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------=_NextPart_01C936B0.3E7DB6E0 Content-Location: file:///C:/51615E54/tubes_v14_files/pres.xml Content-Transfer-Encoding: quoted-printable Content-Type: text/xml; charset="utf-8" ------=_NextPart_01C936B0.3E7DB6E0 Content-Location: file:///C:/51615E54/tubes_v14_files/slide0001.htm Content-Transfer-Encoding: quoted-printable Content-Type: text/html; charset="us-ascii" Music and Engineering: Amplifier and Vacuum Tube basics
Music and Engineering:
Amplifier Basics and Vacuum Tubes
Tim Hoerning
Fall 2008
(last modified 10/7/08)
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quoted-printable Content-Type: text/html; charset="us-ascii" Music and Engineering: Amplifier and Vacuum Tube basics
Overview
•<= /span>Classes of Amplifiers
–<= /span>Linear – Classes A, B & AB
–<= /span>Switching – Class D
•<= /span>Introduction to Vacuum Tubes
–<= /span>Thermionic Emission and the Edison Effect
–<= /span>Diodes, Triodes, Tetrodes and Pentodes =
–<= /span>Common Tubes
•<= /span>Common Vacuum Tube Circuits (not yet completed)= 3;
–<= /span>Power Supply section
–<= /span>Preamp
–<= /span>Phase Splitter
–<= /span>Power Amp
–<= /span>Reverb and Tremolo effects
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Amplifier Classes
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Amplifier Class definitions
•<= /span>Amplifier Classes are generally defined by the amount of time that an output device is conductions
–<= /span>Class A – each output device is conducting 1= 00% of the time
–<= /span>Class B – each output device is conducting 5= 0% of the time
Class AB – each output device is conducting = 50% < X < 100%
–<= /span>Class C – each output device is conducting &= lt; 50% of the time (not = used in audio amplifiers – more common in RF amplifiers)
–<= /span>Class D – a switching amplifier.  The output devices are only conducting when the amplifier is = switching between rails.
------=_NextPart_01C936B0.3E7DB6E0 Content-Location: file:///C:/51615E54/tubes_v14_files/slide0050.htm Content-Transfer-Encoding: quoted-printable Content-Type: text/html; charset="us-ascii" Music and Engineering: Amplifier and Vacuum Tube basics
Class A
•<= /span>In the above Diagram, the class A amplifier is illustrated with conceptual blocks instead of specific components such as transistors or vacuum tubes
•<= /span>A Class A amplifier is defined as one in which the output device is conducting for the complete waveform cycle.   Anything less than complete conduction of all output devices is not class A
•<= /span>As with any audio amplifier, the signal should be = biased in the middle of the linear region.
•<= /span>Class A amplifiers are the least efficient of all amplifiers
•<= /span>Since most active devices have different clipping characteristics in cut off or saturation, class A amps often exhibit asymmetrical clipping.
•<= /span>Class A amplifiers are the most common in older sm= aller amplifiers because of the lo= w part count.  It is the only amplif= ier class that allows for a single output device while still amplifying the full waveform
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Class A Outputs
Wha= t is the problem with this output?&n= bsp;
Is it Class A?=
Wh= at is the problem with this output?&n= bsp;
Is it Class A?=
A correct class A output!
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file:///C:/51615E54/tubes_v14_files/slide0067.htm Content-Transfer-Encoding: quoted-printable Content-Type: text/html; charset="us-ascii" Music and Engineering: Amplifier and Vacuum Tube basics
Class A Graphical Dynamic Transf= er Function
•<= /span>The graphical transfer function shows the input signal on the y-axis, and the output on the x-axis
•<= /span>The curve above shows a class A amplifier with saturation.
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Class B
•<= /span>In the above Diagram, the class B amplifier is illustrated with conceptual blocks instead of specific components such as transistors or vacuum tubes
•<= /span>A Class B amplifier is defined as one in which the output device is conducting for 50% of the waveform cycle.
•<= /span>The devices should be biases so that each device conducts during it’s half of the cycle (the positive or negative half) and is cut o= ff during the other half.
•<= /span>Class B amplifiers are more efficient than class A= since the draw no quiescent curren= t. (no signal =3D no current)
•<= /span>Since paired devices are often used, class B amps = can exhibit symmetrical clippi= ng.
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IQAAOw== ------=_NextPart_01C936B0.3E7DB6E0 Content-Location: file:///C:/51615E54/tubes_v14_files/slide0068.htm Content-Transfer-Encoding: quoted-printable Content-Type: text/html; charset="us-ascii" Music and Engineering: Amplifier and Vacuum Tube basics
Class B Outputs
This is the output from the bottom device
This is the output from the top device
The combined output.  Notice the crossover di= stortion when neither device is conducting.
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Class B Graphical Dynamic Transf= er Function
•<= /span>The graphical transfer function shows the input signal on the y-axis, and the output on the x-axis
•<= /span>The curve above shows a class B amplifier with saturation and a dead-zone (a defining characteristic of a class B amplifier)
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Class AB
In the above Diagram, the class AB amplifier is illustrated with conceptual blocks instead of specific components such as transistors or vacuum tubes
•<= /span>A Class AB amplifier is defined as one in which the output device is conducting for more than 50% but less than 100% of the waveform cycle. = ;
•<= /span>The devices should be biases so that each device conducts during it’s half of the cycle, plus a little more and is cut off during the majority o= f the other half.
Class AB amplifiers are more efficient than class = A, but not as efficient as class B. They draw some quiescent current.
•<= /span>Class AB amplifiers are the most common in larger = guitar amplifiers because of their efficiency.
•<= /span>Tube amplifiers have two subtypes
–<= /span>AB1 – grid current never flows
–<= /span>AB2 – grid current flows for part of the cyc= le
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Class AB Outputs
This is the output from the bottom device
This is the output from the top device
The combined output.  Notice th= e lack of crossover = distortion when devices are not quite conducting
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Class D
•<= /span>In the above Diagram, the class D amplifier is illustrated with conceptual blocks instead of specific components such as transistors or integrated devices
•<= /span>A Class D amplifier is defined as one in which the output device is conducting for the minimum amount possible.  For this reason it is called a “switching amplifier”= 3;
•<= /span>In a class D amp,
–<= /span>The input is compared to a high frequency (~100kHz= ) ramp waveform. 
–<= /span>The output of the comparator is a Pulse Width Modu= late (PWM) signal where the width of the pulse is the relative to the amplitude of the original signal
–<= /span>The PWM signal drives high capacity output devices= .   These devices are only work= ing at a fraction of the capacity as they would during class A operation.
–<= /span>The PWM output of the amplifier must be run throug= h an integrator (or Low Pass Filter) to reconstruct the audio.  Very often the speaker itself can be used as a LPF.
•<= /span>The devices are not conducting all the time.  In addition voltages are kept low= to minimize power loss during switching.
•<= /span>Class D amplifiers are very efficient.
Class D amplifiers are the most commonly used in l= arger PA system amplifiers because of their efficiency.  They  also common in cell phones and laptop computers because they are more efficient= and preserve battery life.
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file:///C:/51615E54/tubes_v14_files/slide0072.htm Content-Transfer-Encoding: quoted-printable Content-Type: text/html; charset="us-ascii" Music and Engineering: Amplifier and Vacuum Tube basics
Class D Outputs
This is the output from Integrator (low pass filter)
This is the output from the PWM module (one sine wave = period)
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Vacuum Tubes
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Tubes (Valves)
•<= /span>At one point, before the in invention of the trans= istor, practically all electronic devi= ces were tube based.
–<= /span>Tubes were the first wide-spread method of control= ling electrical signals without moving parts.
–<= /span>The first computers were vacuum tube based (and took up rooms)
•<= /span>While Vacuum tubes are considered outdated by most of the world they are still used in several k= ey = areas
–<= /span>High power, high frequency radio transmission =
–<= /span>Cathode Ray Tubes in televisions and computer monitors (finally being replaced by LCD and Plasma= technology)
–<= /span>Audio Amplifiers (both instrument and audiophile)&= #13;
•<= /span>The basic tube includes several electrical element= s = sealed in a glass envelope with a vacuum or near <= /span>vacuum inside the envelope.
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Thermionic Emission and the Edison Effect
•<= /span>The fundamental principle of tubes is Thermionic <= /span>= Emission.
When certain metals are heated, their electrons wi= ll form a cloud around the metal. <= /div>
•<= /span>While working on the light bulb, Edison discovered= = that a current will flow if a plate near the heate= d element is kept at a more positive charge than the= element
•<= /span>Fleming used the principle to design the Diode, th= e = first vacuum tube (patented in 1904)
•<= /span>The heated negative terminal was dubbed the Cathode and the positive terminal the Anode. <= /span>
•<= /span>Cathodes can be heated directly (as shown – = the = cathode carries the current used to heat it) or indirectly (a separate heater under the cathode = heats the cathode).
–<= /span>Indirectly heating offers two advantages
•<= /span>Minimizes AC noise
Permits close spacing or shared heater elements fo= r more gain.
–<= /span>Direct heating is more efficient
<= span style=3D'font-size:78%'>Plate is = Positive -Current will flow
= Plate is = Negative - Current wont flow<= /b>
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Diode
•<= /span>Tube Diodes work the same as solid state diodes= 3;
–<= /span>Current only flows when the Anode (or plate in vac= uum tube terminology) is has a positive voltage relati= ve to the cathode
–<= /span>In most rectification circuits the Plate is attach= ed to the power transformer= and the cathode to the DC power supply section (see handouts for schematics)
•<= /span>Diodes are available with multiple configuration <= /span>options
–<= /span>1 or 2 plates (for half or full wave rectification)
–<= /span>1 or 2 cathodes (in conjunction with 1 or 2 plates= , but in varying combinations)
–<= /span>Directly or indirectly heated
•<= /span>Full Wave rectification is generally performed wit= h a single 2 plate tube and a center tapped power transformer.
•<= /span>Some Commons Tubes
–<= /span>35W4 – indirectly heat half wave rectifier&#= 13;
–<= /span>5Y3GT – directly heated full wave rectifier<= /span>
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Diode – Electron Issues
•<= /span>Not all electrons flow to the anode
–<= /span>Some return to the cathode
–<= /span>Some stay in the air as a “space charge̶= 1;
•<= /span>The Space Charge has a repelling force = on other electrons
•<= /span>Can reduce the Space Charge in a few = ways
–<= /span>A higher plate voltage will improve the number of electrons reaching the plate =
–<= /span>Reducing the distance between the cathode and the plate will help =
•<= /span>At the saturation point, all available electrons will flow from the cathode to the = anode.
–<= /span>This saturation current is called the “emission current” <= /div>
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Triode
•<= /span>First electronic device to allow voltage to control current flow with a contin= uous range.
•<= /span>A “control grid” is built between the cathode and the plate.=   (the “grid” is actual= ly a loosely wrapped spiral cage)
•<= /span>The voltage on the grid determines the amount of <= /span>current that flows through the plate. <= /span>
–<= /span>If it’s very negative (relative to the catho= de), then no current flows to = the plate.
–<= /span>The more positive the signal, the more current flows.
–<= /span>By applying an appropriate negative bias to the gr= id to center an AC signal in the usable output range of = the tube, one can create a = simple amplifier stage
•<= /span>These metal elements in the tube have inter-elemen= t capacitances
–<= /span>The grid to plate capacitance is the most importan= t
–<= /span>This can produce coupling between elements.
•<= /span>Grid to Plate coupling could cause instability in = power output stages
•<= /span>Some Common Tubes
–<= /span>Not many – most triodes are combined with ot= her elements (more on this later)
–<= /span>6C4 – indirectly heated power triode
–<= /span>6AV6 – high mu triode w/ a twin diode
–<= /span>12BF6 – med mu triode w/ a twin diode
For what solid state device have you used the word triode used to describe?
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Twin Triode
As circuits got more complex, multiple triodes (and later other tube devices) were enclosed in the same glass envelope to save more.
•<= /span>One of the more common tubes used in audio amplifies is a twin triode - two independent triodes in the same glass envelope.
•<= /span>Heaters can be shared or independent
–<= /span>Independent heaters can be run in series or parallel
•<= /span>Common Tubes
–<= /span>6SN7GT – Med-mu indirectly heated twin triode with an octal base
–<= /span>12AU7 – med mu indirectly heated twin triode with a 9 pin mini base
–<= /span>12AX7 – high mu indirectly heated twin triode with a 9 pin min base.  Pin compatible with the 12AU7 and 12AT7<= /div>
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Tetrode
•<= /span>As the name implies, a tetrode has an additional element.
The “screen grid” was added to reduce = the control grid to plate capacitance <= /span>
–<= /span>It acts as a electrostatic shield to reduce capacitance by a factor of 100. =
The spacing between the wires is large
–<= /span>A high voltage is put on the screen grid
•<= /span>This attracts some electrons, but most reach the plate
Plate voltage itself becomes less important. <= /span>
•<= /span>As long as VP >= VSG= , the plate current depends more on VSG.  &#= 13;
•<= /span>Since current is largely independent of VP<= /span>, it is possible to get more amplification and less grid to plate feedback
•<= /span>Equivalent to using transistors in <= span style=3D'position:absolute;top:87.0%;left:36.51%;width:57.67%;height:5.25%= '>Cascode configuration
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Pentode
Electrons that strike the plate with high velocity= can free other electrons – called “sec= ondary emission”
These electrons can be attracted by the screen grid which reduces plate current
–<= /span>The solution is to add a fifth element – the= “suppressor grid”
•<= /span>Suppressor grid is usually set at cathode <= /span>voltage
–<= /span>In certain tubes this connection in made internall= y
•<= /span>Benefits
–<= /span>Possible high voltage amplification with moderate = plate voltages
–<= /span>Higher power output with lower grid driving voltages.
•<= /span>Common Tube
–<= /span>6BQ5 – EL84 – Power Pentode
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Beam Power Tubes
•<= /span>Beam confine electrons to a area less than = 360 degrees. 
•<= /span>Usually the CG and SG wires are lined up to minimize current in SG.
•<= /span>Beam confining electrodes are used to define the beam and reduce secondary emissions
•<= /span>Common tubes
–<= /span>6L6GT – Beam Pentode
–<= /span>50L6GT – Beam Pentode
–<= /span>6AQ5A – Beam Pentode
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Bases
The current landscape has simplified to two predom= inant bases
–<= /span>Octal – 8 large pins with a phenolic base including a locating tab to align the tube in the socket (shown on right above)
–<= /span>9 pin miniature – 9 small wire pins.  Bottom of tube has room for 10 pins, but the missing pin serves as an alignment d= evice. (shown on left above)
•<= /span>In the long history of tubes many other bases have= come and gone before and af= ter the octal and 9 pins.   = They just didn’t have the longevity
–<= /span>The earliest vacuum tubes use a four thick pin bas= e
•<= /span>Some have an additional wire that runs to the top = of the tube
Later experiments in multi circuit tubes led to ot= her layouts
•<= /span>The 11 pin compactron 6U10 features 3 triodes in o= ne envelopes (used by Amp= eg in the 70s)
•<= /span>The Nuvistor was miniture “high-technology&#= 8221; before the solid state devices dominated the market
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ltrdSqyHIY7SEPqAap3765cRbWvopkcYdPs0eWHoTXnPDLmsmrep2qv7uqdzzCeC2uoMNMnfHIql ZaLdmctDDLMOwjQnNeoJYSIvFqqjOAQFJFK1ndbSwhA9ArDg/nWywdLrMyeJqdInEroGrzxYJisV bpvO5/yHAp9v4HsBu+0zTSy9SxOAPwrshb3KneYHL9/u/NTXtLstuaM4OeMjJ/WuiNDDx7P5mUqt aRm2Gm29ifLj3gKOQW4qcSKxLscDHOO1TmzvC6kWpwBwcjj9aa2nXTuQbc464XHX866FKmlZNGPL N7ohd2EJUHeo65zx9PauI8ZkHxNMRjBht8YP/TFK9AbT7ryv3cLodpOMr1rgPGhI8UXAZdrCKAFc 5wfJSuDGyi4Kz6nZhU1J3R//2R== ------=_NextPart_01C936B0.3E7DB6E0 Content-Location: file:///C:/51615E54/tubes_v14_files/slide0078.htm Content-Transfer-Encoding: quoted-printable Content-Type: text/html; charset="us-ascii" Music and Engineering: Amplifier and Vacuum Tube basics
Tube Characteristics
Tubes have= both Static and Dynamic Charac= teristics
Static Characteristics are shown on plate <= /span>characteristics and mutual characteristics curves.=   See curves in “Electron Tube Characteristics” chapter of RCA tube manual
D= ynamic Characteristics include
Am= plification Factor
Pl= ate resistance
Pl= ate transconductance
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Dynamic Characteristics
•<= /span>Amplification factor – mu – m
The ratio of the change in plate voltage to a chan= ge in control voltage (in the op= posite direction) given that the plate current remains unchanged
•<= /span>Ex. A 0.1 control voltage changed produces a 1 volt plate voltage change= given a mu of 10
•<= /span>Plate Resistance&= nbsp; rp
–<= /span>Resistance of the path between the cathode and pla= te to alternating curren= t.
–<= /span>rp =3D Change in voltage @ plate / ch= ange in plate current measured.
–<= /span>Expressed in ohms
•<= /span>Transconductance - gm
–<= /span>Transconductance =3D mu / rp <= /div>
–<= /span>Specifies the ratio of plate current output change relative to a change= in voltage on the control grid.
–<= /span>Measured in mhos
•<= /span>Plate Efficiency
–<= /span>The ratio of the AC power output to the produce of= the DC plate voltage and DC pla= te current.  i.e. a ratio of the= AC power to the DC power&= #13;
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Changing/Testing Tubes
•<= /span>Since tubes have filaments like light bulbs, they = must be changed.
–<= /span>Tubes burn out
–<= /span>The Vacuum is lost and air has entered the tube (t= ubes often glow blue when thi= s has occurred) 
•<= /span>Tubes will often last years if unused or used lightly
–<= /span>New Old Stock tubes still command premium dollars&= #13;
–<= /span>New tubes are being manufactured in Russia and China
•<= /span>There are several types of tube testers
–<= /span>Emission testers
–<= /span>Transconductance testers
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Emission Testers
•<= /span>The above two testers determine the emission outpu= t of the tube. 
•<= /span>They can determine the quality and approximate lif= e left, but can’t measure the operating characteristics of the tube
The switches connect the pins of the tubes to thei= r respective circuit elements (heater, cathode, plat= e voltage supply, etc)
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