制作微型特斯拉线圈(转帖
vocal@ルカ2010/06/05高电压技术 IP:福建
如下关于微型特斯拉线圈的制作虽然是一篇全英文技术文章,但介绍详细值得特斯拉线圈爱好者研读!

Small Tesla Coil
This is my first Tesla coil. It was inspired by an article in the March 1995 issue of Electronics World & Wireless World. Construction was much more straightforward than I expected. I am now tempted to build a bigger one. This is not intended to be instructions for building a Tesla coil, just documenting what I built.

Circuit Description.


The Tesla coil consists of a primary resonant circuit (C1 and L3) and a secondary resonant circuit (L4 with self capacitance and terminal capacitance). The primary and secondary resonant frequencies must match. The mains transformer (T1) charges the primary capacitor (C1) until the spark gap (GAP1) fires. When this happens, the stored energy is applied to the primary coil (L3). There is loose coupling between L3 and L4, causing a very high voltage to develop across the secondary. The series chokes (L1 and L2) are to prevent RF energy passing back into the mains transformer (T1).

Construction.
It is difficult to predict with reasonable accuracy what the resonant frequency of the secondary will be as it depends upon its self capacitance. I found it easiest to build the secondary first, measure its resonant frequency and then design the primary circuit to match.

The secondary was wound by hand on a 200mm length of 40mm diameter drain pipe using 0.26mm diameter enameled copper wire. Double sided tape was used to prevent the windings from unravelling during construction. The top electrode was made from a glass flask, inverted and coated with conductive paint. The coil was varnished in an attempt to improve the insulation.

The primary coil should be about twice the diameter of the secondary and about 5 to 10% of its height. The inductance of this type of coil in micro-henries is (r2n2) / (9r+10h) where n is the number of turns and r and h are the radius and height of the coil in inches. Two turns of 1.6mm diameter enameled copper wire were used. The tank capacitors are a low inductance oil filled type manufactured by Plastic Capacitors Inc. A 50nF in series with a 100nF gave the correct resonant frequency.

The spark gap was made from two short pieces of tungsten rod, which were cut using a Dremel and a cut-off wheel. The chokes are wound on ferrite rods from old radios.

Tuning.
The primary and secondary resonant frequencies should match reasonably accurately. If the primary frequency is higher than the secondary, the options are:

Increase the primary capacitance.
Increase the number of primary turns.
Lower the secondary terminal.
Reduce the number of secondary turns.
Reduce the size of the secondary terminal.
If the primary frequency is lower than the secondary, the reverse applies.




























Above is the result of a resonance sweep test. The primary and secondary were kept separate, but tested simultaneously to see how their resonances compared. A sinewave sweep generator was connected to the bottom of the secondary coil and across the primary capacitor with the spark gap shorted. Trace 1 is proportional to the applied frequency. Trace 2 is the waveform across the primary capacitor. Trace 3 is from an oscilloscope probe placed 300mm away from the secondary coil. The sweep start frequency was 500kHz and the stop frequency 1500kHz. Resonance is just over 1MHz.

Operation.
Various pictures of the Tesla coil operating are shown below. The maximum spark length achievable was around 100mm. Since the energy storage in the primary capacitor is only 267mJ, this is doing quite well. The coupling of the coils may be a little high as there is flash-over on the secondary when discharging into free space. Note the bright light coming from the spark gap.








The size of the terminal was built-up to reduce the resonant frequency of the secondary slightly. This was done to try to make the frequencies match better and also because the conductive paint was burning off. The performance of the coil was not greatly improved by this modification.







I was a bit worried about the camera while taking this last picture. 1043541520-1.jpg
1043541430-3.jpg
1043545115-6.jpg
1043543911-5.jpg
1043541K5-0.gif
来自:电气工程 / 高电压技术
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lovehongkong
14年8个月前 IP:未同步
221695
英文你好,英文再见,英文去死
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y2k
14年8个月前 IP:未同步
221733
用處不太大。。。
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我说要有光
14年8个月前 IP:未同步
221738
吐槽ChinaEDOnline...
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喜欢diy
14年8个月前 IP:未同步
221773
能否做武器? [s:246]
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tyl961115
14年8个月前 IP:未同步
221821
不就是SGTC吗,这可以用作SGTC抢
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vocal@ルカ作者
14年7个月前 IP:未同步
232801
如下关于微型特斯拉线圈的制作虽然是一篇全英文技术文章,但介绍详细值得特斯拉线圈爱好者研读!

小特斯拉线圈
这是我第一次特斯拉线圈。它的灵感来自于1995年3月在世界电子和无线世界上的一篇文章。施工简单得多比我的预期。我现在开始尝试建立一个更大的。这不是拟建设一个特斯拉线圈的指示,只是记录我建造。

电路描述。


在特斯拉线圈)组成的一个主谐振电路(C1和三级)和一个辅助谐振电路(自电容和终端电容腰椎。小学和中学的谐振频率必须匹配。将电源变压器(t1)为收费的主要电容(C1),直到火花隙(GAP1)火灾。当发生这种情况,存储的能量应用到初级线圈(三级)。之间存在的L3和L4,造成非常高的电压,发展跨二级松散耦合。该系列扼流圈(L1和L2)是防止射频能量传递到电源变压器(T1的)回来。

建设。
这是难以合理准确地预测什么样的中学后,将作为它自身的电容取决于谐振频率。我发现最容易建立第一中学,测量其共振频率,然后设计主电路匹配。

其次为伤口上的40毫米直径200毫米排水管道长度使用0.26毫米漆包铜线直径手。双面胶带是用来防止在施工期间揭开绕组。最高的电极由一个玻璃烧瓶,倒与导电漆。线圈是光油,试图改善绝缘。

初级线圈应约两倍,直径中学及约5至10%的高度。这个在微亨线圈式电感(r2n2)/(期9R 10 h)凡n是轮流和r和h数,半径和高度以英寸线圈。直径1.6毫米的两个漆包铜线轮流使用了。坦克电容器是一种低电感石油填补塑胶电容器公司是一家以生产型50nF 100nF了一系列正确的共振频率。

火花间隙是由两个钨杆,短切件用了其中一个德雷梅尔和切断轮。扼流圈是伤口上的旧收音机铁氧体棒。

调谐。
小学和中学的共振频率应匹配合理准确。如果主频率比次要的,更高的选项是:

增加的主要电容。
增加的主要匝数。
降低二级终端。
减少二次匝数。
减少二次终端的大小。
如果主频率比次要的,相反适用低。




























以上是一个共振扫描测试的结果。小学和中学是分开的,但同时测试,看看他们的共鸣比较。正弦波扫频发生器连接到二次线圈的底部,并与全国的差距主要火花电容器短路。跟踪一成正比应用频率。微量二是在主电容波形。跟踪3示波器探头放在远离次级线圈300毫米。该扫描频率为500kHz的启动和停止频率1500kHz。共振是刚刚超过1MHz。

运作。
特斯拉线圈的各种图片操作如下。火花的最大长度达到约为100毫米。由于在主电容储能仅267mJ,这是做得很好。该线圈的耦合可能是有点高,因为是闪在二级排放成为自由空间。请注意,明亮的灯光从火花隙的到来。








该终端的尺寸是内置了以减少二次轻微共振频率。这样做是为了尽量使频率匹配好,还因为被烧毁导电涂料。该线圈的表现并不大大改善这一修改。







我所关注的相机有点担心,而采取这一最后一张图片。
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试卡。。
14年7个月前 IP:未同步
232858
你是用什么翻译的?
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clebschgordangg
14年7个月前 IP:未同步
233079
把这句话放到有道词典上翻译“This is my first Tesla coil”,我的天“小小特使拉线圈,这是我第一次,特使拉线圈”
什么破词典都比不上我这个英语白痴 [s:245]  [s:245]  [s:245]
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