Background to the Invention
[0001] This invention relates to cathode ray tubes (CRTs) according to the first part of
claim 1.The invention is particularly, although not exclusively, concerned with CRTs
for use in monitors and display terminals for data processing apparatus.
[0002] The problem of electric field emissions from CRTs is of increasing concern, and regulations
are being introduced in some countries, specifying the maximum permissible amounts
of such emissions.
[0003] Electric field emissions from a CRT comprise both DC and AC components.
[0004] The DC electric field generated on the surface of a CRT screen is relatively easy
to reduce to acceptable levels by the incorporation of a conductive coating, available
from all tube manufactures. However, 'normal' conductive coatings are high resistance
and cannot cope with high levels of AC field. Very low Ohmic coatings or screens are
available but at high cost.
[0005] The majority of AC electric field is produced by capacitive coupling between the
scan coils (deflection yoke) and the aluminised internal final anode layer of the
CRT. (This layer is connected to the Extra High Tension supply, around 10kV to 17kV
for normal monochrome tubes). This capacitance is quite significant, being in the
order of 100pF for a 14" CRT with a 20mm neck. Scan voltages of several hundred at
line rate (30kHz to around 80kHz or more) and tens of volts at frame rate (between
50 and 100Hz) with fast edges during flyback, are capacitively coupled and modulate
the aluminised layer inside the tube. This layer, though very thin covers the tube
front. As the EHT source impedance is fairly high, substantial AC voltage can be induced
at line and frame rate in this layer.
[0006] FR-A- 2 379 906 describes a CRT with a guard screen according to the first part of
claim 1, comprising a continuous conductive layer on the outside of the CRT envelope.
The guard screen extends between a deflection yoke and an internal conductive layer.
Such a guard layer would reduce the capacitive coupling between the deflection yoke
and the internal conductive layer. However, forming the guard screen as a continuous
layer allows eddy currents to be induced in the layer by the deflection yoke, thus
giving rise to heat generation.
[0007] US-A- 4 392 083 describes a radiation shield for the neck of a CRT. The shield consists
of a cylindrical sleeve which fits over the neck of the CRT envelope. The sleeve is
formed of thin insulating material with a pattern of parallel conductors on its inner
and outer surfaces, the conductors on the two surfaces being offset so as to provide
a continuous covering around the sleeve. Such a sleeve is easy to fit on the CRT and
reduces the eddy current problem. However, such a cylindrical sleeve can only be used
around the neck of the CRT, and is not suitable for use around the flared portion,
to provide a screen between the deflection yoke and the internal conductive layer.
[0008] The object of the invention is to provide a way of overcoming all the above problems.
Summary of the Invention
[0009] According to the invention there is provided a cathode ray tube (CRT) comprising:
an envelope (10) having a neck portion (12) and a flared portion (14);
an internal conductive anode layer (20) extending over the inside of said flared portion;
a deflection yoke (22) surrounding said envelope; and
a conductive guard screen (24) comprising a cylindrical portion (32) surrounding said
neck portion (12) and a flared portion (34) surrounding said flared portion (14) of
the envelope, said guard screen extending between said deflection yoke (22) and said
internal conductive anode layer (20),
characterised in that
said conductive guard screen (24) is formed from a flexible circuit wrapped around
the outside of said envelope, said flexible circuit comprising an insulating substrate
(26) with a plurality of conductive tracks, said tracks comprising:
a set of originally parallel conductive tracks (32) which, when the circuit is wrapped
around the envelope, form a cylindrical portion of the guard screen around said neck
portion of the envelope, and
at least one set of originally concentric, arc-shaped or radially arranged tracks
(34) which, when the circuit is wrapped around the envelope, form a flared portion
of the guard screen around said flared portion of the envelope.
Brief Description of the Drawings
[0010] Figure 1 is a sectional elevational view of a CRT embodying the invention.
[0011] Figure 2 is a cross-sectional view showing the guard screen in more detail.
[0012] Figure 3 shows a typical conductive pattern on the guard screen.
Description of an Embodiment of the Invention
[0013] One CRT in accordance with the invention will now be described by way of example
with reference to the accompanying drawings.
[0014] Referring to Figure 1, the CRT comprises an evacuated glass envelope 10 having a
cylindrical neck position 12, a flared portion 14 and a face 16. An electron gun 18
is positioned in the neck 12 of the tube, and the face 16 is coated with a phosphor,
in the conventional manner.
[0015] The envelope 10 has an internal aluminised layer 20 on its inner surface, extending
from the end of the neck 12, up the flared portion 14, and over the screen 16.
[0016] The CRT has scan coils 22 positioned around the neck 12, for deflecting the electron
beam from the electron gun 18.
[0017] A conductive guard screen 24 is positioned around the CRT, between the scan coils
22 and the envelope 10. This screen is connected, in use, to ground potential. The
guard screen 24 thus prevents or reduces the voltages induced between the coils 22
and the internal layer 20, and hence reduces AC emissions from the face 16 of the
CRT. It has been found that a reduction in the order of 90-95% of the AC emissions
can be achieved by use of the guard screen.
[0018] Referring to Figure 2, the guard screen 24 is formed from a flexible printed circuit,
wrapped around the envelope 10. The flexible printed circuit comprises a flexible
insulating substrate 26, having first and second conductive patterns 28, 30 on opposite
sides of the substrate. The substrate 26 may comprise a polyimide film such as for
example KAPTON®, having a thickness of 50 microns. Alternatively, the substrate may
comprise a KAPTON base with insulating coating layers, with a total thickness of 150
microns.
[0019] Each of the conductive patterns comprises a set of parallel fingers, the fingers
of the two patterns being interdigitate so that, the fingers of one set are positioned
over the gaps between the fingers of the other set. Thus, between them, the two sets
of fingers provide complete screening, without any gaps.
[0020] The reason why the screen is formed in this way, rather than as a continuous conductive
layer, is to prevent or reduce eddy currents in the screen, induced from the scan
coils, which would generate excessive heat and cause potential failure of the scan
circuits and associated components.
[0021] Referring now to Figure 3, this shows a typical conductive pattern on one side of
the substrate. The pattern on the other side is similar, but has its conductors offset
to produce the interdigitated arrangement.
[0022] As can be seen in Figure 3, each pattern includes a set of parallel fingers 32, which,
when the flexible printed circuit is wrapped around the CRT, form a cylindrical portion
of the guard screen around the neck of the envelope. Each pattern also includes two
sets of concentric, arc-shaped fingers 34 which, when the guard screen is in position,
form a conical portion, around the flare of the envelope.
[0023] Other patterns are possible. For example, the arc-shaped fingers may be replaced
by radial fingers.
[0024] The width of each finger preferably does not exceed approximately twice the line
frequency AC signal penetration depth, otherwise the scan energy will be dissipated
in heat generated from eddy current loss. The finger width in millimetres may be calculated
from :-

Where
- W
- = Maximum finger width.
- k
- = Constant for material, for copper k = 72 @ 70°C, 75 @ 100°C.
- f
- = Maximum operating frequency.
[0025] Typically, the maximum finger width lies in the range 0.5mm to 0.8mm.
[0026] The fingers do not have to be copper (ie standard PCB conductive coating), but could
be formed in a conductive ink from a screen printing technique. Using this method
a very thin, flexible guard screen could be manufactured in quantity and at competitive
cost. The screen must be thin in order to fit between the scan coils and CRT neck,
and flexible to form a cone around the CRT flare.
[0027] A further advantage of fitting a screen between the tube and scan coils is the improved
immunity to the scan circuitry to tube 'flash over'. This occurs when the EHT in the
tube final anode flashes across to other tube electrodes (a well known phenomenon).
Capacitive coupling to the scan coils can cause failure of the electronic drive circuitry
but with a screen fitted as described above, this problem would be vastly reduced.
1. A cathode ray tube (CRT) comprising:
an envelope (10) having a neck portion (12) and a flared portion (14);
an internal conductive anode layer (20) extending over the inside of said flared portion;
a deflection yoke (22) surrounding said envelope; and
a conductive guard screen (24) comprising a cylindrical portion (32) surrounding said
neck portion (12) and a flared portion (34) surrounding said flared portion (14) of
the envelope, said guard screen extending between said deflection yoke (22) and said
internal conductive anode layer (20),
characterised in that
said conductive guard screen (24) is formed from a flexible circuit wrapped around
the outside of said envelope, said flexible circuit comprising an insulating substrate
(26) with a plurality of conductive tracks, said tracks comprising:
a set of originally parallel conductive tracks (32) which, when the circuit is wrapped
around the envelope, form a cylindrical portion of the guard screen around said neck
portion of the envelope, and
at least one set of originally concentric, arc-shaped or radially arranged tracks
(34) which, when the circuit is wrapped around the envelope, form a flared portion
of the guard screen around said flared portion of the envelope.
2. A CRT according to Claim 1 wherein said conductive tracks are disposed on both sides
of said insulating substrate (26), the tracks (28) on one side of the substrate being
interdigitated with the tracks (30) on the other side of the substrate.
1. Kathodenstrahlröhre (CRT) mit
einem Röhrenkolben (10), einem Halsteil (12) und einem sich nach außen erweiternden
Röhrenteil (14),
einer inneren leitenden Anodenschicht (20), die sich über die Innenseite des sich
nach außen erweiternden Röhrenteils erstreckt,
ein Ablenkjoch (22), das das Gehäuse umgibt, und
einen stromleitenden Schutzschirm (24), der einen den Halsteil (12) umgebenden zylindrischen
Teil (32) und einen sich nach außen erweiternden, den Teil (14) des Röhrenkolbens
umschließenden Teil (34) aufweist, wobei der Schutzschirm sich zwischen dem Ablenkjoch
(22) und der inneren stromleitenden Anodenschicht (20) erstreckt,
dadurch gekennzeichnet,
daß der stromleitende Schutzschirm (24) aus einer flexiblen Schaltung gebildet ist,
die um die Außenseite des Röhrenkolbens herum angeordnet ist und eine isolierende
Unterlage (26) mit einer Vielzahl von stromleitenden Bahnen aufweist, wobei die Bahnen
aufweisen:
einen Satz von ursprünglich parallelen stromleitenden Bahnen (32), die, wenn die Schaltung
um den Röhrenkolben herum angeordnet wird, einen zylindrischen Teil des Schutzschirmes
um den Halsteil des Gehäuses bilden, und
mindestens einen Satz von ursprünglich konzentrischen, bogenförmig oder radial angeordneten
Bahnen (34), die, wenn die Schaltung um den Röhrenkolben herum angeordnet wird, einen
sich nach außen erweiternden Teil des Schutzschirmes um den sich nach außen erweiternden
Teil des Röhrenkolbens bilden.
2. CRT-Röhre nach Anspruch 1, bei er die stromleitenden Bahnen auf beiden Seiten der
isolierenden Unterlage (26) ausgebildet sind, wobei die Bahnen (28) auf einer Seite
der Unterlage mit den Bahnen (30) auf der anderen Seite der Unterlage ineinandergreifend
angeordnet sind.
1. Tube cathodique (CRT) comprenant :
une enveloppe (10) possédant une partie col (12) et une partie évasée (14);
une couche d'anode conductrice interne (20) s'étendant sur l'intérieur de ladite partie
évasée ;
un bloc de déviation (22) entourant ladite enveloppe ; et
un écran de garde conducteur (24) comprenant une partie cylindrique (32) qui entoure
ladite partie col (12) et une partie évasée (34) qui entoure ladite partie évasée
(14) de l'enveloppe, ledit écran de garde s'étendant entre ledit bloc de déviation
(22) et ladite couche d'anode conductrice interne (20),
caractérisé en ce que :
ledit écran de garde conducteur (24) est formé à partir d'un circuit souple enroulé
autour de l'extérieur de ladite enveloppe, ledit circuit souple comprenant un substrat
isolant (26) doté d'une pluralité de pistes conductrices, lesdites pistes comprenant
:
un groupe de pistes conductrices initialement parallèles (32) qui, lorsque le circuit
est enroulé autour de l'enveloppe, forment une partie cylindrique de l'écran de garde
autour de ladite partie col de l'enveloppe, et
au moins un groupe de pistes initialement concentriques, en forme d'arcs ou radialement
disposées, (34) qui, lorsque le circuit est enroulé autour de l'enveloppe, forment
une partie évasée de l'écran de garde autour de ladite partie évasée de l'enveloppe.
2. Tube cathodique selon la revendication 1, où lesdites pistes conductrices sont disposées
sur les deux côtés dudit substrat isolant (26), les pistes (28) qui se trouvent d'un
côté du substrat étant en position interdigitée par rapport aux pistes (30) se trouvant
sur l'autre côté du substrat.