ANSI INCITS ISO 7487-3-1986 Information processing - Data interchange on 130 mm (5.25 in) flexible disk cartridges using modified frequency modulation recording at 7 958 ftprad I 9.pdf
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1、International Standard ( 7487 / 3 0 1 4 a!ie ,NTEANAT,ONAL ORGANIZATION FOR STANDARDIZATION*ME)I(nYHAPOnHAR OPrAHH3Al,MR fl0 CTAHAAPTH3AUIIM.ORGANlSATlON INTERNATIONALE DE NORMALISATION Information processing - Data interchange on 130 mm (5.25 in) flexible disk cartridges using modified frequency mo
2、dulation recording at 7 958 ftprad, I,9 tpmm (48 tpi), on both sides - Part 3 : Track format B Traitement de Iinformation - b) a flux transition shall be written at each cell boundary between consecutive bit cells containing ZEROS. Exceptions to this are defined in 4.1.12. 1) At present at the stage
3、 of draft. 1 IS0 7487/3-1986 (E) 4.1.2 Track location tolerance of the recorded flexible disk cartridge The centrelines of the recorded tracks shall be within f 0,685 mm (0.603 3 in) of the nominal positions, over the range of operating environment specified in IS0 7487/l. This tolerance corresponds
4、 to twice the standard deviation. 4.1.3 Recording offset angle At the instant of writing or reading a magnetic transition, the transition shall have an angle of 0” f 18 with the radius. This tolerance corresponds to twice the standard deviation. 4.1.4 Density of recording 4.1.4.1 The nominal density
5、 of recording shall be 7 958 ftprad. The nominal bit cell length is 125,7 yrad. 4.1.4.2 The long-term average bit cell length shall be the average bit cell length measured over a sector. It shall be within * 3,5 % of the nominal bit cell length. 4.1.4.3 The short-term average bit cell length, referr
6、ed to a particular bit cell, shall be the average of the lengths of the preceding eight bit cells. It shall be within I!I 8 % of the long- term average bit cell length. 4.1.5 Flux transition spacing (see figure 1) The instantaneous spacing between flux transitions may be in- fluenced by the reading
7、and writing process, the bit sequence recorded (pulse crowding effects), and other factors. The lo- cations of the transitions are defined as the locations of the peaks in the signal when reading. Tests should be carried out using a peak-sensing amplifier. 4.1.5.1 The spacing between the flux transi
8、tions in a se- quence of ONES shall be between 86 % and 120 % of the short-term average bit cell length. 4.1.5.2 The spacing between the flux transition for a ONE and that between two ZEROS preceding or following it shall be be- tween 136 % and 165 % of the short-term average bit cell length. 1 1 1
9、0 1 4.1.5.3 The spacing between the two ONE flux transitions surrounding a ZERO bit cell shall lie between 185 % and 225 % of the short-term average bit cell length. 4.1.5 Average signal amplitude For each side the average signal amplitude on any non- defective track (see IS0 7487/l) of the intercha
10、nged flexible disk cartridge shall be less than 160 % of SRAlfand more than 40 % of SRAzf. 4.1.7 Byte A byte is a group of eight bit-positions, identified Bl to B8, with B8 the most significant and recorded first. The bit in each position is a ZERO or a ONE. 4.1.8 Sector All tracks are divided into
11、9 sectors of 512 bytes. 4.1.9 Cylinder A pair of tracks, one on each side, having the same track number. 4.1 .I0 Cylinder number The cylinder number shall be a two-digit number identical with the track number of the tracks of the cylinder. 4.1.11 Data capacity of a track The data capacity of a track
12、 shall be 4 608 bytes. 4.1.12 Hexadecimal notation Hexadecimal notation shall be used hereafter to denote the following bytes : (00) for (88 to Bl) = 00000000 (01) for (88 to Bl) = 00000001 (4E) for (88 to Bl) = 01601110 (FE) for (88 to Bl) = 11111110 0 1 I 1 I I i 80% tolZO% 130% to 165% 130%to 165
13、% 185% to 225% e e Figure 1 IS0 7487/3-1966 (E) (FB) for (88 to Bl) = 11111011 (F8) for (88 to Bl) = 11111000 (Al)” for (B8 to Bl) = 10100001 In (Al )* the boundary transition between 83 and 84 is missing. 4.1.13 Error detection characters (EDC) The two EDC-bytes are hardware generated by shifting s
14、erially the relevant bits, specified later for each part of the track through a 16-bit shift register described by X16 + X12 + x5 + 1 (See also annex A.) 4.2 Track layout after the first formatting for all tracks After the first formatting, there shall be 9 usable sectors on each track. The layout o
15、f each track shall be as shown in figure 2. During formatting the rotational speed of the disk, averaged index to index, shall be 300 5 6 r/min. 4.2.1 Index gap At nominal density this field shall comprise not less than 32 bytes and not more than 146 bytes, the content of which is not specified exce
16、pt that there shall be no (Al )*-bytes. Writing the index gap is started when the index is detected. Any of the first 16 bytes may become ill-defined due to over- writing. 4.2.2 Sector identifier This field shall be as given in table 1. 4.2.2.1 Identifier mark This field shall comprise 16 bytes : 12
17、 (OOLbytes 3 (Al )*-bytes 1 (FE)-byte 4.2.2.2 Address identifier This field shall comprise 6 bytes. 4.2.2.2.1 Track address This field shall comprise 2 bytes : a) Cylinder number (C) This field shall specify in binary notation the cylinder number from 00 for the outermost cylinder to 39 for the inne
18、rmost cylinder. b) Side number (Side) This field shall specify the side of the disk. On side 0, it shall be (00) on all tracks. On side 1, it shall be (01) on all tracks. 4.2.2.2.2 Sector number (S) The 3rd byte shall specify in binary notation the sector number from 01 for the 1st sector to 9 for t
19、he last sector. The sectors may be recorded in any order of their sector numbers. Table 1 Sector identifier Identifier mark Address identifier Track address S EDC C Side 12 bytes 3 bytes 1 byte 1 byte 1 byte 1 byte 1 byte 2 bytes (00) (Al)” (FE) (00) or (02) (01) INDEX GAP SECTOR IDENTIFIER IDENTIFI
20、ER -1st Sector-I 9th Sector 4 Figure 2 3 IS0 7487/3-1985 (E) 4.2.2.2.3 4th byte The 4th byte shall always be a (02)-byte. 4.2.2.2.4 EDC These two bytes shall be generated as defined in 4.1 .I3 using the bytes of the sector identifier starting with the first (Al )*-byte (see 4.2.2.1) of the identifie
21、r mark and ending with the 4th byte (see 4.2.2.2.3) of the sector address. If the EDC is incorrect, then the sector is defective. IS0 9293 specifies the handling of defective sectors. 4.2.3 Identifier gap This field shall comprise 22 initially recorded (4E)Lbytes. These bytes may have become ill-def
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