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Fast mass programming and PWM controllers for super sonic GC-MS using DSP

机译:使用DSP的超音速GC-MS的快速批量编程和PWM控制器

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In a Gas Chromatograph Mass Spectrometer (GC-MS) employing a quadrupole mass filter, molecules are ionized and transferred to a mass analyzer, where their mass to charge ratios (m/z) are measured. After the ionization step, the ions pass through a series of ion-lenses that focus and guide them into the mass analyzer. The voltages on these lenses can be optimized for each specific m/z value (as the rest of the system is also optimized) to increase the amount of ions reaching the mass analyzer. In certain cases this dynamic mass-dependent optimization of the lenses can increase the signal by a factor of 2 or more. In addition, any GC-MS interface requires that the molecules vaporized and separated by the Gas Chromatograph (GC) will be transferred into the Mass Spectrometer (MS) at high temperature in order to avoid condensation. Any GC-MS and especially those with a supersonic molecular beams interface can benefit from the ability to change the temperature of this transfer-line between the GC and MS. To implement this dynamic optimization a digital circuit was developed, based on a digital signal controller and high voltage amplifiers that is able to optimize 8 independent high voltage channels ranging between ±150 V at a rate of 100 μs. In addition, 4 independent channels of high resolution PWM unit within the above mentioned controller was utilized in order to control the temperature.
机译:在采用四极杆质量过滤器的气相色谱质谱仪(GC-MS)中,分子被离子化并转移到质量分析仪中,在这里分析其质荷比(m / z)。在电离步骤之后,离子通过一系列离子透镜,聚焦并引导它们进入质量分析仪。可以针对每个特定的m / z值优化这些透镜上的电压(因为还优化了系统的其余部分),以增加到达质量分析器的离子量。在某些情况下,镜头的这种与质量有关的动态优化可以使信号增加2倍或更多倍。此外,任何GC-MS接口都要求将通过气相色谱仪(GC)蒸发和分离的分子在高温下转移到质谱仪(MS)中,以避免冷凝。任何GC-MS,尤其是那些具有超音速分子束界面的GC-MS,都可以从改变GC和MS之间的传输线温度的能力中受益。为了实现此动态优化,开发了一种基于数字信号控制器和高压放大器的数字电路,该电路能够以100μs的速率对±150 V之间的8个独立高压通道进行优化。另外,在上述控制器中利用了4个独立通道的高分辨率PWM单元来控制温度。

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