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[10MHz] add a blog post about 10MHz reference
David Douard <david.douard@logilab.fr>
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1 | ========================================== |
518b499af706
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2 | Building a bench 10MHz reference: part 1 |
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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: test equipment, 10MHz, Rubidium |
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d37f233794c0
[10MHz] is part of a series (hopefully)
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8 | :series: 10MHz Bench Reference Standard |
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[10MHz] new small follow-up for the 10MHz freq reference series
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9 | :series_index: 1 |
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10 | |
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11 | Many electronics test equipment need an accurate time base. Most |
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12 | often, it's build on a 10MHz base. |
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13 | |
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14 | For quite a while now, I have a used rubidium frequency and time |
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15 | reference (Efratom Model LPRO-101) waiting for a nice enclosure. I |
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16 | also have a small Extron Electronics video signal amplifier I thought |
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17 | I could use to make my freq reference able to provide its signal to |
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18 | several test equipments at once. |
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19 | |
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20 | The Rubidium Frequency Reference |
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21 | ================================ |
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22 | |
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23 | The device is a small enclosure with only a 2x5 pins connector: |
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24 | |
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25 | .. image:: {filename}images/freq_ref/efratom.jpg |
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26 | :alt: The Efratom LPRO-101 frequency standard. |
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27 | |
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28 | The exact model is an Efratom Rubidium Frequency Standard Model LPRO-101: |
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29 | |
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30 | .. image:: {filename}images/freq_ref/efratom_sticker.jpg |
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31 | :alt: The Efratom LPRO-101 frequency standard. |
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32 | |
38 | 33 | Inside the enclosure, there is a single PCB with SMD and through hole |
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34 | components. It's quite dense. |
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35 | |
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36 | .. image:: {filename}images/freq_ref/efratom_inside.jpg |
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37 | :alt: The PCB of the Efratom LPRO-101 frequency standard. |
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38 | |
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[10MHz] small stylistic fix
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39 | The rubidium lamp with the resonant cavity occupy almost a quarter of the |
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40 | total area. The cover of the enclosure is compartimented, mainly to |
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41 | shield the lamp+cavity device from the remaining of the board: |
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42 | |
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43 | .. image:: {filename}images/freq_ref/efratom_enclosure.jpg |
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44 | :alt: The enclosure of the Efratom LPRO-101 frequency standard. |
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45 | |
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46 | |
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47 | The Rubidium Freq Ref seems to workjust fine. I've powered it a few |
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48 | times, and it take a few minutes to lock the lamp and stabilize the |
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49 | output frequency. I've made a quick measurement of the power |
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50 | consumption; at startup time, the current goes up to 1.5A, but after a |
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51 | while, it stabilize around 0.5 or 0.6A. According a voltage 24VDC, it |
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52 | starts with 36W then goes down to 15 or 16W. |
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53 | |
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54 | Now, I have to embed it in a nice enclosure (preferably an aluminium |
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55 | one so I can use is as a heatsink, since the frequency reference |
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56 | produces a bit of heat.) |
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57 | |
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58 | The Extron Video Amplifier |
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59 | ========================== |
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60 | |
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61 | The video amplifer on the other hand has a bit of a trouble: |
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62 | |
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63 | .. image:: {filename}images/freq_ref/extron.jpg |
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64 | :alt: the Extron Electronics video amplifier |
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65 | |
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66 | As you can see on the picture above, the inductor is broken, and there |
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67 | is no visible mark on it. This inductor is used to produce the |
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68 | symetric voltages required to poser the opamp used to dispatch the |
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69 | signal. |
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70 | |
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71 | The switching power modules used on the board is a LT1616_ (marked as |
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72 | LTNB on the S6 package). So I reversed engineered a bit the schematic |
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73 | of the power to try to guess what kind of value this double inductor |
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74 | could be, since the reference schematic in the datasheet does not use |
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75 | such a dual inductor(/transformer). |
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76 | |
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77 | Fro the schematic I could extract, it appeared that the design is in |
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78 | fact very close to the reference schematic proposed by LT in the |
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79 | datasheet_, in the Bipolar Output DC/DC Converter configuration page |
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80 | 16: |
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81 | |
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82 | .. image:: {filename}images/freq_ref/lt1616_bipolar_output_DC2DC.svg |
38 | 83 | :alt: LT1616 Bipolar Output DC/DC converter. |
84 | :align: center | |
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85 | |
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86 | It produces +/-5V from the 12V input. But still, I did not know what |
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87 | kind of inductor/xformer I should use. I did not notice at first sight |
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88 | the two references for the inductor that are proposed in the reference |
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89 | design. So I first searched using the nice faceted search tool of |
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90 | digikey (reducing the selection according the informations I have on |
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91 | the broken device and then looking at the pictures), I finally could |
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92 | find the reference of the inductor. By the way, it's a Sumida CLS62 |
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93 | Series inductor (as indicated in the datasheet). And according to the |
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94 | reference design, it should be a 22µH one. So let's make a purchase |
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95 | for this inductor as well as some 20k resistors for my HP8904A_. |
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96 | |
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97 | .. _HP8904A: {filename}hp8904a.rst |
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98 | |
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99 | |
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100 | |
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101 | |
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102 | .. _LT1616: http://www.linear.com/product/LT1616 |
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103 | .. _datasheet: http://cds.linear.com/docs/en/datasheet/lt1616fs.pdf |