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  • 學位論文

多通道旋轉式冷光測試系統

Rotation based multi-channel bio-luminescence detection system

指導教授 : 婁世亮
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摘要


本論文的研究目標為發展旋轉式多通道生物冷光偵測系統。該系統包含的重要子系統有光電倍增管、試管轉體、控制電路及機構。 光電倍增管將冷光光子轉換為類比電壓訊號;微控器單晶片MSP430F1611是控制電路之主要元件,將類比訊號轉換為數位訊號為其負責工作之一;系統中之試管轉體包含有一黑色壓克力轉盤,它可藉微控器控制步進馬達將之帶動旋轉;轉盤表面外緣處設計有三個可以置放試管大小之穿透孔洞。將先前所提的相關元件組裝至機構之中,確保在上蓋之時不會有光子進出。微控器轉換後之數位訊號傳進電腦中進行曲線繪製。 論文探討背景雜訊與旋轉轉速穩定性以評估所建構的系統。將系統上電並確保機構關閉狀態,檢視系統的背景雜訊。實驗結果顯示背景雜訊大約為6 mV。微控器是藉旋轉計數值(也就是每一旋轉步進的時段)掌控壓克力轉盤的旋轉速度。旋轉計數值和旋轉速度成反比相關。根據實驗結果,最適合本系統試管轉體的旋轉計數值介於55至500之間。試管轉體的旋轉穩定性是由相鄰兩試管旋轉步進的步數所決定,經驗證後,本系統相鄰兩試管旋轉步進的步數為63或64。據此,本研究探討試管轉體從靜止狀態到旋轉速度穩定所需的旋轉圈數,結果顯示,試管轉體需要2~3旋轉圈才能達到穩定的轉速。

並列摘要


This thesis study aims on the design and development of a rotation based multi-channel bio-luminescence detection system. The system mainly consists of a photomultiplier tube (PMT), a tube rotator, a control circuit and a cage. The PMT detects, amplifies and converts light photons to analog voltage signals. A microprocessor, MSP430F1611, is the core component of the control circuit. It transforms the analog signals into digital. The tube rotator includes a dark lucite disk that is rotated by a motor, which is also controlled by microprocessor. On the surface near the edge of the disk, three open holes were designed so that the diameter of the holes is just able to hold the designated tubes. The aforementioned components were assembled within the cage. Effort was made to ensure light photons can not be in and out the cover of the cage is closed. The detected signals are digitally transferred to a computer for curve plotting. The developed system was evaluated in the aspects of the background noise and the stability of the rotation speed. The background noise study was performed in a setup that the cage was closed and then the system was powered on. The result indicated the background noise was about 6 mV. The rotation speed of the lucite disk in the rotator is determined by the microprocessor. It issues a rotation speed index value (RSIV) representing the time duration of each angular movements (or steps). The index value is inversely proportion to the rotation speed. According to the experimental results, the operable RSIV range from 55 to 500 for the tube rotator used in this work. The rotation speed stability was determined by the angular steps that are required to move the disk from one tube hole to the next adjacent one. The study results show that the steps between any two adjacent tube holes are about 63 steps. Based on this finding, an experiment was carried out to study number of rotation cycles required to stabilize the speed when the tube rotator is in rest initially. The results indicate the rotator needs 2~3 cycles to stabilize its rotation speed approximately.

參考文獻


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