Philips TDA8559T manuals
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36 pages 205.39 Kb
1. General description 2. Features 3. Applications TDA8559TRev. 03 15 May 2006 Product data sheets Low-voltage stereo headphone amplier 2 4. Quick reference data5. Ordering informationProduct data sheets Rev. 03 15 May 2006 3 of 36 3 6. Block diagram4 7. Pinning information7.1 Pinning 7.2 Pin description Philips Semiconductors TDA8559T 5 8. Functional description7 9. Internal circuitry10 10. Limiting values11. Thermal characteristics 12. Characteristics = 25 In accordance with the Absolute Maximum Rating System (IEC 60134). V = 3 V; T C; f = 1 kHz; unless otherwise specied. 11 13. Application information = 25 13.1 GeneralV = 3 V; T C; f = 1 kHz; unless otherwise specied. 12 13.2 Heatsink design13.3 Test conditions 13 13.4 Input congurationsFig 7. Soft mute Fig 5. Input conguration Fig 6. Input conguration Fig 3. Input conguration; with input capacitor Fig 4. Input conguration; without input capacitorVP< 6 V. VP< 6 V. VP< 6 V. At VP< 6 V, combined negative inputs. Product data sheets Rev. 03 15 May 2006 15 of 36 15 13.12 Application 7: Line driver applicationFig 8. Application 1; single-ended with loudspeaker capacitor 13.13 Application diagrams 22 13.14 Printed-circuit board layout13.15 Response curves for low input modeTop view component side. Fig 15. Printed-circuit board layout(1) High mode. (2) Low mode. f = 1 kHz. (1) VP = 3 V, RL = 32 . (2) VP = 5 V, RL = 32 . RL = 32 . (1) VP = 5 V, THD = 50 mW. (2) VP = 3 V, THD = 20 mW. 23 Fig 18. THD as a function of Po (stereo headphone) Fig 19. THD as a function of frequency (stereo(1) VP = 12 V. (2) VP = 3 V and 6 V. (3) VP = 3 V, 6 V and 12 V. (1) VP = 3 V. (2) VP = 12 V. VP = 3 V, Vi = 20 mV. VP = 3 V, Vi = 20 mV. 24 (stereo headphone)VP = 3 V, Rs = 0 , Vr = 0.2 V (RMS). (1) RL = 32 , THD = 10 %. (2) RL = 32 , THD = 0.5 %. (1) RL = 25 . (2) RL = 32 . f = 1 kHz. (1) VP = 3 V, RL = 25 . (2) VP = 5 V, RL = 25 . 25 Fig 26. Total worst case power dissipation as a function of supply voltage (SE) (stereoFig 27. THD as a function of Po (BTL mono) Fig 28. THD as a function of frequency (BTL mono) Fig 29. SVRR as a function of frequency (BTL mono)(1) VP = 3 V, RL = 25 , THD = 70 mW. (2) VP = 5 V, RL = 25 , THD = 150 mW. VP = 3 V, Rs = 0 , Vr = 0.2 V (RMS). 26 13.16 Response curves for high input mode(1) THD = 10 %, RL = 25 . (2) THD = 0.5 %, RL = 25 . (1) RL = 25 . (2) RL = 32 (1) RL = 32 , THD = 10 %. (2) RL = 32 , THD = 0.5 %. (1) RL = 25 . (2) RL = 32 . VP = 10 V, RL = 32 , f = 1 kHz. VP = 10 V, RL = 32 . (1) Po = 100 mW. (2) Po = 50 mW. 27 Fig 34. THD as a function of Po (stereo headphone) Fig 35. THD as a function of frequency (stereoVP = 10 V, Vi = 20 mV. VP = 10 V, Rs = 0 , Vr = 0.2 V (RMS). SVRR (dB)(1) VP = 12 V, RL = 1 k. (2) VP = 18 V, RL = 1 k. VP = 12 V, Vo = 1 V. VP = 12 V, Vi = 20 mV. VP = 12 V, Rs = 0 , Vr = 0.2 V (RMS). 28 driver)29 14. Test information14.1 Quality information is applicable. General Quality Specication for Integrated Circuits, SNW-FQ-611The(1) THD = 10 %, RL = 1 k. (2) THD = 0.5 %, RL = 1 k. Fig 42. Vo as a function of VP (stereo line driver) 30 15. Package outlineSO16: plastic small outline package; 16 leads; body width 3.9 mm SOT109-1Fig 43. Package outline SOT109-1 (SO16) 31 16. Soldering16.1 Introduction to soldering surface mount packages 16.2 Reow soldering 16.3 Wave soldering 32 16.4 Manual soldering 16.5 Package related soldering information 34 17. Revision history35 18. Legal information18.1 Data sheet status 18.2 Denitions 18.3 Disclaimers 18.4 Trademarks 19. Contact information 36 20. Contents
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