification is similar to the modification of Fig.
2 in that a rod-like sintered electrode 2b is surrounded by a filament coil electrode
3b, but the filament coil electrode 3b is densely coiled in cup-like form with each
of its ring segments held in close contact with the adjacent ring segment.
[0020] Fig. 4 shows an embodiment of the invention constituted by yet another modification
of the discharge tube of Fig. 1 and an electrode assembly which differs from that
shown in Fig. 3 is illustrated. In the illustrated assembly, a sintered metallic electrode
2c for glow discharge is formed into a cup-like shape, and a filament coil electrode
3c for arc discharge extends straight along the axis of the assembly. The cup-like
electrode 2c may be formed into the shape of a hollow cylinder with a bottom.
[0021] It is desirable that the discharge tubes have a glass-tube diameter of about 4 mm
to about 10 mm.
[0022] Instead of the sintered electrode shown in Fig. 4, there can be used an electrode
formed in such a way that a nickel or tungsten wire is densely coiled in a shape similar
to that of the electrode 3b shown in Fig. 3 while coating a nickel or tungsten powder
over the peripheral surface of the coiled wire. Further, then the filament coil electrode
3c is set at the center of the thus-formed electrode.
[0023] A sine-wave oscillating voltage was applied across the discharge tube shown in Fig.
2 under the following conditions:
charged gas : a mixed gas containing argon gas of 6666 Pa (50 torr) and 5 mmg of mercury;
oscillation frequency : 40 kHz; and
ambient temperature : room temperature (15°C)
[0024] The relationship between voltage (V) and discharge current (mA), shown in Fig. 5,
was obtained by gradually raising the voltage (V) from 0 V.
[0025] As is apparent from Fig. 5, glow discharge was started between the opposite sintered
electrodes at 400 rmsV, and the filament coil electrodes started discharges at approximately
500 rmsV. Even if the voltage was raised to 500 rmsV or more, a positive discharge
characteristic was maintained between the sintered electrodes. In other words, it
was proved that the glow discharge could be maintained even at a voltage level of
500 rmsV or more. In addition, it was proved that, at a voltage level of 500 rmsV
or more, a negative discharge characteristic could be obtained between the filament
coil electrodes, whereby arc discharge could be maintained.
[0026] As is apparent from the foregoing, since the two kinds of discharge, glow discharge
and arc discharge, are realized within a single discharge tube, very high intensity
of illumination can be achieved. Also, since the filament coil electrodes are heated
by glow discharge, arc discharge can be generated by using a relatively low voltage.
In addition, since the two kinds of electrodes are arranged in a non-contact state,
the sintered metallic electrodes are not heated by the heat generated in the adjacent
filament coil electrodes. Accordingly, since no thermorunway takes place in the sintered
metallic electrodes, glow discharge does not proceed with arc discharge and the glow
discharge can be kept highly stable between the sintered metallic electrodes.
[0027] Each of the filament coil electrodes is coated with an active oxide such as barium,
strontium or the like in order to accelerate emission of thermoelectrons. Accordingly,
particles may be scattered due to evaporation or peeling caused by ion bombardment
or heating and fall on the inner tube wall of the discharge tube, thereby causing
the shading phenomenon in which dark shades are formed on the inner tube wall of the
discharge tube. However, when the cup-shaped sintered metallic electrode shown in
Fig. 4 is employed, scattered particles stick to the inner wall of the cup-shaped
sintered metallic electrode and the stuck particles or active oxide can be reused.
In addition, since it is possible to prevent the shading phenomenon by suppressing
the phenomenon in which scattered particles stick to the inner tube wall of the discharge
tube, the lifetime of the discharge tube can be improved. The present inventor conducted
a lifetime test with a discharge tube having such electrode assemblies, and the shading
phenomenon was not substantially observed even after running of 10,000 hours or thereabouts.
[0028] Fig. 6 shows another embodiment of the discharge tube of the present invention. This
embodiment is like the discharge tube of Fig. 2 but a top glass plate 1c and a bottom
glass plate 1d have ribs 12a and 12b formed on their facing surface, respectively.
It is possible to obtain a postcard-size surface light source made from a glass plate
with a plate thickness of approximately 4 mm. However, if the size is further increased,
the thickness of the glass plate also increases to an impractical extent. By means,
however, of the ribs 12a and 12b, the strength of each of the top and bottom glass
plates 1c and 1d can be increased to a considerable extent. Accordingly, a surface
light source having a light weight and a considerably large size can be obtained.
[0029] If the gaps A and B between the tips of the ribs 12a and 12b and the inner surfaces
of the opposing glass plates are respectively selected to be approximately 0.5 mm
to 0.1 mm, the discharge impedance in each of the gaps A and B becomes high and the
discharge space is substantially divided into a plurality of small discharge spaces
X, Y and Z. Electrode assemblies E, each of which is similar to that shown in Fig.
4, are respectively arranged at the opposite ends of each of the small discharge spaces
X, Y and Z, whereby a discharge plate is obtained which is constructed as if a plurality
of discharge tubes were arranged side by side. In this arrangement, arc discharge
is reliably produced in each of the small discharge spaces, whereby it is possible
to prevent the phenomenon in which arc discharges are concentrated upon a specific
one of the opposite electrodes (this phenomenon easily occurs at a temperature of
chiefly 5°C or less). Further, since the inner surfaces of the glass plates including
the ribs 12a and 12b are coated with the fluorescent film, the surface portions of
the glass plates corresponding to the respective ribs are not darkened. In addition,
since the area occupied by the fluorescent surface increases owing to the formation
of the ribs, the total intensity of the surface light source rises. In Fig. 9, reference
numeral 13 denotes an end plate made of glass, and the lead wires 8 extend through
the end plates 13 to hold the corresponding electrode assemblies E.
[0030] Preferably, sintered metal is used for the electrodes for glow discharge. Although
intensity is somewhat low, nickel may also be used.
[0031] As is apparent from the foregoing, since the filament coil electrodes are heated
by glow discharge, emission of thermoelectrons is accelerated and rapid lighting (several
tens of seconds) is enabled.
[0032] Since active oxide can be reused and the shading phenomenon can be suppressed, a
lifetime as long as 20,000 hours can be achieved.
[0033] Since glow discharge and arc discharge coexist, a very high intensity of 35,000 nit
or thereabouts can be realized.
[0034] Since the electrodes for arc discharge can be heated by the respective electrode
assemblies themselves, no external preheating device is needed and power consumption
can be reduced to a considerable extent. In addition, the amount of heat generated
can be reduced.
[0035] The electrodes for glow discharge are not forced to the state of arc discharge and
stable discharge can therefore be achieved.
1. A discharge tube comprising:
a tubular member (1), including a tubular wall having opposite closed ends defining
a gas charged space;
first and second electrode assemblies (2c, 3c) respectively disposed at said closed
ends in said gas charged space; and
means for applying an a.c. voltage from an a.c. power source to said first and second
electrode assemblies (2c, 3c); wherein:
each electrode assembly comprises a first, cup-shaped, electrode (2c) having a closed
end, an open end and a central axis, and a second electrode (3c) extending along said
axis, the second electrode (3c) of each electrode assembly of each electrode assembly
including a coating of a thermoelectron emitting material, said electrode assemblies
producing, in use, an arc discharge therebetween;
each cup-shaped electrode (2c) has an outer surface directly facing and open to said
tubular wall; and
each cup-shaped electrode (2c) has an inner surface directly facing the associated
second electrode; characterized in that:
each cup-shaped electrode (2c) is a glow discharge electrode; voltage is applied to
the cup-shaped electrodes (2c) at their closed ends;
each cup-shaped electrode (2c) is electrically connected in parallel with the associated
second electrode (3c); and
said electrode assemblies produce, in use, glow discharge between said cup-shaped
electrodes (2c) and arc discharge between said arc discharge electrodes (3c).
2. A discharge tube as claimed in claim 1, wherein the cup-like electrode (2c) has the
shape of a hollow cylinder with a bottom.
3. A discharge tube as claimed in claim 1, wherein said cup-shaped electrode (2c) has
a curved generatrix.
4. A discharge tube as claimed in claim 3, wherein said outer surface of each cup-shaped
electrode (2c) in entirety faces said tubular wall and said arc electrode (3c) has
a free end disposed within the cup-shaped electrode and completely disconnected therefrom.
1. Entladungsröhre, umfassend
ein Rohrstück (1), umfassend eine Rohrwand mit verschlossenen gegenüberliegenden Stirnseiten,
die einen Gasladungsraum begrenzen;
eine erste und eine zweite Elektrodenanordnung (2c, 3c), die jeweils an den verschlossenen
Stirnseiten in dem Gasladungsraum angeordnet sind;
Mittel zum Anlegen einer Wechselspannung von einer Wechselspannungsquelle an die erste
und die zweite Elektrodenanordnung (2c, 3c); wobei:
jede Elektrodenanordnung eine erste napfförmige Elektrode (2c) mit einem geschlossenen
Ende, einem offenen Ende und einer Mittelachse und eine zweite Elektrode (3c), die
sich entlang dieser Achse erstreckt, umfaßt, wobei die zweite Elektrode (3c) einer
jeden Elektrodenanordnung eine Beschichtung aus einem Thermoelektronen aussendenden
Material umfaßt, wobei die Elektrodenanordnungen im Einsatz eine dazwischen angeordnete
Bogenentladung erzeugen;
jede napfförmige Elektrode (2c) eine äußere Oberfläche aufweist, die direkt der Rohrwand
zugekehrt und zu dieser hin offen ist;
jede napfförmige Elektrode (2c) eine innere Oberfläche aufweist, die direkt der zugehörigen
zweiten Elektrode zugekehrt ist; dadurch gekennzeichnet, daß:
jede napfförmige Elektrode (2c) eine Glimmentladungselektrode ist;
Spannung an die napfförmigen Elektroden (2c) an ihren geschlossenen Enden angelegt
wird;
jede napfförmige Elektrode (2c) elektrisch parallel zu der zugehörigen zweiten Elektrode
(3c) angeschlossen ist; und
die Elektrodenanordnungen im Einsatz Glimmentladung zwischen den napfförmigen Elektroden
(2c) und Bogenentladungen zwischen den Bogenentladungselektroden (3c) erzeugen.
2. Entladungsröhre nach Anspruch 1, bei der die napfförmige Elektrode (2c) die Gestalt
eines Hohlzylinders mit einem Unterteil aufweist.
3. Entladungsröhre nach Anspruch 1, bei der die napfförmige Elektrode (2c) eine gekrümmte
Mantellinie aufweist.
4. Entladungsröhre nach Anspruch 3, bei der die äußere Oberfläche der napfförmigen Elektrode
(2c) in ihrer Gesamtheit der Röhrenwand zugekehrt ist, und die Bogenelektrode (3c)
ein in der napfförmigen Elektrode angeordnetes und vollkommen davon losgelöstes getrenntes
Ende aufweist.
1. Tube à décharge comprenant :
un élément tubulaire (1), incluant une paroi tubulaire ayant des extrémités opposées
fermées définissant un espace rempli de gaz ;
des premier et second ensembles formant électrodes (2c, 3c) respectivement disposés
au niveau desdites extrémités fermées dans ledit espace rempli de gaz ; et
des moyens pour appliquer une tension alternative, en provenance d'une source de courant
alternatif, auxdits premier et second ensembles formant électrodes (2c, 3c) ; dans
lesquels :
chaque ensemble formant électrode comprend une première électrode (2c) en forme de
coupelle, ayant une extrémité fermée, une extrémité ouverte et un axe central, et
une seconde électrode (3c) s'étendant le long dudit axe, la seconde électrode (3c)
de chaque ensemble formant électrode comprenant un revêtement d'un matériau émettant
des électrons thermiques, lesdits ensembles formant électrode produisant, en utilisation,
une décharge d'arc entre eux ;
chaque électrode en forme de coupelle (2c) a une surface extérieure faisant directement
face et ouverte sur ladite paroi tubulaire ; et
chaque électrode en forme de coupelle (2c) a une surface intérieure faisant directement
face à la seconde électrode associée ; caractérisé en ce que :
chaque électrode en forme de coupelle (2c) est une électrode à décharge luminescente
;
la tension est appliquée aux électrodes en forme de coupelle (2c) à leurs extrémités
fermées ;
chaque électrode en forme de coupelle (2c) est électriquement reliée en parallèle
à la seconde électrode associée (3c) ; et
lesdits ensembles formant électrode produisent, en utilisation, une décharge luminescente
entre lesdites électrodes en forme de coupelle (2c) et une décharge d'arc entre lesdites
électrodes à décharge d'arc (3c).
2. Tube à décharge selon la revendication 1, dans lequel l'électrode en forme de coupelle
(2c) a la forme d'un cylindre creux muni d'un fond.
3. Tube à décharge selon la revendication 1, dans lequel ladite électrode en forme de
coupelle (2c) a une génératrice courbe.
4. Tube à décharge selon la revendication 3, dans lequel ladite surface extérieure de
chaque électrode en forme de coupelle (2c) fait face, dans sa totalité, à ladite paroi
tubulaire et ladite électrode d'arc (3c) a une extrémité libre, disposée à l'intérieur
de l'électrode en forme de coupelle et totalement déconnectée de cette dernière.