(19)
(11) EP 0 823 723 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
12.11.2003 Bulletin 2003/46

(21) Application number: 96112723.0

(22) Date of filing: 07.08.1996
(51) International Patent Classification (IPC)7H01J 29/76

(54)

Cathode ray tube displays having saddle-type deflecting coils

Kathodenstrahlröhrenanzeige mit Ablenkeinheit vom Satteltyp

Dispositif d'affichage à tube à rayons cathodiques avec bobines de deflexion du type à selle


(84) Designated Contracting States:
DE FR GB IT NL SE

(43) Date of publication of application:
11.02.1998 Bulletin 1998/07

(73) Proprietor: MATSUSHITA ELECTRIC INDUSTRIAL CO., LTD.
Kadoma-shi, Osaka (JP)

(72) Inventors:
  • Honda, Masanobu
    Osaka 563-02 (JP)
  • Ose, Toshio
    Osaka-shi, Osaka 552 (JP)

(74) Representative: Stippl, Hubert, Dipl.-Ing. 
Hafner & Stippl, Patentanwälte, Schleiermacherstrasse 25
90491 Nürnberg
90491 Nürnberg (DE)


(56) References cited: : 
EP-A- 0 424 888
EP-A- 0 700 067
EP-A- 0 424 946
   
  • PATENT ABSTRACTS OF JAPAN vol. 010, no. 011 (E-374), 17 January 1986 & JP 60 175345 A (HITACHI SEISAKUSHO KK), 9 September 1985,
  • PATENT ABSTRACTS OF JAPAN vol. 009, no. 047 (E-299), 27 February 1985 & JP 59 186239 A (MATSUSHITA DENSHI KOGYO KK), 23 October 1984,
  • PROCEEDINGS OF THE SID, vol. 30, no. 1, 1 January 1989, pages 29-32, XP000115923 TOSHIO KURAMOTO ET AL: "THE SSC DEFLECTION YOKE FOR IN-LINE COLOR CRTS"
   
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).


Description


[0001] This invention relates to cathode ray tube displays having saddle-type deflecting coils, more specifically, cathode ray tube displays improved to reduce temperature rise of their deflection yokes.

[0002] Recently, the amount of information displayed on monitors is increasing as the demands of operating systems such as Windows (the operating system by Microsoft) increase. As a result, higher display resolutions are required. For example, resolution of 1024× 768 dots has been generalized for personal computers, and resolution of 1600×1028 dots has become more popular for work station usages. Displays having a white background are frequently used in Windows. As a result, the average luminance of the screen increases and flickers often become noticiable. Therefore, the vertical deflection frequency is generally predetermined to be at least 70Hz while the conventional frequency is 60Hz.

[0003] As the resolution becomes higher and the vertical deflection frequency increases, the horizontal deflection frequency inevitably rises. As a result, the increased temperature of the deflection yoke attached to a cathode ray tube display becomes problematic.

[0004] Several methods to reduce such a temperature rise have been disclosed in various references including Published Unexamined Japanese Patent Application No. Sho 59-186239. For example, reducing the diameter of the bare wire which forms the saddle-type coils of the deflection yoke is to no more than 0.15mm reduces the temperature rise due to skin effect. Also, temperature rise due to eddy current loss can be reduced by using litz wires.

[0005] However, several drawbacks are found in the above-mentioned methods of forming saddle-type coils. For instance, the wires are easily broken in the winding process, or the cost of the wire material is prohibitive.

[0006] EP-A-0 424 946 A2 refers to a color cathode ray tube apparatus having reflection means in form of saddle-type horizontal and saddle-type vertical coils. The ray tube apparatus has an extended cylindrical neck accomodating an electron gun for outputting three in-line electron beams. The deflection means are arranged to extend on outer surfaces of said neck and the funnel. The length of the saddle-type horizontal deflection coil in a direction to the tube axis should not be less than 90 mm to improve the heat radiation characteristics.

[0007] Patent abstracts of JP, Vol. 10, no. 11 (E-374) & JP-A-60175345 discloses a deflection yoke which has a saddle-type horizontal deflection coil. To increase the coil surface area for improving the radiation efficiency it is proposed to arrange the conductive part of the frontal end or the rear end of the horizontal deflection coil as saddle shape on the core while bending the same in the centre direction of the deflection yoke outside the core.

[0008] This invention aims to provide cathode ray tube displays which reduce the temperature rise of the deflection yokes without using either extra-fine wires or litz wires. For this purpose, the radiation of heat from the saddle-type coils is increased.

[0009] In order to achieve this goal, the cathode ray tube display of this invention according to claim 1 comprises a cathode ray tube main body and a deflection yoke located at the rear periphery of the main body. The deflection yoke comprises a saddle-type horizontal coil, an insulating frame located outside the saddle-type horizontal coil, a vertical coil and a ferrite core located outside the insulating frame. The saddle -type horizontal coil is partially exposed from the screen-side end face of the ferrite core toward the screen. The first structural characteristic of this invention is that the surface area of the exposed portion of the saddle-type horizontal coil is predetermined to be from 100 cm2 to 298 cm2.

[0010] The vertical coil can be a saddle-type vertical coil or a toroidal coil.

[0011] The saddle-type vertical coil is also partially exposed from the screen-side end face of the ferrite core toward the screen. The second structural characteristic of this invention according to claim 3 is that the surface area of the exposed portion of the saddle-type or toroidal vertical coil is predetermined to be from 55 cm2 to 185 cm2.

[0012] According to the first or second structure, the exposed portion of either the saddle-type horizontal coil or the saddle-type vertical coil is increased so that the heat radiation effect is improved. Therefore, the temperature rise of the deflection yoke can be reduced without using either extra-fine wires or litz wires. The details are as follows.

[0013] When a deflection yoke operates, its energy loss changes into heat, thus the temperature rises. The temperature begins to rise as the operation starts, and reaches equilibrium after a predetermined amount of time. The energy loss of the saddle-type coils is very high, and is the main factor in the temperature rise of the deflection yoke. As the horizontal deflection frequency becomes high, the ohmic loss due to the skin effect of the wires forming the saddle-type coils and eddy current loss on the saddle-type coils increase. As a result, the temperature rise of the deflection yoke becomes remarkable. In order to reduce such a temperature rise, several methods have been proposed. For example, the heating-up is reduced by decreasing the ohmic loss and the eddy current loss of the saddle-type coils. Another method is to promote the heat radiation from the deflection yoke (saddle-type coils). This invention focuses on the latter method.

[0014] The temperature of the saddle-type coils of the deflection yoke changes corresponding to time. In the following equation, "Q" indicates the heat which the saddle-type coils generate in a unit time. "W" indicates the mass of the saddle-type coils. "A" indicates the surface area of the saddle-type coils. "a" indicates the heat radiation coefficient. "c" indicates the specific heat of the saddle-type coils, and "θ" indicates the temperature rise. The heat generated during the time dt is Qdt. This heat partially raises the temperature of the saddle-type coils by dθ , and the rest of the heat is radiated from the surface of the saddle-type coils during the time dt. Therefore, the heat equilibrium can be represented by equation (1).



[0015] The following equation (2) is obtained by solving the equation (1) where the initial condition of the temperature rise θ is zero.



[0016] Here, θf indicates the final temperature of the saddle-type coils and T indicates time constant, both of which are obtained from the following equation (3) or (4).





[0017] When the radiation coefficient "a" is fixed, Q should be decreased or A should be increased compared to equation (3) in order to reduce the temperature rise of the saddle-type coils. Decreasing Q means to reduce the ohmic loss or eddy current loss of the saddle-type coils, or it means to decrease the consumption current by improving the deflection sensitivity of the saddle-type coils. Increasing "A" means to enlarge the surface area of the saddle-type coils.

[0018] Heat convection phenomenon should also be taken into consideration in improving the heat radiation effect of the saddle-type coils. As shown in FIG. 3, when an object of t°C is in air of to °C (t > to), the air near the surface of the object receives the object's heat by contact and radiation, and becomes lighter as its temperature rises. Thus, convections are generated so that the air takes away the heat. "ac" indicates the heat which is taken away from a unit of surface area in a unit time due to this heat convection. The value of ac becomes bigger as the difference (t - to) between the temperatures of the object and that of the air is greater (cf. equation (5)).



[0019] In this equation, C indicates the constant and H indicates the height of the object. Therefore, the air contacting with the object should be as cool as possible so that the temperature rise of the saddle-type coils can be reduced.

[0020] Based on such reasons, the saddle-type coils of the cathode ray tube display of this invention improves the heat radiation effect. For this purpose, the surface area of the deflection yoke which is not surrounded with the ferrite core is enlarged so that the heat radiating surface area is increased and the heat convection is promoted.

[0021] FIG. 1 is a plan view of a cathode ray tube display of the first embodiment of this invention.

[0022] FIG. 2 is a side view of a cathode ray tube display of the second embodiment of this invention.

[0023] FIG. 3 is a schematic view describing heat radiation due to heat convection.

[0024] FIG. 4 is a graph showing the relation between the exposed surface area of the saddle-type horizontal coil and the temperature rise of the same coil. The saddle-type horizontal coil is partially exposed from the screen-side end face of the ferrite core of the deflection yoke toward the screen.

[0025] FIG. 5 is a graph showing the relation between the exposed surface area of the saddle-type vertical coil and the temperature rise of the same coil. The saddle-type vertical coil is partially exposed from the screen-side end face of the ferrite core of the deflection yoke toward the screen.

[0026] The embodiments of this invention are explained below by referring to the drawings.

[0027] FIG. 1 is a plan view of a 41cm(17") • 90° cathode ray tube display according to the first embodiment of this invention. A cathode ray tube main body 1 comprises a glass panel 2 and a glass funnel 3 connected to the rear of the glass panel 2. An electron gun (not shown) is attached to the rear of the glass funnel 3. A deflection yoke 8 is attached to the rear periphery of the glass funnel 3. The deflection yoke 8 comprises a saddle-type horizontal coil 4, an insulating frame 5 located outside the saddle-type horizontal coil 4, a saddle-type vertical coil 6 located outside the insulating frame 5, and a ferrite core 7 located outside the saddle-type vertical coil 6. The saddle-type coils (4, 6) are formed by winding a bundle of normal wires (not litz wires) of 0.25mm diameter. Numeral 9 indicates the screen-side end face of the ferrite core 7. The saddle-type horizontal coil is partially exposed from the end face 9 toward the screen, and the surface area of the exposed part is set to be 185cm2.

[0028] FIG. 4 indicates the relation between the exposed surface area SH of the saddle-type horizontal coil 4 and the temperature rise ΔtH of the same coil. The shapes and positions of the insulating frame 5, the saddle-type vertical coil 6 and the ferrite core 7 are illustrated in FIG. 1. The deflection yoke 8 is operated such that the horizontal deflecting frequency is 82kHz, the vertical deflection frequency is 71Hz, anode voltage is 25kV, and the raster size is 309 × 232mm. The temperature rise ΔtH of the saddle-type horizontal coil 4 is defined by the difference between the highest temperature of the saddle-type horizontal coil 4 and the average ambient temperature around the deflection yoke 8. The surface area SH is varied by fixing the wire winding angle and extending the coil to the screen side.

[0029] According to FIG. 4, the ΔtH reducing effect appears when SH is 100cm2 or more. The value of ΔtH is the smallest when SH is 185cm2, and later the value of ΔtH increases. These results occur when the coil length of the saddle-type horizontal coil 4 is extended to the screen side in order to increase SH. As a result, the deflection center is shifted to the screen side and the deflection sensitivity is deteriorated, thus the ΔtH reducing effect is decreased. When SH exceeds 298cm2, the ΔtH reducing effect is lost, Therefore, the surface area SH is predetermined to be 185cm2 in this embodiment. However, the temperature rise ΔtH of the saddle-type horizontal coil 4 can be reduced if SH ranges from 100 to 298cm2.

[0030] FIG. 2 is a side view of a 41cm(17") • 90° cathode ray tube display according to the second embodiment of this invention. Similar to the first embodiment, a cathode ray tube main body 10 comprises a glass panel 11 and a glass funnel 12 connected to the rear of the glass panel 11. An electron gun (not shown) is attached to the rear of the glass funnel 12. A deflection yoke 17 is attached to the rear periphery of the glass funnel 12. The deflection yoke 17 comprises a saddle-type horizontal coil 13, an insulating frame 14 located outside the saddle-type horizontal coil 13, a saddle-type vertical coil 15 located outside the insulating frame 14, and a ferrite core 16 located outside the saddle-type vertical coil 15. The saddle-type coils (13, 15) are formed by winding a bundle of normal wires (not litz wires) of 0.25mm diameter. Numeral 18 indicates the screen-side end face of the ferrite core 16. The saddle-type vertical coil is partially exposed from the end face 18 toward the screen, and the surface area of the exposed part is predetermined to be 115cm2.

[0031] FIG. 5 indicates the relationship between the exposed surface area Sv of the saddle-type vertical coil 15 and the temperature rise Δtv of the same coil. The shapes and positions of the insulating frame 14, the saddle-type horizontal coil 13 and the ferrite core 16 are shown in FIG. 2. The deflection yoke 17 is operated such that the horizontal deflecting frequency is 82kHz, the vertical deflection frequency is 71Hz, anode voltage is 25kV, and the raster size is 309×232mm. The temperature rise Δtv of the saddle-type vertical coil 15 is defined by the difference between the highest temperature of the saddle-type vertical coil 15 and the average ambient temperature around the deflection yoke 17. The surface area Sv is varied by fixing the wire winding angle and extending the coil to the screen side.

[0032] According to FIG. 5, the Δtv reducing effect appears when Sv is 55cm2 or more. The value of Δtv is lowest when Sv is 115cm2. Between an Sv of 115cm2 and 185cm2 the value of Δtv continues to increase until, at 185cm2, Δtv again decreases. This result occurs because eddy current loss due to the increase of interlinkage between the horizontal deflection magnetic field and the saddle-type vertical coil 15 as Sv becomes bigger. The interlinkage and the eddy current loss are saturated if the value of Sv exceeds 185cm2. When the value of Sv exceeds 185cm2, the saddle-type vertical coil 15 becomes too large, and the direct current resistance is increased. Such equipment cannot be practically used.

[0033] Therefore, the surface area Sv is set to be 115cm2 in this embodiment. However, the temperature rise Δtv of the saddle-type vertical coil 15 can be reduced if Sv ranges from 55 to 185cm2.

[0034] The deflection yoke of each embodiment explained above comprises a saddle-type vertical coil. However, the vertical coil can be replaced by a troidal type coil. A troidal type vertical coil can be wound on the ferrite core.

[0035] As mentioned above, the cathode ray tube display of this invention can improve its heat radiation effect and reduce temperature rise. For this purpose, the surface area of the saddle-type coil part which is exposed from the screen-side end face of the ferrite core of the deflection yoke toward the screen is enlarged in order to create the effect of expanding radiation surface area and convection of the heat. Therefore, neither expensive extra-fine wires nor litz wires are necessary for these saddle-type coils. In addition, the breakage of wires can be reduced during the coil winding process.


Claims

1. A cathode ray tube display comprising:

- a cathode ray tube display main body (1, 10) having a glass panel (2, 11) and a glass funnel (3, 12) connected to the rear of the glass panel (2, 11);

- an electron gun attached a rear section of said main body (1, 10); and

- a deflection yoke (8, 17) arranged in a rear periphery portion of said main body (1, 10) which comprises a saddle-type horizontal coil (4, 13), an insulating frame (5, 14) located outside said saddle-type horizontal coil (4, 13), and a vertical coil and ferrite core (7, 16) located outside said insulating frame (5, 14), characterized in that a surface area of said saddle-type horizontal coil (4, 13) exposed from a screen-side end face of said ferrite core (7, 16) is within a range of 100 to 298 cm2, and the deflection yoke (8) is operable such, that the horizontal deflection frequency is 82 kHz, the vertical deflection frequency 71 kHz and the anode voltage is 25 kV.


 
2. Cathode ray tube display according to claim 1, characterized in that the vertical coil is a saddle-type vertical coil (6, 15) or a toroidal coil.
 
3. A cathode ray tube display comprising:

- a cathode ray tube display main body (1, 10) having a glass panel (2, 11) and a glass funnel (3, 12) connected to the rear of the glass panel (2, 11);

- an electron gun attached to a rear section of the main body (1, 10); and

- a deflection yoke (8, 17) arranged in a rear periphery portion of said main body (1, 10), which comprises a saddle-type horizontal coil (4, 13), an insulating frame (5, 14) located outside said saddle-type horizontal coil (4, 13), and a saddle-type vertical coil (6, 15) or toroidal vertical coil and ferrite core (7, 16) located outside said insulating frame (5, 14), characterized in that a surface area of said saddle-type vertical coil (6, 15) or toroidal vertical coil exposed from a screen-side end face of said ferrite core (7, 16) is within a range of 55 to 185 cm2 and the deflection yoke (8) is operable such, that the horizontal deflection frequency is 82 kHz, the vertical deflection frequency 71 kHz and the anode voltage is 25 kV.


 


Ansprüche

1. Kathodenstrahlröhrendisplay, das folgendes umfaßt:

- einen Kathodenstrahlröhrendisplay-Hauptkörper (1, 10) mit einer Glasplatte (2, 11) und einem Glastrichter (3, 12), der mit dem hinteren Teil der Glasplatte (2, 11) verbunden ist;

- eine Elektronenkanone, die mit einem hinteren Abschnitt des Hauptkörpers (1, 10) verbunden ist; und

- ein in einem hinteren Peripherieteil des Hauptkörpers (1, 10) angeordnetes Ablenkjoch (8, 17), das folgendes umfaßt: eine sattelartige Horizontalspule (4, 13), einen Isolierrahmen (5, 14), der außerhalb der sattelartigen Horizontalspule (4, 13) angeordnet ist, und eine Vertikalspule und einen Ferritkern (7, 16), die außerhalb des Isolierrahmens (5, 14) angeordnet sind, dadurch gekennzeichnet, daß ein Flächeninhalt der sattelartigen Horizontalspule (4, 13), der von einer schirmseitigen Stirnfläche des Ferritkerns (7, 16) freiliegt, im Bereich zwischen 100 und 298 cm2 liegt, und das Ablenkjoch (8) derart betrieben werden kann, daß die Horizontalablenkfrequenz 82 kHz, die Vertikalablenkfrequenz 71 kHz und die Anodenspannung 25 kV betragen.


 
2. Kathodenstrahlröhrendisplay nach Anspruch 1, dadurch gekennzeichnet, daß die Vertikalspule eine sattelartige Vertikalspule (6, 15) oder eine Ringspule ist.
 
3. Kathodenstrahlröhrendisplay, das folgendes umfaßt:

- einen Kathodenstrahlröhrendisplay-Hauptkörper (1, 10) mit einer Glasplatte (2, 11) und einem Glastrichter (3, 12), der mit dem hinteren Teil der Glasplatte (2, 11) verbunden ist;

- eine Elektronenkanone, die mit einem hinteren Abschnitt des Hauptkörpers (1, 10) verbunden ist; und

- ein in einem hinteren Peripherieteil des Hauptkörpers (1, 10) angeordnetes Ablenkjoch (8, 17), das folgendes umfaßt: eine sattelartige Horizontalspule (4, 13), einen Isolierrahmen (5, 14), der außerhalb der sattelartigen Horizontalspule (4, 13) angeordnet ist, und eine sattelartige Vertikalspule (6, 15) oder ringförmige Vertikalspule und einen Ferritkern (7, 16), die außerhalb des Isolierrahmens (5, 14) angeordnet sind, dadurch gekennzeichnet, daß ein Flächeninhalt der sattelartigen Vertikalspule (6, 15) oder der ringförmigen Vertikalspule, der von einer schirmseitigen Stirnfläche des Ferritkerns (7, 16) freiliegt, im Bereich zwischen 55 und 185 cm2 liegt, und das Ablenkjoch (8) derart betrieben werden kann, daß die Horizontalablenkfrequenz 82 kHz, die Vertikalablenkfrequenz 71 kHz und die Anodenspannung 25 kV betragen.


 


Revendications

1. Affichage à tube à rayons cathodiques comprenant :

- - un corps principal d'affichage à tube à rayons cathodiques (1, 10) comprenant un panneau de verre (2, 11) et un tube de verre (3, 12) connectés à l'arrière du panneau de verre (2, 11) ;

- un canon à électrons fixé à une section arrière dudit corps principal (1, 10) ; et

- un collier de déviation (8, 17) disposé dans une partie de périphérie arrière dudit corps principal (1, 10) qui comprend une bobine horizontale du type selle (4, 13), un cadre isolant (5, 14) passé à l'extérieur de ladite bobine horizontale du type selle (4, 13) et une bobine verticale et un noyau en ferrite (7, 16) placé à l'extérieur dudit cadre isolant (5, 14), caractérisé en ce que une aire surfacique de la bobine horizontale du type selle (4, 13) exposée depuis une phase d'extrémité côté écran dudit noyau de ferrite (7, 16) est à l'intérieur d'une gamme de 100 à 298 cm2, et le collier de déviation (8) peut être mis en oeuvre de sorte que, la fréquence de déviation horizontale est de 82 kHz, la fréquence de déviation verticale est de 71 kHz et la tension d'anode est de 25kV.


 
2. Affichage à tube à rayons cathodiques selon la revendication 1, caractérisé en ce que la bobine verticale est une bobine verticale du type selle (6, 15) ou une bobine toroïdale.
 
3. Affichage à tube à rayons cathodiques comprenant :

- un corps principal d'affichage à tube à rayons cathodiques (1, 10) ayant un panneau de verre (2, 11) et un tube de verre (3, 12) connecté à l'arrière du panneau de verre (2, 11) ;

- un canon à électrons fixé à une section arrière du corps principal (1, 10) ;

et

- un collier de déviation (8, 17) disposé dans une partie de périphérie arrière dudit corps principal (1, 10) qui comprend une bobine horizontale du type selle (4, 13), un cadre isolant (5, 14) passé à l'extérieur de ladite bobine horizontale du type selle (4, 13) et une bobine verticale du type selle (6, 5) ou une bobine verticale coupe toroïdale et un noyau de ferrite (7, 16) placé à l'extérieur dudit cadre isolant (5, 14), caractérisé en ce que une aire surfacique de ladite bobine verticale du type selle (6, 15) ou de la bobine verticale toroïdale exposée depuis une phase d'extrémité côté écran dudit noyau de ferrite (7, 16) est à l'intérieur d'une gamme de 55 à 185 cm2 et le collier de déviation (8) peut être mis en oeuvre de sorte que la fréquence de déviation horizontale est 82 kHz, la fréquence de déviation verticale est de 71 kHz et la tension d'anode est de 25 kV.


 




Drawing