ECA TEB 22-1979 Magnetic Deflection Yokes《磁偏转尾框》.pdf
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1、EIA TEB22 79 W 3234b00 000714b 8 W - NOVEMBER 1979 TEPAC ENGINEERING BULLETIN NO42 2 O ELECTRONIC INDUSTRIES ASSOCIATION Enprikeering hpartment 2001 Eye Street, N.W., Waehington, D.C. 20006 L EIA TEE22 79 = 3234600 0007347 T PubW by ELECTRONIC INDUSTRIES ASSOCIATION En#neering Deputment 2001 Eye Str
2、eet, NOW.# WaAam, Do C M e EIA TEB22 79 m 3234600 0007L48 I m TEPAC ENGINEERING BULLETIN No. 22 MAGNETIC DEFLECTION YOKES WILLIAM O. ADAMS Syntronic Instruments, Inc, Member, TEPAC JT-20 Committee 11-1-78 MAGNETIC DEFLECTION YOKES To many CRT display system designers a deflection yoke represents a v
3、ital but troublesome component, The yoke is vital because it is an in-line component directly related to key system performance parameters. It is troublesome because there seems to be an air of mystery surrounding the yoke selection process. The fact that a yoke performs a vital role cannot be chang
4、ed, However, the air of mystery surrounding the yoke selection process can be removed, and in its place a logical, orderly selection process may be substituted. The result being a much more effective means of optimizing the overall performance of the CRT display system. The following O paragraphs, p
5、rovide the information and guidelines necessary for a user to predict the basic performance characteristics of a deflection yoke during the planning or design phase of a CRT display system. -1- I EIA TEB22 79 m 3234600 0007150 T m V TWO BASIC TYPES OF DEFLECTION YOKES The majority of all deflection
6、coils fall into one of two basic categories: (1) parallel (toroidal) coils where each winding contributes an equal chare of the total magnetic flux, (2) series coils where each winding shares the same magnetic flux. Parallel coils have no “ears“ giving the advantage of lower resistance for equal cur
7、rent sensitivity, However, the external field equals the useful internal field doubling the inductance, This external field can be troublesome and usually results in poor settling for graphic displays. The flux conPiguration requires tighter tolerances for equal geometry. Of the two basic types, the
8、 series coil provides greater flexi- bility and is more adaptable to present day applications. A typical series coil.having a distributed winding is illustrated in figure A, and is commonly referred to as a saddle coil. Figure B illustrates a series coil having a semi-distributed winding, and is com
9、monly referred to as a stator coil since it is most often used with slotted or stator cores. As can be seen in figures A e( B, both the saddle and the stator coils have bent-up portions, normally referred to as “ears“ in both the front and the rear, -2- ,- y-= I I EIA TEB22 79 m 3234b00 0007151 1 m
10、. FIGURE A FIGURE B D I S TR I B UT ED II SAD DL E I CO I L SEM I - D I S T R I B UT ED CO I L - 2-A - - EIA TEB22 79 3234600 0007152 3 M The advantages of saddle yokes YS. stator yokes are indicated as follows: SADDLE YOKE ADVANTAGES (A) higher inductance-to-recistance ratio (B) lower crosstalk fro
11、m horizontal to vertical winding STATOR YOKE ADVANTAGES (A) more efficient (lower energy constant) (B) better spot growth performance repeatabi ity (C) better geometry performance repeatabi 1 i ty (D) more flexability in impedance choice for custom design In general, the stator yoke is more often us
12、ed for current high performance display systems because of the advantages indicated. -3- EIA TEB22 79 = 323VbOO 0007353 5 YOKE RELATED PARAMETERS First of all a few comments are in orderwith regard to why the overall role of the deflection yoke is vital in , a CRT display system. The following key s
13、ystem parameters are briefly discussed with respect to their relationship to the def1ectio.n yoke. RESOLUTION Resolution is of course, an all important parameter for any CRT display system. It is dependent upon two primary factors: (1) the spot size at the center of the CRT, (2) the center-to-edge s
14、pot growth characteristics of the system. The first is independent of the yoke. The second is determined almost entirely by the center-to-edge spot growth performance of the yoke. BRIGHTNESS Brightness and resolution are closely interrelated in that the greater the brightness required the greater th
15、e burden on both the yoke and the CRT to produce the speci fi ed resol uti on. I EIA TEB22 79 = 3234600 0007354 7 m -. DISPLAY SIZE The display size on the face of theJRT determines the I maximum deflection angle which in turn is one of the . primary factors in determining the basic yoke form. The d
16、isplay size and aspect ratio is significant in determining both the resolution and geometric perf,ormance of the deflection yoke. GEOMETRY The specified geometric performance requirement of a given system can be limited by the performance of the deflection yoke. In turn the geometric specification m
17、ay-also significantly affect the spot growth performance of the yoke. WRITING SPEED The specified writing speed and/or retrace time are primary factors in determining the maximum inductance that can be used in the deflection yoke, The in.ductance, in turn, along with the accelerating voltage, determ
18、ines the deflection current required to deflect the CRT beam through a given angle. EIA TEB22 79 323L)bOO 0007155 9 W l. DEFLECTION YOKE THEORY The above comments indicate that there is a .significant interrelationship between the requirements which the key system parameters place upon the deflectio
19、n yoke. This suggests that there are several trade-offs to be considered in order to achieve optimization, and in fact, this is qui te true. The following paragraphs are, therefore, intended to provide a logical approach to yoke selection by relating general yoke theory to display system parameters.
20、 The path of an electron thr0ugh.a magnetic deflecting field is illustrated insfigure A. For purposes of the illustration, the magnetic field is considered to be uniform between the boundaries a 81 b and zero elsewhere, The field is also considered to be normal to the plane of the paper and in a dir
21、ection which would cause the deflection direction shown (flux exiting the paper). -6- EIA TEB22 79 m. - 3234b00 0007156 O m FIGURE A The expression for the force (F) on a body with a charge (e) moving with a velocity (v) in a uniform magneti,c field having a density (H) is-given by equation (1). The
22、 centripetal force (F) on an electron of mass (m) traveling at velocity (v) over a curved path of radius (r) is given by equation (2). Y EIA TEB22 79 m 3234b00 0007357 2 m The force indicated in equation (1) must equal the force indicated in equation (2). The radius traveled by the electron is there
23、fore described in equation (3). _. .mv r- He From figure A it can be shown that the angle fl is equal to the deflection angle 8. If R is the length of the uniform magnetic field the angle 8 can be. expressed as in equation (4). A SIN e = (4) Substituting for the radius from equation (3) the deflecti
24、on angle can be expressed as in equation (5). . .RHe SIN e = - mv (5) The velocity of an electron can be approximated in terms of the accelerating anode potential (E ) as indicated in equation (6). b EIA TEB22 79 m 3234600 0007158 m I Substituting for the velocity in equation (5) the deflection angl
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