M52759SP RENESAS | Alldatasheet

Document overview

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  • PDF pages: 27

Technical content

Features

  • It can control phase of horizontal wave.
  • It can changes the parabola wave unbalance.
  • It contains the horizontal saw wave generator and Auto Gain Control circuit, so that it is able to keep the amplitude constant if frequency change.
  • It can changes the parabola wave unbalance.
  • Frequency Band Width: horizontal 24 to 120 kHz Vertical 50 to 185 Hz
  • Input: horizontal 5 V P-P Pulse Vertical 3.2 V P-P V Saw Application CRT display monitor Recommended Operating Condition Supply voltage range: 11.5 V to 12.5 V Rated supply voltage: 12 V

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 2 of 26 Block Diagram +H-GND H-pulse input VPH input Vref output H-VCCH-para output VGH input VGV input V-para output V-saw input V-GND Vbias input V-VCC Hbias input 20 19 18 17 16 15 14 13 12 11 1098654321 Para.Amp Buffer H-Pulse Delay AGC DETVref SW Para.Amp & Limiter Buffer H-SAW Generator Pin Arrangement V-VCC Hbias H-GND H-pulse input H-delay capacitor VPH input Reference voltage Reference voltage resistor AGC trace capacitor AGC retrace capacitorH-VCC H-saw retrace H-para output VGH input VGV input V-para output V-saw input V-GND M52759SP (Top view) Outline: PRDP0020BA-A (20P4B) Vbias H-saw trace

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 3 of 26 Absolute Maximum Ratings (Ta = 25°C, Surge capacity = 200 pF) Ratings Item Symbol Min. Typ. Max. Unit Supply voltage VCC   13.0 V Power dissipation Pd   1237.6 mW Operating temperature Topr −20  +85 °C Storage temperature Tstg −40  +150 °C Recommended operating voltage Vopr  12.0  V Recommended operating voltage range Vopr' 11.5  12.5 V Surge Vsurge ±200   V Power Dissipation Pd (mW) 1500 500 1000 1237.6 −20 0 25 50 75 85 100 125 150 643.6 Ambient Temperature Ta (°C) Thermal Derating

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 4 of 26

Electrical Characteristics

(Ta = 25°C, VCC = 12 V, unless otherwise noted) Limits Item Symbol Min. Typ. Max. Unit Test Conditions Pin No. Circuit current 1 ICCH 15.1 21.5 27.9 mA (10) Measure 10 Circuit current 2 ICCV 5.2 7.4 9.6 mA (20) Measure 20 Reference voltage output V REF 6.75 6.95 7.15 V (14) Measure 14 Reference voltage temperature drift DREF  49  ppm/ deg (14) Measure 14 Horizontal Block H-pulse low input range V IL 0.0  2.0 V (6) 2.4 V in (7) Measure (15) 3.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in H-pulse high input range V IH 3.0  VCC −2.0 V (6) 2.4 V in (7) Measure (15) 3.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in H-pulse low input current IIL −5.0 −0.6 −0.1 µA (17) 0 V in, measure 17 H-pulse high input current I IH −1.0 0.0 1.0 µA (17) 5 V in, measure 17 H parabola width TW 0.6 0.8 1.0 µs (6) 2.4 V in (7) Measure (15) 3.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in H parabola delay 1 TD1 0.1 0.3 0.5 µs (6) 2.4 V in (7) Measure (15) 0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in H parabola delay 2 TD2 0.4 0.6 0.8 µs (6) 2.4 V in (7) Measure (15) 1.3 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in H parabola delay 3 TD3 2.9 3.1 3.3 µs (6) 2.4 V in (7) Measure (15) 4.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in Delay temperature drift D D  0.08  ns/ deg (6) 2.4 V in (7) Measure (15) 3.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in Pin 15 input current I 15 −5.0 −0.3 −0.1 µA (17) 2.5 V in, measure 15

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 5 of 26 Electrical Characteristics (cont.) Limits Item Symbol Min. Typ. Max. Unit Test Conditions Pin No. (7) Measure (15) 0 V in (17) fH = 96 kHz H-pulse in (19) 5.7 V in (7) Measure (15) 0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in (7) Measure (15) 0 V in (17) fH = 96 kHz H-pulse in (19) 6.4 V in H para. unbalance VCC. character 1 VUHP1 −0.2 0.0 0.2 V (6) 2.4 V in (7) Measure (15) 0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in H para. unbalance VCC. character 2 VUHP2 −0.2 0.0 0.2 V (6) 2.4 V in (7) Measure (15) 0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in H para. unbalance temperature drift D UHP  −2.2  mV/ deg (6) 2.4 V in (7) Measure (15) 0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in (7) Measure (15) 3.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in (7) Measure (15) 3.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in (7) Measure (15) 3.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 6 of 26 Electrical Characteristics (cont.) Limits Item Symbol Min. Typ. Max. Unit Test Conditions Pin No. H para. freq. characteristics 1 FHP1 −0.2 0.0 0.2 V (6) 4.0 V in (7) Measure (15) 3.0 V in (17) fH = 24 kHz H-pulse in (19) 6.1 V in H para. freq. characteristics 2 F HP2 −0.2 0.0 0.2 V (6) 4.0 V in (7) Measure (15) 3.0 V in (17) fH = 120 kHz H-pulse in (19) 6.1 V in H para. VCC characteristics 1 VVHP1 −0.2 0.0 0.2 V (6) 4.0 V in (7) Measure (15) 3.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in H para. VCC characteristics 2 VVHP2 −0.2 0.0 0.2 V (6) 4.0 V in (7) Measure (15) 3.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in H para. size temperature drift D HP  −1.3  mV/ deg (6) 4.0 V in (7) Measure (15) 3.0 V in (17) fH = 96 kHz H-pulse in (19) 6.1 V in Pin 6 input current I 6 −5.0 −0.3 −0.1 µA (6) 2.4 V in, measure 6 Pin 19 input current I 19 0.1 0.3 5.0 µA (19) 6.1 V in, measure 19 Vertical Block V parabola accuracy 1 A VP1 4.5 5.0 5.5 V (2) 3.5 V in (3) 3.5 V in (4) Measure (5) 2.3 V in V parabola accuracy 2 A VP2 2.5 3.0 3.5 V (2) 1.9 V in (3) 3.5 V in (4) Measure (5) 2.3 V in V parabola accuracy 3 A VP3 20 25 30 % (2) 2.7 V in (3) 3.5 V in (4) Measure (5) 2.3 V in V parabola accuracy 4 A VP4 20 25 30 % (2) 4.3 V in (3) 3.5 V in (4) Measure (5) 2.3 V in V parabola accuracy 5 A VP5 90 100 110 % (2) 5.1 V in (3) 3.5V in (4) Measure (5) 2.3 V in

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 7 of 26 Electrical Characteristics (cont.) Limits Item Symbol Min. Typ. Max. Unit Test Conditions Pin No. V para. unbalance control 1 UVP1 −2.8 −2.5 −2.2 V (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 2.8 V in (4) Measure (5) 1.6 V in V para. unbalance control 2 U VP2 −0.3 0 0.3 V (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 2.3 V in V para. unbalance control 3 U VP3 2.2 2.5 2.8 V (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 4.2 V in (4) Measure (5) 1.6 V in V unbalance. VCC. characteristics 1 VUVP1 −0.1 0.0 0.1 V (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 2.3 V in V unbalance. VCC. characteristics 2 VUVP2 −0.1 0.0 0.1 V (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 2.3 V in V unbalance. temperature drift D UVP  0.5  mV/ deg (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 2.3 V in V parabola amplitude 1 G VP1 0 0 0.3 V P-P (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 1.0 V in V parabola amplitude 2 G VP2 2.1 2.4 2.7 V P-P (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 2.0 V in V parabola amplitude 3 G VP3 4.2 4.7 5.2 V P-P (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 3.0 V in V para. freq. characteristics 1 F VP1 −0.1 0.0 0.1 V (2) fV = 50 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 3.0 V in V para. freq. characteristics 2 F VP2 −0.1 0.0 0.1 V (2) fV = 185 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 3.0 V in

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 8 of 26 Electrical Characteristics (cont.) Limits Item Symbol Min. Typ. Max. Unit Test Conditions Pin No. V para. VCC. characteristics 1 VVP1 −0.1 0.0 0.1 V (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 3.0 V in V para. VCC. characteristics 2 VVP2 −0.1 0.0 0.1 V (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 3.0 V in V para. temperature drift D VP  −2.2  mV/ deg (2) fV = 70 Hz, 3.2 VP-P saw wave in (3) 3.5 V in (4) Measure (5) 3.0 V in Pin 2 input current I 2 −5.0 −0.3 −0.1 µA (2) 3.5 V in, measure 2 Pin 3 input current I 3 −5.0 −0.3 −0.1 µA (3) 3.5 V in, measure 3 Pin 5 input current I 5 −5.0 −0.3 −0.1 µA (5) 2.3 V in, measure 5

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 9 of 26 Switch and Voltage Condition Symbol SW2 a c b ba 2.3 3.0 2.0 1.0 2.33.5 4.2 3.5 2.8 5.1 4.3 2.7 1.9 2.3 6.1 4.0 2.5 1.0 2.4 1.8 2.4 1.8 3.0 4.0 1.3 6.1 6.4 6.1 5.70 5.0 3.0 2.4b a bb a 1.6 2.3 1.6 3.5 12.0 12.5 11.5 12.0 12.5 11.5 12.0 12.5 11.5 12.0 12.5 11.5 a b b a b b a a a I CCH ICCV VREF DREF VIL VIH IIL IIH TW TD1 TD2 TD3 DD I15 UHP1 UHP2 UHP3 VUHP1 VUHP2 DUHP GHP1 GHP2 GHP3 FHP1 FHP2 VVHP1 VVHP2 DHP I19 AVP1 AVP2 AVP3 GVP1 GVP2 FVP1 FVP2 VVP1 VVP2 DVP GVP3 AVP4 AVP5 UVP1 UVP2 UVP3 VUVP1 VUVP2 DUVP aaa a ba aa a b SW3 SW5 SW6 SW10 SW15 SW17 SW19 SW20 VCC V2 V3 V5 V6 V15 V17 V19 Switch Voltage (V)

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 10 of 26 Input Signal Frequency 24 to 96 to 140 kHz PG (Input signal to pin 17) SG (Input signal to pin 2) Frequency 50 to 70 to 185 Hz Pulse width above 1 µs VTH = 2.5 V

5.0 V Typ

0 V Typ

3.5 V 1.6 V 1.6 V Electrical Characteristics Test Method ICCH Circuit Current1 Measure the input current to pin 10. ICCV Circuit Current2 Measure the input current to pin 20. V REF Reference Voltage Output Measure the output voltage at pin 14. D REF Reference Voltage Temperature Drift Measure temperature drift of pin 14. (−20°C to 85°C) VIL H-pulse Low Input Range Input horizontal pulse which low level is 2 V in pin 17 and confirm output horizontal signal at pin 7. Input signal to pin 17 Output signal at pin 7 5.0 V 2.0 V

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 11 of 26 VIH H-pulse High Input Range Input horizontal pulse which high level is 3 V in pin 17 and confirm output horizontal signal at pin 7. Input signal to pin 17 Output signal at pin 7 3.0 V 0 V TW H Parabola Width Measure the time width of retrace period at pin 7. Input signal to pin 17 TW TD1, TD2, TD3 H Parabola Delay Measure the delay time from rise time of input signal to start of retrace period of output signal when the voltage of pin 15 is 0 V, 1.3 V, and 4 V. TD1, TD2, TD3 Input signal to pin 17 Output signal at pin 7 5.0 V 0 V DD Delay Temperature Drift Measure the temperature drift of the delay time. (−20°C to 85°C) I15 Pin 15 Input Current Measure the input current to pin 15 when the voltage of pin 15 is 2.5 V.

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 12 of 26 UHP1, UHP2, UHP3 H para. Unbalance Control UHPS is defined as the voltage of parabola start point. UHPE is defined as the voltage of parabola end point. UHP1, UHP2, UHP3 is defined as follows UHP1, UHP2, UHP3 = UHPS − UHPE Measure the unbalance of parabola waveform at pin 4 when the voltage of pin 19 is 5.7 V, 6.1 V, and 6.4 V. Pin 6 is controlled so that the amplitude of parabola is 3 VP-P constant. Output signal at pin 7 UHPS UHPEUHP VUHP1 H para. Unbalance VCC. Characteristics1 When the supply voltage of pin 10, 20 is 11.5 V, the unbalance of parabola waveform at pin 7 is defined as UHP11.5 V. VUHP1 = UHP2 − UHP11.5 V VUHP2 H para. Unbalance VCC. Characteristics2 When the supply voltage of pin 10, 20 is 12.5 V, the unbalance of parabola waveform at pin 7 is defined as UHP12.5 V. VUHP2 = UHP2 − UHP12.5 V DUHP H para. Unbalance Temperature Drift Measure temperature drift of UHP2. (−20°C to 85°C) GHP1 H Para. Gain Control1 Measure the amplitude of parabola waveform at pin 7 and it is defined as HP−6, 1.0 V. GHP2 H Para. Gain Control2 The amplitude of parabola waveform at pin 7 is defined as HP−6, 2.5 V. GHP3 H Para. Gain Control3 The amplitude of parabola waveform at pin 7 is defined as HP−6, 4.0 V. FHP1 H Para. Freq. Characteristics1 When the frequency of input signal in pin 17 is 96 kHz, the amplitude of parabola waveform at pin 7 is defined as HP96 kHz. When the frequency of input signal is 24 kHz, the amplitude of parabola waveform is defined as HP24 kHz. FHP1 = HP96 kHz − HP24 kHz FHP2 H Para. Freq. Characteristics2 When the frequency of input signal in pin 17 is 140 kHz, the amplitude of parabola waveform at pin 7 is defined as HP120 kHz. FHP2 = HP96 kHz − HP140 kHz

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 13 of 26 VVHP1 H Para. VCC. Characteristics1 When the supply voltage of pin 10, 20 is 12.0 V, the amplitude of parabola waveform at pin 7 is defined as HP12.0 V. When the supply voltage is 11.5 V, the amplitude of parabola waveform is defined as HP11.5 V. VVHP1 = HP12.0 V − HP11.5 V VVHP2 H Para. VCC. Characteristics2 When the supply voltage of pin 10, 20 is 12.5 V, the amplitude of parabola waveform at pin 7 is defined as HP12.5 V. VVHP2 = HP12.0 V − HP12.5 V DHP H Para. Size Temperature Drift Measure the temperature drift of HP96 kHz. (−20°C to 85°C) I6 Pin 6 Input Current Measure the input current to pin 6 when voltage of pin 6 is 2.4 V. I19 Pin 19 Input Current Measure the input current to pin 19 when voltage of pin 19 is 6.1 V. A VP1 V Parabola Accuracy1 Measure the output voltage at pin 4 and it is defined as VP−2, 3.5 V. AVP2 V Parabola Accuracy2 The output voltage at pin 4 is defined as VP−2, 1.9 V. AVP2 = VP−2, 1.9 V − VP−2, 3.5 V AVP3 V Parabola Accuracy3 The output voltage at pin 4 is defined as VP−2, 2.7 V. AVP4 V Parabola Accuracy4 The output voltage at pin 4 is defined as VP−2, 4.3 V. AVP5 V Parabola Accuracy5 The output voltage at pin 4 is defined as VP−2, 5.1 V.

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 14 of 26 UVP1, UVP2, UVP3 V Para. Unbalance Control UVPS is defined as the voltage of parabola start point. UVPE is defined as the voltage of parabola end point. UVP1, UVP2, UVP3 is defined as follows UVP1, UVP2, UVP3 = UVPS − UVPE Measure the unbalance of parabola waveform at pin 4 when the voltage of pin 3 is 2.8 V, 3.5 V, and 4.2 V. Pin 5 is controlled so that the amplitude of parabola is 3 VP-P constant. UVPS UVPEOutput signal at pin 7 VUVP1 V Unbalance VCC. Characteristics1 When the supply voltage of pin 10, 20 is 11.5 V, the unbalance of parabola waveform at pin 4 is defined as UVP11.5 V. VUHP1 = UVP2 − UVP11.5 V VUVP2 V Unbalance VCC. Characteristics2 When the supply voltage of pin 10, 20 is 12.5 V, the unbalance of parabola waveform at pin 4 is defined as UVP 12.5 V. VUVP2 = UVP2 − UVP12.5 V DUVP V Unbalance Temperature Drift Measure temperature drift of UVP2 (−20°C to 85°C) GVP1, GVP2, GVP3 V Parabola Amplitude Measure the amplitude of parabola waveform at pin 4 when the voltage of pin 5 is 1 V, 2 V, and 3 V. FVP1 V Para. Freq. Characteristics1 When the frequency of input signal in pin 2 is 70 Hz, the amplitude of parabola waveform at pin 4 is defined as VP70 Hz. When the frequency of input signal is 50 Hz, the amplitude of parabola waveform is defined as VP50 Hz. FVP1 = VP70 Hz − VP50 Hz FVP2 V Para. Freq. Characteristics2 When the frequency of input signal in pin 2 is 185 Hz, the amplitude of parabola waveform at pin 4 is defined as VP185 Hz. FVP2 = VP70 Hz − VP185 Hz VVP1 V Para. VCC. Characteristics1 When the voltage of pin 10, 20 is 12.0 V, the amplitude of parabola waveform is defined as VP12.0 V. When the voltage is 11.5 V, the amplitude of parabola waveform is defined as VP11.5 V. VVP1 = VP12.0 V − VP11.5 V VVP2 V Para. VCC. Characteristics2 When the voltage of pin 10, 20 is 12.5 V, the amplitude of parabola waveform is defined as VP12.5 V. VVP2 = VP12.0 V − VP12.5 V

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 15 of 26 DVP V Para. Temperature Drift Measure temperature drift of VP70 Hz. (−20°C to 85°C) I2 Pin 2 Input Current Measure the input current to pin 2 when the voltage of pin 2 is 3.5 V. I3 Pin 3 Input Current Measure the input current to pin 3 when the voltage of pin 3 is 3.5 V. I

5 Pin 5 Input Current

Measure the input current to pin 5 when the voltage of pin 5 is 2.4 V.

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 16 of 26 Test Circuit Para.Amp Buffer H-Pulse Delay AGC DETVref SW Para.Amp & Limiter Buffer H-SAW Generator 1.9 V 2.7 V 3.5 V 4.3 V 5.1 V 1 V 2 V 3 V 1.0 V 2.4 V 2.5 V 4.0 V ac SW2 SW3 SW5 SW6 Hout 100 pF 100 pF 0.01 µF 33 µF SW10 ab ab ab abb V-saw 3.5 V 2.8 V 3.5 V 4.2 V 3.5 V 2.3 V 2.4 V V6V5 Osc Scope Dig-vol Osc Scope A A AA A 33 µF b SW20 SW19 SW17 SW15 6.8 k 1 µF 0.01 µF 100 pF 2.5 V V19 0 V 5.7 V 6.1 V 6.4 V V19 5.7 V 6.1 V 6.4 V V15 0 V 1.3 V 3.0 V 4.0 V V17 0 V 5.0 V 7 V 11.5 V 12.0 V 12.5 V V CC H-Pulse 6.1 V ab a ba ba 0.01 µF V A A A A 20 19 18 17 16 15 14 13 12 11 1098654321 7

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 17 of 26 Typical Characteristics Horizontal Block Pin 15 Delay Control Voltage (V) Pin 7 Delay Time (µs) Delay Control Voltage vs. Delay Time 3.5 0.5 1.5 1.0 2.0 2.5 3.0 01 0.5 1.3 234 5 Usable range Unusable range Usable range Pin 19 = 6.1 V const. Pin 6 H Gain Control Voltage (V) Pin 7 H Parabola Amplitude (VP-P) H Gain Control Voltage vs. H Parabola Amplitude 01234 Delay time Pin 17 input Pin 7 Output Pin 19 H Unbalance Control Bias Voltage (V) Pin 7 H Parabola Unbalance (V) H Unbalance Control Bias Voltage vs. H Parabola Unbalance Pin 6 is controlled as the amplitude of parabola is 3 VP-P constant Pin 7 output

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 18 of 26 Vertical Block Pin 2 3.2 VP-P sawtooth wave input Pin 2 Input Voltage (V) Pin 4 Output Voltage Ratio (%) V Para DC Output Voltage Ratio Pin 3 = 3.5 V const. Pin 5 = 2.3 V const. 100 Output ratio = × 100 (%)Pin 4out@Pin 2 = 1.9 V − Pin 4out@Pin 2 = 3.5 V Pin 4out − Pin 4out@Pin 4 = 3.5 V Pin 3 V Unbalance Control Bias Voltage (V) Pin 4 V Parabola Unbalance (V) V Unbalance Control Bias Voltage vs. V Parabola Unbalance Pin 5 V Para Amp Gain Control Voltage (V) Pin 4 V Para Amplitude (VP-P) V Para Amp Gain Control Voltage vs. Output Amplitude 0123 4 Pin 5 is controlled as the amplitude of parabola is 3 VP-P constant Pin 4 output

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 19 of 26 Timing Chart Horizontal Block Pin 17 H-pulse input Internal H-pulse Pin 8 output Pin 7 output Pulse delay Pulse width to 0.8 µs Pulse width to 3 µs VTH = 2.5 V 3.0 ≤ VIH ≤ (VCC − 2.0 V) VIL ≤ 2.0 V Vertical Block Pin 4 output Pin 2 input 1.6 V 1.6 V Pin 3 input voltage = 3.5 V

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 20 of 26 Application Example Vout VGV (V Gain) VGH (H Gain) V-saw input V-GND Vbias Uniformity in 20 19 18 17 16 15 14 13 12 11 1098654321 Para.Amp Buffer H-Pulse AGC DETVref SW Para.Amp Buffer H-SAW V-VCC Hout HVCC Hbias Flyback Pulse in 1 k VCC 12 V 1 k 100 p1.8 k 3.9 k M52742SP CRT Monitor 0.01 µF 0.01 µF 0.01 µF 0.01 µF 0.01 µF 0.01 µF 47 µ 1 µF 0.01 µF 33 µF 100 pF 100 pF 100 pF 6.8 k VPH V

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 21 of 26 Para.Amp 33 µF 6.8 k 1 µF 0.01 µF 100 pF 0.01 µF 1% 1% VPH 12.0 V Hout 100 pF 100 pF 2.2 µF 1% 4.7 µF above 10 kΩ above 10 kΩ 0.01 µF 10 µH V 0.01 µF 10 µH 0.01 µF Buffer H-Pulse Delay AGC DETVref SW Para.Amp & Limiter Buffer H-SAW Generator H-GND H-pulse input The total resistance is above 10 kΩ H-VCC VGH (H Gain) VGV (H Gain)V-saw input

3.2 VP-P

0.01 µF 0.01 µF V-GND Vout V-VCC Hbias 0.01 µF H/V Deflection IC DAC

2 VP-P

20 19 18 17 16 15 14 13 12 11 1098654321 7 Vbias

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 22 of 26 Pin Description Pin No. Name DC Voltage (V) Peripheral Circuit Function

1 V-GND   GND of vertical block

2 Vsawi 3.5 V 50 µA 1 k V-VCC V-GND Vertical sawtooth wave input pin. Vbias 3 Vbias 2.8 to 4.2 V 50 µA 1 k V-VCC V-GND Vertical parabola unbalance control bias voltage input pin. Input voltage range is 2.8 to 4.2 V

4 Vout 5 V (Bottom)

Vertical parabola wave output pin. Bottom voltage = 5 V (fixed) Amplitude is possible to control by pin 5 5 V GV 1.0 to 3.0 V 50 µA 1 k V-VCC V-GND Vertical parabola wave gain control voltage input pin. Input voltage range is 1.0 to 3.0 V. 6 V GH 1.0 to 4.0 V 50 µA 1 k H-VCC H-GND Horizontal parabola wave gain control voltage input pin. Input voltage range is 1.0 to 4.0 V.

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 23 of 26 Pin Description (cont.) Pin No. Name DC Voltage (V) Peripheral Circuit Function 7 Hout 2.4 to 9.2 V 1 mA 200 H-VCC H-GND Horizontal parabola wave output pin. Amplitude is possible to control by pin 6 8 Cret 7.1 V (Top) 4.9 V (Bottom) 0.25 mA 60 µA 37 µA 1.5 k H-VCC H-GND Connection pin of horizontal retrace capacitor. Recommended capacitance is 100 pF. 7.1 V 4.9 V 9 Ctrc 7.1 V (Top) 4.9 V (Bottom) 2 k 2 k 70 µA510 H-VCC H-GND Connection pin of horizontal trace capacitor. Recommended capacitance is 100 pF. 7.1 V 4.9 V 10 H-V CC 12.0 V  V CC of horizontal block. 11 C AGCr 2.5 V 1.5 k H-VCC H-GND Connection pin of horizontal sawtooth wave AGC retrace capacitor. Recommended capacitance is 0.01 µF.

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 24 of 26 Pin Description (cont.) Pin No. Name DC Voltage (V) Peripheral Circuit Function 12 C AGC 4.0 V H-VCC 7.5 k 1.5 k H-GND Connection pin of horizontal AGC capacitor. Recommended capacitance is 1 µF. 13 Vrefr 1.28 V 4 k H-VCC H-GND Connection pin of reference current source resister. Recommended resistance is 6.8 kΩ. 14 Vrefo 7.0 V 14 10 p 50 µA 0.2 mA H-VCC H-GND Reference voltage output for horizontal pulse delay circuit. Should be connect more than 10 kΩ external resister. 15 V PH 0 to 0.5 V 1.3 to 4.0 V 50 µA H-VCC H-GND 1 k Delay adjustment voltage input pin of horizontal pulse. Input voltage range is 1.3 to 4.0 V. At 0 to 0.5 V, delay is minimized. (0.5 to 1.3 V is unusable range.)

16 Chpd 0 V

(Bottom) 2 k 50 µA2 k H-VCC H-GND 1 k Connection pin of horizontal pulse delay timing capacitor. Recommended capacitance is 100 pF. 0.5 to 5.0 VP-P 0 V H

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 25 of 26 Pin Description (cont.) Pin No. Name DC Voltage (V) Peripheral Circuit Function

17 HPin  H-VCC

50 µA 50 k Horizontal pulse input pin. Low input level is less than 2.0 V, and high is 3.0 to 10 V. (at VCC = 12 V)

18 H-GND   GND of horizontal block

19 Hbias 5.7 to 6.4 V 19 1 p1 k 50 µA H-VCC H-GND Horizontal parabola unbalance control bias voltage input pin. Input voltage range is 5.7 to 6.4 V. 20 V-V CC 12.0 V  V CC of vertical block

REJ03F0197-0201 Rev.2.01 Mar 31, 2008 Page 26 of 26 Package Dimensions 2.0281.528 4.5 15° e 1.778 c L 3.0 0.51 0.9 1.0 1.3 A E 6.15 6.3 6.45 D 18.8 19.0 19.2 Reference Symbol Dimension in Millimeters Min Nom Max 0.22 0.27 0.34 P-SDIP20-6.3x19-1.78 1.0g MASS[Typ.] 20P4BPRDP0020BA-A RENESAS CodeJEITA Package Code Previous Code bp 0.38 0.48 0.58 e1 7.62 7.32 7.92 A2 3.3 SEATING PLANE 20 11 101 c E AL A2A1 bpb3e D INCLUDE TRIM OFFSET. DIMENSION "*3" DOES NOT NOTE) DO NOT INCLUDE MOLD FLASH.

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