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1 | ========================================== |
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2 | Tektronics 2445 scope PSU repair: part 3 |
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3 | ========================================== |
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4 | |
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5 | :Author: David Douard |
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6 | :Category: Electronics |
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7 | :Tags: Tektronics, 2445, analog scope, repair, test equipment |
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8 | :series: Tek2445 PSU repair |
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9 | :series_index: 3 |
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10 | |
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11 | |
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12 | After having mostly `destroyed the PSU of my Tek 2445 |
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13 | <{filename}/TeK2445_2.rst>`_, I've decided to be a bit less foolhardy |
54 | 14 | and I've subscribed to the `yahoo Tek group`_. I discovered that such |
15 | a failure has already been reported there, also after a full recap of | |
16 | the preregulator and regulator of the power supply. | |
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17 | |
54 | 18 | I also found that I was not completely wrong when I built my |
19 | replacement LR1060. | |
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20 | |
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21 | It seems to be built on a 75Ω resistor. Mine was not so far, but I |
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22 | decided to rebuild one with closer specifications, so I took a new 68Ω |
54 | 23 | resistor and I wrapped some 34 gauge wire around. The result is a bit |
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24 | cleaner, from: |
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25 | |
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26 | .. image:: {static}/images/tek2445/lr1060.jpg |
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27 | :alt: first attempt of a hand made LR1060 chocke. |
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28 | |
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29 | to: |
54 | 30 | |
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31 | .. image:: {static}/images/tek2445/lr1060_v2.jpg |
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32 | :alt: a better hand made LR1060 chocke. |
54 | 33 | |
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34 | |
54 | 35 | However, I was stuck because of my dead T1050. Due to the lack of |
36 | success getting the main oscillator starts, I end up suspecting that | |
37 | T1050 had suffered when Q1050 exploded... And I was right: one of the | |
38 | two primary coils was short. | |
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39 | |
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40 | I've found a reasonnably cheap replacement part on `QService |
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41 | Electronics`_ shop. It took a bit long to arrive (12 days from Greece |
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42 | to France, but to be honest, it seems the longest part of the transit |
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43 | was in France), but it arrived. So yesterday evening I've been able to |
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44 | replce it. |
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45 | |
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46 | |
54 | 47 | The T1050 transformer |
48 | ===================== | |
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49 | |
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50 | This transformer is a small input transformer with 4 coils around a |
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51 | common ferrite core: |
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52 | |
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53 | .. image:: {static}/images/tek2445/tr1050.jpg |
54 | 54 | :alt: The T1050 input transformer. |
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55 | |
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56 | I was not sure of the specifications of each coil, since mine as (at |
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57 | least on one coil) defective. From the schematic, it looked natural |
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58 | that both the primary windings should have the same charactritics. So |
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59 | when my replacement transformer arrived, I took a few measurements. |
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60 | |
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61 | The result is: |
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62 | |
54 | 63 | .. list-table:: T1050 windings |
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64 | :widths: 15 10 30 |
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65 | :header-rows: 1 |
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66 | |
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67 | * - Winding |
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68 | - R |
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69 | - L |
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70 | * - 1-2 |
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71 | - 4Ω |
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72 | - 6mH |
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73 | * - 4-5 |
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74 | - 4.5Ω |
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75 | - 6.5mH |
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76 | * - 6-7 |
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77 | - 0Ω85 |
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78 | - ~ 10µH |
54 | 79 | * - 8-9 |
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80 | - 0Ω8 |
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81 | - ~ 10µH |
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82 | |
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83 | I've also quickly checked the voltage ratios using a 42kHz signal: |
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84 | |
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85 | .. image:: {static}/images/tek2445/tr1050_ratio_measurement.jpg |
54 | 86 | :alt: Measuring the turn-ratios of the T1050 transformer. |
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87 | |
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88 | I use CH2 of my scope to probe the signal produced by the `HP890A4 |
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89 | <{filename}/hp8904a.rst>`_ linked to pins 1 and 2 (thus a primary |
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90 | winding), and CH1 on a secondary winding (pins 6-7), which resulted |
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91 | in: |
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92 | |
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93 | .. image:: {static}/images/tek2445/DS1Z_QuickPrint17.png |
54 | 94 | :alt: Measuring the turn-ratios of the T1050 transformer. |
95 | ||
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96 | .. image:: {static}/images/tek2445/DS1Z_QuickPrint18.png |
54 | 97 | :alt: Measuring the turn-ratios of the T1050 transformer. |
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98 | |
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99 | As one can see, the turn ratio seems to be 10. Both the 2 secondary |
54 | 100 | windings (6-7 and 8-9) which provide power for the preregulator |
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101 | control (U1030) and the inverter drive (U1062, U1064 and U1066), are |
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102 | identical to each other. |
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103 | |
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104 | Testing the new T1050 transformer |
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105 | ================================= |
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106 | |
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107 | After having soldered the "new" T1050 transformer, I followed one part |
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108 | of the Power Supply Troubleshooting Procedure from the Service |
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109 | Manual. In the diagram, there is a path in which there is: |
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110 | |
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111 | - Unsolder and lift the end of W1060 near pin 7 of T1060; |
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112 | |
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113 | - Connect the primary test load between the lifted end of W1060 and |
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114 | the sources of Q1060 and Q1070; |
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115 | |
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116 | - Power up and check for 120V accross load (plus a 1Vpp triangle |
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117 | wave). |
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118 | |
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119 | The test load consist in: |
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120 | |
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121 | .. image:: {static}/images/tek2445/psu_test_load.png |
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122 | :alt: Primary Test Load. |
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123 | |
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124 | So I built one and connected it: |
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125 | |
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126 | .. image:: {static}/images/tek2445/psu_with_test_load.jpg |
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127 | :alt: The PSU with the test load in place of T1060. |
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128 | |
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129 | Was a little anxious when I switch the PSU on, but it did not |
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130 | exploded. And the voltage across the dummy load was just fine! |
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131 | |
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132 | So I resoldered W1060, reinserted all the jumpers (between A2 and A3), |
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133 | plugged in a dummy load on J303 (unregulated 5V), a tried again. The |
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134 | PSU was starting... it was not completely stable though, but I was |
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135 | pretty sure this was due to the fact the load was not correct. So I |
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136 | reinstalled the PSU in the scope, and gave it a try: |
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137 | |
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138 | |
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139 | .. image:: {static}/images/tek2445/back_from_the_death.jpg |
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140 | :alt: It's alive! |
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141 | |
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142 | At last! |
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143 | |
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144 | |
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145 | Summary |
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146 | ======= |
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147 | |
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148 | I've spent a lot of time trying to understand and fix this PSU. I |
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149 | think I've lost a lot of time and effort because I've been too hasty, |
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150 | and I should have taken more time reading the service manuals. By the |
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151 | way, the service manual for the Tek 2465A is a better source of |
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152 | documentation, for example the question I had about the voltages with |
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153 | respect to "REF" on the schematic is answered in this later manual: |
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154 | there are indeed 2 references, as I suspected. |
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155 | |
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156 | The main lesson from this is: never test a switching power supply |
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157 | unloaded. I'm pretty sure I blew up the power transistors, the |
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158 | transformer and a few other parts because I was switching the |
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159 | *unloaded* PSU on and off. It's probably a lesson 101 on switching |
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160 | power supplies... never too late to learn. |
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161 | |
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162 | A the end, I've replaced many parts on my A3 preregulator board. Some |
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163 | are probably not required: |
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164 | |
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165 | - T1050, |
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166 | - Q1060 and Q1070: I replaced with IRF820, |
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167 | - Q1050: replaced with a IRFP450;the higher gate capacitance seems not |
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168 | to be problematic finally, |
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169 | - Q1022, Q1030, Q1040 and Q1063: replaced with 2N4403 and BC337 (the |
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170 | transistors I found at my local components store) |
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171 | - almost every capacitor, |
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172 | - U1029 and U1040 optocoupler , |
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173 | - U1066: replaced by a DS0026CN bought on ebay |
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174 | - CR1040: replaced by an unknown germanium "similar looking" diode, |
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175 | - R1060 and R1070, |
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176 | - R1069 |
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177 | |
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178 | So I'm done for now with this puppy. It should be completely checked, |
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179 | but that will be another story. |
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181 | |
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182 | Post Scriptum |
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183 | ============= |
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184 | |
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185 | For the fun: |
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186 | |
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187 | .. image:: {static}/images/tek2445/side_by_side.jpg |
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188 | :alt: Side-by-side: DS1054Z vs. Tek2445 |
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190 | Despite the fact the Rigol DS1054Z has an incredible number of |
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191 | features for which the Tek cannot compete, I still like this |
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192 | old puppy a lot. Its front panel is much easier to use: every control is |
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193 | directly accessible. And yet, I don't think the Rigol can measure both |
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194 | the rise and fall time (with a decent precision) of a square wave: |
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195 | |
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196 | .. image:: {static}/images/tek2445/rise_and_fall.jpg |
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197 | :alt: Side-by-side: DS1054Z vs. Tek2445 |
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198 | |
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199 | Beautiful double time-base! |
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200 | |
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201 | |
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202 | .. _`yahoo Tek group`: https://groups.yahoo.com/neo/groups/TekScopes/info |
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203 | .. _`QService Electronics`: http://www.qservice.eu/ |