首页> 外文期刊>Proceedings of the IEE - Part B: Electronic and Communication Engineering >A transistor d.c. amplifier for use in analogue computers
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A transistor d.c. amplifier for use in analogue computers

机译:晶体管d.c.用于模拟计算机的放大器

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The use of transistors in place of thermionic valves and electromechanical relays in d.c. amplifiers for analogue computers provides a potential means of reducing their size and power consumption and of increasing their reliability. The paper starts by analysing the transistor operational amplifier when used as a summing amplifier and as an integrator. This specifies the characteristics required to give a computing accuracy of better than 0.1% per stage in conventional real-time analogue computers. The amplifier designed to meet these requirements is in two parts. The first amplifier has a transfer impedance of 1000 volts/?A and gives an output swing of ?30 volts when feeding a 10-kilohm load. It is built up of five direct-coupled stages employing, where possible, feedback to minimize the effect of transistor parameter changes. Stabilizing networks are designed for overall resistive or capacitive feedback. The amplifier closed-loop bandwidth is 18 kc/s and the phase shift at 100c/s is less than 0.1? (for a 1-megohm feedback resistance). The second amplifier, which feeds from the virtual-earth point into the first, is a low-drift narrow-bandwidth d.c. chopper-type amplifier with a current gain of 500. In the complete system this reduces the drift of the first amplifier by a factor of 500 and gives a resultant input drift current, over a temperature range of about 5?C about room temperature, of 10?9 amp and over the range 25??50?C of 10?8amp. With a 1-megohm feedback resistance the former leads to an outputvoltage drift of 1 mV. The overall bandwidth is extended to that of the first amplifier aloneby shunting the second narrow-band amplifier by an RC network. An analysis of the resulting double-loop amplifier enables the principal parameters to be chosen to maintain a stable system with the necessary gain over the range of operating frequencies. Some test results obtained on a printed-circuit version of the amplifier, which is to form the main computing element of a s-n-nmall generalpurpose analogue computer show the amplifier performance to beadequate for the majority of analogue computing applications.
机译:在直流电中使用晶体管代替热电子阀和机电继电器用于模拟计算机的放大器提供了一种减小其尺寸和功耗并提高其可靠性的潜在手段。本文首先分析了用作求和放大器和积分器的晶体管运算放大器。这规定了在常规实时模拟计算机中,要使每级的计算精度优于0.1%所需的特性。为满足这些要求而设计的放大器分为两部分。第一放大器的传输阻抗为1000伏/?A,当馈入10千欧负载时,输出摆幅为?30伏。它由五个直接耦合级组成,在可能的情况下采用反馈以最小化晶体管参数变化的影响。稳定网络专为整体电阻或电容反馈而设计。放大器的闭环带宽为18 kc / s,在100c / s时的相移小于0.1Ω。 (对于1兆欧的反馈电阻)。从虚拟地球点馈入第一个放大器的第二个放大器是低漂移窄带d.c。斩波型放大器,电流增益为500。在整个系统中,这将第一个放大器的漂移减小了500倍,并且在大约室温下约5?C的温度范围内提供了最终的输入漂移电流。 10?9安培,并且在10?8amp的25?50?C范围内。反馈电阻为1兆欧时,前者会导致1 mV的输出电压漂移。通过使用RC网络将第二窄带放大器并联,可以将整体带宽扩展到第一放大器的带宽。通过对最终的双环放大器进行分析,可以选择主要参数,以在工作频率范围内维持具有必要增益的稳定系统。在放大器的印刷电路版本上获得的一些测试结果将构成s-n-nallall通用模拟计算机的主要计算元素,表明放大器的性能足以满足大多数模拟计算应用的需求。

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