FreeCalypso > hg > freecalypso-docs
annotate FC-handset-spec @ 41:7d77aa76bcaa
FC-handset-spec: beginning of massive document
author | Mychaela Falconia <falcon@freecalypso.org> |
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date | Thu, 10 Jun 2021 07:16:17 +0000 |
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1 FreeCalypso Handset Specification |
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2 ================================= |
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3 |
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4 The purpose of this document is two-fold: |
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5 |
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6 1) This document serves as the principal design specification for the |
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7 FreeCalypso Libre Dumbphone handset hardware which I, Mother Mychaela, |
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8 seek to build. |
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9 |
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10 2) This document also defines the scope of functionality to be supported in |
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11 FreeCalypso handset firmware, including support for additional hardware |
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12 targets beyond the primary FC handset hw target. |
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13 |
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14 1. FC handset hardware specification |
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15 |
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16 1.1. Basic features |
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17 |
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18 The Mother's goal is to produce a replacement for the proprietary Pirelli DP-L10 |
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19 phone, or more specifically, for the GSM-only subset of this Pirelli phone which |
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20 the Mother actually uses, *without* Pirelli's key differentiating feature of |
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21 non-GSM WiFi operation, and without Pirelli's camera. The following hardware |
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22 features are to be included: |
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23 |
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24 * 176x220 pixel color display (no touch) |
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25 * 21-button main keypad |
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26 * 3 side buttons for volume control and an auxiliary function |
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27 * USB port that combines charging and computer interface |
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28 * wired headset jack |
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29 * single SIM slot |
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30 |
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31 The following features which are commonly found in mainstream proprietary |
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32 phones, particularly more recent ones, will NOT be included: |
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33 |
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34 * camera |
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35 * Bluetooth |
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36 * FM radio |
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37 * TV receiver |
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38 * GPS receiver |
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39 * dual SIM slot |
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40 * torch light beyond LCD and keypad backlights |
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41 |
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42 1.2. RF band capability |
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43 |
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44 Our FC handset needs to be quadband GSM; this quadband capability will be |
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45 achieved by copying the RF section and the core PCB layout around it from the |
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46 reverse-engineered iWOW TR-800 modem module, which is itself a very direct |
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47 (almost verbatim) derivative of TI's Leonardo+ quadband reference design. |
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48 |
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49 1.3. RAM and flash |
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50 |
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51 The Mother's intent is to use Spansion S71PL064JA0 flash+RAM MCP on the final |
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52 handset motherboard, providing 8 MiB of flash and 2 MiB of XRAM in a 7x9 mm |
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53 footprint. This flash and RAM capacity is already known to be fully sufficient |
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54 for our FreeCalypso handset firmware in maximal feature configuration, hence |
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55 any larger capacity would be excessive. However, on our FC Venus development |
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56 board we may use the larger S71PL129NC0 MCP, same as used on FCDEV3B V2. |
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57 |
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58 1.4. Liquid crystal display |
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59 |
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60 1.4.1. Display size |
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61 |
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62 The size of the display for our FC Libre Dumbphone handset design is fixed at |
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63 176x220 pixels, 16-bit color, following TI's D-Sample platform and the starting |
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64 point UI code that was developed for it. Thoughts of changing to a different |
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65 display size have been considered and rejected: |
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66 |
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67 * If we were to change to a smaller display size, we would have to do extra work |
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68 on the firmware to shrink the UI to the smaller size, and we would reduce the |
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69 amount of information that can be displayed at once. We would incur extra |
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70 work and a functional loss, but gain absolutely nothing in return. |
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71 |
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72 * If we were to change to a larger display size (240x320 pixels seems to be the |
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73 largest reasonable size for dumbphones, used in high-end Nokia models), we |
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74 would be venturing into uncertain territory - the greatest uncertainty would |
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75 be the extra CPU load on Calypso to draw the larger UI and to refresh the |
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76 larger framebuffer, which is done with PIO on Calypso, without any DMA |
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77 assistance. The D-Sample LCD size of 176x220 pixels already appears to be a |
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78 strain in some drawing code paths, hence the Mother's decision is to play it |
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79 safe and stick with the known working display size. Expanding the UI to make |
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80 sensible use of larger screen real estate would also entail additional work. |
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81 |
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82 176x220 is the display size in pixels, and this resolution number by itself says |
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83 nothing about the physical display size in inches or mm. However, most readily |
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84 available LCDs that are made for this pixel resolution are made in 2.0" diagonal |
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85 physical size, with 31.68x39.60 mm active area and 0.180 mm dot pitch, hence |
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86 this physical size is the one we are going to use. |
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87 |
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88 1.4.2. Specific LCD module selection |
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89 |
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90 As of this writing, the specific LCD module to be used has not been firmly |
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91 selected yet. We are actively looking for an LCD module that fits all of the |
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92 following requirements: |
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93 |
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94 * TFT color LCD, 2.0" diagonal, 176x220 pixel resolution; |
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95 |
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96 * 16-bit microprocessor bus interface; |
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97 |
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98 * 6:00 viewing direction as appropriate for cellular handsets; |
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99 |
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100 * backlight consisting of 3 white LEDs in parallel, joined at the anode, |
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101 with separately brought-out cathodes; |
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102 |
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103 * mechanical design that supports mounting with the FPC tail folded under the |
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104 module, either by way of direct solder termination (no connector) or by way |
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105 of raised sides that create sufficient vertical space to accommodate the FPC |
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106 connector. |
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107 |
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108 The requirement of 16-bit microprocessor bus interface stems from the desire to |
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109 interface this LCD to the Calypso in exactly the same way how TI did it on the |
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110 D-Sample, the 6:00 viewing direction and mechanical mounting requirements stem |
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111 naturally from the target application (cellular phone handset), and the |
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112 backlight LED wiring requirement stems from the constraints of our chosen |
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113 MAX1916 backlight LED driver chip - see section 1.4.4. |
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114 |
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115 1.4.3. Backlight and readability considerations |
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116 |
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117 Out of the various pre-existing mobile phones which I (Mychaela) have |
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118 experienced, there have been 3 different kinds of LCDs in terms of how display |
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119 operation and readability interacts with the backlight: |
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120 |
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121 1) older phones with black&white LCDs: on all phones of this type which I've |
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122 ever used, the display is perfectly readable without the backlight given |
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123 ordinary ambient lighting, be it natural daylight or room lighting. Such |
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124 LCDs are called reflective. With these B&W displays, you only need to turn |
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125 on the backlight if you need to operate the phone in darkness, such as |
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126 outdoors at night or inside with all lights off. The firmware in such phones |
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127 is typically designed to leave the actual display functional and updated at |
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128 all times, with only the backlight subject to on/off control. |
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129 |
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130 2) most newer phones with color displays, of which Pirelli DP-L10 is a |
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131 representative case, have transmissive LCDs that are not designed to be |
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132 readable without the backlight at all - backlight required for readability |
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133 (BLRR) is another way to describe such LCDs. Because the display is not |
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134 readable at all without the backlight, phone firmware is typically designed |
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135 to turn off the entire display (not just the backlight) when the screen goes |
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136 dark, and operation visible to the user is display on/off, rather than |
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137 backlight on/off. It is a good firmware design practice to "swallow" the |
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138 initial keypress that turns on the display from dark state, i.e., to block |
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139 the regular action of whatever button was pressed to "wake up" the display. |
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140 |
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141 3) The color display on Motorola C139 phones is an odd intermediate case: this |
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142 display is NOT practically readable with the backlight off, yet the firmware |
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143 is designed as if the display were readable in this condition: the actual |
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144 display (unsure if it is CSTN or TFT) remains on and updated, and when you |
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145 press some button to "wake up" the display, that button still takes its |
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146 regular action, which is really bad for usability. How do we know that the |
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147 actual CSTN or TFT display remains on and actively updated when it is not |
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148 readable with the backlight off? Answer: the non-backlit display can be made |
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149 readable by shining a flashlight directly at it - but this trick requires a |
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150 directly pointed flashlight; no amount of ordinary ambient light is enough |
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151 to make the display readable. |
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152 |
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153 Because our FC Libre Dumbphone handset will have a color display (contemporary |
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154 TFT) and because we are sane, not copying the monumental design mistake of Mot |
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155 C139, our display will fall into class 2 by the above classification: backlight |
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156 required for readability, full display on/off rather than just backlight on/off, |
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157 firmware operating like Pirelli's in terms of wake-up keypress swallowing. |
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158 |
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159 1.4.3.1. Backlight dimming mode |
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160 |
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161 Because our LCD is of BLRR type and because we seek to fully replicate Pirelli's |
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162 logic in terms of when keypresses are swallowed and when they are not, we need |
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163 to implement a dimming mode for our LCD backlight. In Pirelli's design which we |
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164 are copying, when you are playing with phone menus or composing SMS etc, but are |
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165 not in an active call, the display switches between full brightness and totally |
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166 off - it goes fully off on timeout, and when you press a button to wake it up, |
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167 it switches on at full brightness, together with the keypad backlight. But when |
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168 you are in a call, when the timer expires (and it's a shorter timer, 10 s |
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169 instead of 30 s), the display goes dim instead of fully off, and in this dimmed |
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170 (but still readable) state keypresses are NOT swallowed. |
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171 |
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172 We only need to implement two different intensity levels for the LCD backlight: |
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173 full brightness and in-call dimmed. The backlight intensity level in the dimmed |
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174 state will need to chosen on this principle: use the lowest backlight LED |
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175 current (to conserve battery power and allow longest talk time on one charge) at |
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176 which the display is still readable, similarly to Pirelli's in-call dimmed |
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177 state. |
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178 |
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179 In the user-actively-poking state, as opposed to the long-call dimmed state, |
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180 there is no need to provide different configurable backlight levels - see |
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181 section 1.4.5. |
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182 |
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183 1.4.4. Backlight circuit implementation |
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184 |
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185 In all candidate TFT LCD modules that are being considered (see section 1.4.2), |
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186 the backlight consists of 3 white LEDs wired in parallel, joined either at the |
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187 anode or at the cathode - although as we shall see momentarily, we require an |
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188 LCD module where the 3 LEDs are joined at the anode, with the 3 cathodes brought |
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189 out separately. LCD module datasheets call for 15 mA current through each LED |
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190 at maximum intensity, for 45 mA total, and the LED forward drop voltage (Vf) at |
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191 this rated current seems to range between 2.9 V (what I actually measured on one |
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192 candidate LCD module) to 3.2 V (what the datasheets list as typical) to perhaps |
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193 as high as 3.4 V (what one datasheet lists as the maximum). |
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194 |
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195 Given the parallel (as opposed to series) wiring of the 3 LEDs and the |
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196 relatively low Vf, there is no need to use any kind of boost converter as part |
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197 of the LED driver circuit for this backlight - any boost converter will only add |
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198 inefficiency (more current will be drawn from the battery for the same LED |
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199 current), hence we need to avoid using such. |
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200 |
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201 Regardless of whether a given phone design uses a boost converter or not (it |
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202 seems that older designs do use boost converters, either because older white |
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203 LEDs have higher Vf or because 2 or 3 LEDs are wired in series), all traditional |
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204 phone designs seem to share the quality where the display backlight brightness |
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205 remains the same as the battery discharges and as Vbat goes down - this quality |
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206 was directly observed on the Pirelli DP-L10 (unknown circuit design) and |
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207 inferred from the available schematics for Mot C139 and C155, with both of the |
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208 latter boost-converting to fixed 5.0 V. In our case, even though we choose to |
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209 not use a boost converter for efficiency reasons, we still need to achieve the |
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210 quality of the display brightness remaining the same through the discharge range |
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211 of our Li-ion battery - having the display dim in half as the battery discharges |
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212 from 4.2 V peak to 3.6-3.7 V plateau is simply not acceptable. |
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213 |
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214 The simplest possible LED driving circuit would be one where a current limiting |
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215 resistor is inserted in series with each LED, and then the 3 parallel |
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216 LED+resistor sets are connected across battery terminals, with a transistor |
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217 inserted somewhere to act as the on/off switch. However, this trivial circuit |
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218 is not suitable in our application because it would produce unacceptably large |
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219 variation in display brightness as the battery discharges - hence we need a more |
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220 intelligent LED driving circuit. Our Luna LCD carrier board from the spring of |
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221 2020 features an LDO bringing Vbat down to fixed 3.5 V, followed by very low- |
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222 value resistors in series with each LED - but this approach is not good for |
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223 production either, as it makes the LED current extremely sensitive to any slight |
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224 variations in Vf. |
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225 |
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226 Fortunately, I was able to find a specialized white LED driver chip that is just |
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227 perfect for our application, or more precisely, a specialized chip that acts as |
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228 a constant current sink for such LEDs - Maxim MAX1916, design from 2001, just |
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229 the right time frame for the kind of phone we are seeking to build. This |
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230 special chip takes the place of "dumb" ballast resistors: connect Vbat (battery |
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231 positive terminal) directly to the common anode of the 3 LEDs, but instead of |
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232 series resistors, connect each cathode to the corresponding LEDn pin of MAX1916 |
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233 - *without* any resistors or transistors! FETs inside the MAX1916 take the |
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234 place of resistors as current-limiting elements, and the chip's global on/off |
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235 control takes the place of a separate switching transistor. |
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236 |
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237 The special quality of MAX1916 is that it produces constant current through each |
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238 LED (based on a set reference current and 230x current multiplication circuit |
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239 inside the chip) regardless of variations in both Vbat and Vf! Of course the |
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240 requested current can only be sustained as long as Vbat >= Vf + Vds, where Vds |
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241 is the lowest drop voltage of the FETs inside MAX1916, and once Vbat falls below |
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242 this point, the LED current will begin to decline. However, the beauty of this |
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243 design is that no arbitrary artificial turnover points (like the 3.5 V point in |
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244 our hacky design from the spring of 2020) need to be set: the battery discharge |
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245 point at which the LED current begins to decline will be whatever it comes to be |
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246 naturally, based on Vf (perhaps depending on temperature) and MAX1916 Vds, and |
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247 the decline is expected to be gradual. |
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248 |
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249 1.4.4.1. Backlight current selection and dimming |
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250 |
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251 In the simplest MAX1916-based design, a fixed LED current is set by connecting |
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252 a resistor of appropriately computed value between MAX1916 SET pin and whatever |
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253 regulated fixed voltage rail happens to be available in the system. However, |
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254 in our application (see section 1.4.3.1) we need at least two different display |
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255 brightness levels, and thus at least two switchable LED currents. At first the |
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256 problem seems difficult, but an elegant solution has been found. |
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257 |
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258 LCD backlight LED current will be selected by way of two Calypso GPIO pins |
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259 configured as outputs, and a 74LVC2G125 dual tristate buffer. Each tristate |
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260 buffer's A input will be tied high, and the two Calypso GPIO outputs will be |
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261 connected to buffer output enable inputs. There will be two resistors with |
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262 different carefully computed values, each connected between one of the two |
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263 tristate buffer outputs and MAX1916 SET pin. One resistor will provide a small |
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264 current, the other will provide a large current, and each of these two currents |
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265 will be switchable on/off by Calypso GPIO signals switching the buffer outputs |
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266 between driving high (2.7-2.8 V) and Hi-Z. Resistor values will be chosen such |
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267 that the sum of both currents will be the 15 mA limit (the current is reckoned |
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268 per LED), whereas the small current alone will be whatever we need for the |
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269 battery-saving long-call dimmed mode. |
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270 |
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271 1.4.5. Slight regression relative to Pirelli DP-L10 |
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272 |
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273 The actual LCD backlight LED driving circuit inside the Pirelli phone is not |
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274 known, but reverse engineering of Pirelli's firmware followed by experimentation |
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275 reveals that backlight intensity variation is achieved via a form of PWM, using |
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276 Calypso PWL output - although PWL is used in an inverted sense, such that the |
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277 backlight intensity increases with more 0s being put out on PWL, as opposed to |
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278 more 1s. Thus regardless of the unknown actual circuit implementation, the |
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279 backlight intensity appears to be continuously variable from 1/255 to 255/255, |
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280 which is certainly a much richer control than our crude selection of just 3 |
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281 possible LED currents. |
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282 |
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283 In terms of what Pirelli's fw offers to end users, the backlight intensity in |
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284 the dimmed in-call state is always set to 1/255, without any way to change it, |
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285 whereas the backlight intensity in the active interaction state is selectable |
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286 via a menu among 5 levels; the 5 offered levels turn into 1/255, 64/255, |
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287 128/255, 192/255 and 255/255 in the resulting PWL programming. |
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288 |
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289 So in terms of both hardware capabilities and end user offering via the |
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290 firmware, Pirelli's LCD backlight level control is richer than what we are |
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291 proposing for our FC Libre Dumbphone. However, engineering is all about |
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292 trade-offs and compromises, and in the Mother's opinion, this slight reduction |
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293 in the richness of functionality is sufficiently offset by the efficiency of |
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294 our MAX1916-based approach: aside from the theoretical possibility of a |
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295 switching buck converter, which I've never seen used for LED driving |
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296 applications, our choice of MAX1916 is the most battery-efficient way to drive |
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297 our backlight LEDs. Furthermore, when dimming is effected by switching the |
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298 actual regulated LED current, as in our case, as opposed to applying PWM, our |
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299 backlight becomes more resilient to even lower battery voltages. |
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300 |
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301 Consider what happens when Vbat falls below the point at which the design- |
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302 intended LED current can be maintained - what happens then? If no PWM is |
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303 applied, or if PWM is set to maximum, then display brightness will be whatever |
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304 maximum is possible at this low battery voltage. But if PWM is applied, |
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305 especially very low duty cycles as in the case of Pirelli's dimmed state, then |
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306 the display that has already been dimmed by low Vbat will be *further* dimmed |
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307 by this aggressive PWM, likely producing an unreadable display at this point. |
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308 It may be possible to compensate via extra complexity in the firmware, by |
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309 turning PWM up when Vbat (as measured via Iota MADC) falls too low - but then |
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310 we would be getting really messy, whereas switching the regulated current is so |
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311 much more elegant. With our approach, low-battery-induced dimming in the "full |
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312 brightness" mode will happen at the same discharge point as it would if we had |
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313 used PWM (and set PWM to maximum in this "full brightness" mode), but in the |
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314 in-call dimmed state, further dimming due to low Vbat will probably happen at a |
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315 lower discharge point (if Vf decreases with decreasing current), and when it |
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316 does happen, there won't be a combination of both natural and artificially- |
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317 induced reductions, just the natural one. |
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318 |
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319 Thus based on all of the above considerations, I feel justified in my design |
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320 choice of foregoing PWM control of backlight intensity in favor of fixed current |
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321 switching with much more limited selection. |