The simplest wire telephone-circuit is formed by a transmitter, a receiver, a
battery, and the connecting wire. If two persons are to carry on a conversation
each must have this amount of equipment. The apparatus might be arranged as in
Fig. 129. This set-up, however, requires four wires between the two stations and
you know the telephone company uses only two wires. Let us find the principle
upon which its system operates because it is the solution of many different
problems including that of wire-to-radio connections.
Imagine four wire resistances connected together to form a square as in Fig.
130. Suppose there are two pairs of equal resistances, namely R1 and
R2, and Z1 and Z2. If we connect a generator,
G, between the junctions a and b there will be two separate
streams of electrons, one through the R-side and the other through 252 the Z-side of the
circuit. These streams, of course, will not be of the same size for the larger
stream will flow through the side which offers the smaller resistance.
Half the e. m. f. between a and b is used up in sending the
stream half the distance. Half is used between a and the points c
and d, and the other half between c and d and the other
end. It doesn’t make any difference whether we follow the stream from
a to c or from a to d, it takes half the e. m. f. to
keep this stream going. Points c and d, therefore, are in the same
condition of being “half-way electrically” from a to
b. The result is that there can be no current through any wire which we
connect between c and d.
At the other telephone station let us duplicate this apparatus, using the
same real line in both cases. Instead of just any generator of an alternating e.
m. f. let us use a telephone transmitter. We connect the transmitter through a
transformer. The system then looks like that of Fig. 131. When some one talks at
station 1 there is no current through his receiver because it is connected to
c and d, while the e. m. f. of the transmitter is applied to
a and b. The transmitter sets up two electron streams between
a and b, and the stream which flows through the Z-side of the
square goes out to station 2. At this station the electrons have three paths
between d and b. I have marked these by arrows and you see that
one of them is through the receiver. The current which is started by the
transmitter at station 1 will therefore operate the receiver at station 2 but
not at its own station. Of course station 2 can talk to 1 in the same way.
It won’t make any difference if we use equal inductance coils, instead
of the R-resistances, and connect the transmitter to them inductively as shown
in Fig. 132. So far as that is concerned we can also use a transformer between
the receiver and the points c and d, as shown in the same
figure.
We are now ready to put in radio equipment at station 2. In place of the
telephone receiver at station 2 we connect a radio transmitter. Then whatever a
person at station 1 says goes by wire to 2 and on out by radio. In place of the
telephone transmitter 255at station 2 we connect a radio receiver. Whatever
that receives by radio is detected and goes by wire to the listener at station
1. In Fig. 133 I have shown the equipment of station 2. There you have the
connections for wire to radio and vice versa.
One of the most interesting developments of recent years is that of
“wired wireless” or “carrier-current telephony” over
wires. Suppose that instead of broadcasting from the antenna at station 2 we
arrange to have its radio transmitter supply current to a wire circuit. We use
this same pair of wires for receiving from the distant station. We can do this
if we treat the radio transmitter and receiver exactly like the telephone
instruments of Fig. 132 and connect them to a square of resistances. One of
these resistances is, of course, the line between the stations. I have shown the
general arrangement in Fig. 134.
You see what the square of resistances, or “bridge” really does
for us. It lets us use a single pair of wires for messages whether they are
coming or going. It does that because it lets us connect a transmitter and also
a receiver to a single pair of wires in such a way that the transmitter
can’t affect the receiver. Whatever the transmitter sends out goes along
the wires to the distant receiver but doesn’t affect the receiver at the
sending station. This bridge permits this whether the transmitter and receiver
are radio instruments or are the ordinary telephone instruments.
If we duplicate the apparatus we can use the same pair of wires for another
telephone conversation without interfering with the first. Of course, we have to
use a different frequency of alternating current for each of the two
conversations. We can send these two different modulated high-frequency currents
over the same pair of wires and separate them by tuning at the distant end just
as well as we do in radio. I won’t sketch out for you the tuned circuits
by which this separation is made. It’s enough to give you the idea.
In that way, a single pair of wires can be used for transmitting,
simultaneously and without any interference, several different telephone
conversations. It takes very much less power than would radio transmission and
the conversations are secret. The ordinary telephone conversation can go on at
the same time without any interference with those which are being carried by the
modulations in high-frequency currents. A total of five conversations over the
same pair of wires is the present practice.
This method is used between many of the large cities of the U. S. because it
lets one pair of wires do the work of five. That means a saving, for copper wire
costs money. Of course, all the special apparatus also costs money. You can see,
therefore, that 258this method wouldn’t be economical between
cities very close together because all that is saved by not having to buy so
much wire is spent in building special apparatus and in taking care of it
afterwards. For long lines, however, by not having to buy five times as much
wire, the Bell Company saves more than it costs to build and maintain the extra
special apparatus.
I implied a moment ago why this system is called a
“carrier-current” system; it is because “the high-frequency
currents carry in their modulations the speech significance.” Sometimes it
is called a system of “multiplex” telephony because it permits more
than one message at a time.
This same general principle is also applied to the making of a multiplex
system of telegraphy. In the multiplex telephone system we pictured transmitting
and receiving sets very much like radio-telephone sets. If instead of
transmitting speech each transmitter was operated as a C-W transmitter then it
would transmit telegraph messages. In the same frequency range there can be more
telegraph systems operated simultaneously without interfering with each other,
for you remember how many cycles each radio-telephone message requires. For that
reason the multiplex telegraph system which operates by carrier-currents permits
as many as ten different telegraph messages simultaneously.
You remember that I told you how capacity effects rob the distant end of a
pair of wires of the alternating current which is being sent to them. That is
259always true but the
effect is not very great unless the frequency of the alternating current is
high. It’s enough, however, so that every few hundred miles it is
necessary to connect into the circuit an audion amplifier. This is true of
carrier currents especially, but also true of the voice-frequency currents of
ordinary telephony. The latter, however, are not weakened, that is,
“attenuated,” as much and consequently do not need to be amplified
as much to give good intelligibility at the distant receiver.
In a telephone circuit over such a long distance as from New York City to San
Francisco it is usual to insert amplifiers at about a dozen points along the
route. Of course, these amplifiers must work for transmission in either
direction, amplifying speech on its way to San Francisco or in the opposite
260direction. At each of the amplifying stations, or “repeater
stations,” as they are usually called, two vacuum tube amplifiers are
used, one for each direction. To connect these with the line so that each may
work in the right direction there are used two of the bridges or resistance
squares. You can see from the sketch of Fig. 135 how an alternating current from
the east will be amplified and sent on to the west, or vice versa.
263INDEX
A-battery for tubes, 42
Accumulator, 29
Acid, action of hydrogen in, 7
Air, constitution of, 10
Ammeter, alternating current, 206;
calibration of, 53;
construction of, 205
Ampere, 49, 54
Amplification, 182;
one stage of, 185
Amplitude of vibration, 155
Antenna current variation, 141
Arlington tests, 233
Artificial telephone line, 252
Atom, conception of, 6;
nucleus of, 10;
neutral, 34
Atomic number, 13
Atoms, difference between, 12;
kinds of, 6, 10;
motion of, 35
Attenuation of current in wires, 259
Audibility meter, 218
Audio-frequency amplifier, 185;
limitations of, 185
Audion, 35, 40, 42
Audion, amplifier, 182;
detector, theory of, 126;
modulator, 232;
oscillator, theory of, 89;
frequency control of, 99
B-battery for tubes, 43;
effect upon characteristic, 128
Banked wound coils, 228
Battery, construction of gravity, 16;
dry, 27;
reversible or storage, 29
Band of frequencies, 249
Beat note, detection of, 221, 245
Bell system, Arlington transmitter, 249
Blocking of tube, reason for, 171
Blue vitriol, 16
Bridge circuit, 255
Bureau of Standards, 50
C-battery for tubes, 46, 166;
variation of, 75;
for detection, 66
Calibration of a receiver, 214
Capacity, effect upon frequency, 100;
measurement of, 104;
unit of, 104;
variable, 107
Capacity effects, 243;
elimination of, 228
Carrier current, modulation of, 146;
telephony, 255
Characteristic, of vacuum tube, 68, 74;
effect of B-battery upon, 128;
how to plot a, 70
Characteristic curve of transformer, 64
Chemistry, 8
Choke coils, 210, 221
Circuit, A, B, C, 187;
coupled, 115;
defined, 43;
oscillating, 113;
plate, 45;
short, 30;
tune of a, 117
Condenser, defined, 77;
charging current of, 78;
discharge current of, 80;
impedance of, 135;
theory of, 78;
tuning, 224
Common battery system, 254
Connection for wire to radio, 254
Continuous waves, 86
Copper, atomic number of, 13
Copper sulphate, in solution, 21
Crystals, atomic structure, 147
Crystal detectors, 146;
characteristic of, 148;
circuit of, 150;
theory of, 147
Current, transient, 114;
radio, 144
Cycle, 94, 97
Damped oscillations, 114
Demodulation, 231
Detection, explained, 146
Detectors, audion, 126;
crystal, 146
Direct currents, 205
Dissociation, 22
Distortion, of wave form, 163
Dry battery, 27
Earth, atomic constitution, 11
Effective value, of ampere, 207;
of volt, 207
Efficiency, of regenerative circuit, 182
Electrical charge, 22
Electricity, current of, 15, 16
Electrodes, of vacuum tube, 41;
definition of, 41
Electrolyte, definition of, 34
Electrons, properties of, 4;
planetary, 10, 12;
rate of flow, 48;
vapor of, 39;
wandering of, 14
Electron streams, laws of attraction, 200
E. M. F., 59;
alternating, 76;
of self-induction, 238
Energy, expended in tube, 235;
of electrons, 113;
radiation of, 125
Ether, 88
Feed-back circuit, 182
Frequency, 98, 158;
effect upon pitch, 133;
interval, 247;
natural, 117;
of voice, 163
Fundamental note, of string, 157
Gravity battery, theory of, 23
Grid, action of, 47;
condenser, 169;
current, 173;
leak, 171;
leak, construction, 172, 216;
of audion, 41
Harmonics, 160
Helium, properties of, 9
Henry, 83
Heterodyne, 181
Hot-wire ammeter, 51
Human voice, mechanism of, 152
Hydrogen, action of in acid, 7;
atom of, 7
Impedance, of coil, 136;
of condenser, 136;
of transformer, 195;
effect of iron core upon, 207;
matching of, 196
Intermediate-frequency amplification, 242
Inductance, defined, 83;
effect upon frequency, 100;
impedance of, 135;
mutual, 109;
of coils, 101;
self, 83;
table of values, 227;
unit of, 83;
variable, 108
Induction, principle of, 208
Inducto-meter, 109
Input circuit, 187
Interference, 249
Internal resistance, 191
Ion, definition of, 19;
positive and negative, 20, 21
Ionization, 20
Larynx, 153
Laws of attraction, 204
Loading coil, 224
Loop antenna, 198
Magnet, pole of, 203;
of soft iron, 205;
of steel, 205
Magnetism, 202
Matter, constitution of, 5
Megohm, 172
Microfarad, 104
Mil-ampere, 71
Mil-henry, 83
Modulation, 145, 230, 237, 239
Molecule, kinds of, 6;
motion of, 35
μv, 190
Multiplex telegraphy, 258;
telephony, 258
Mutual inductance, 109;
variation of, 110
Natural frequency, 161
Nitrogen, 10
Nucleus of atom, 10, 12
Ohm, defined, 64
Organ pipe, 160
Oscillations, 87;
damped, 114;
to start, 114;
intensity of, 236;
natural frequency of, 117
Output circuit, 187
Overtones, 159
Oxygen, percentage in air, 10
Phase, 180
Plate, of an audion, 41
Plunger type of instrument, 205
Polarity of a coil, 204
Power, defined, 234;
electrical unit of, 235
Proton, properties of, 4
Radio current, modulation of, 145
Radio-frequency amplification, 243;
limitations, 243
Radio-frequency amplifier, 186, 198
Radio station connected to land line, 254
Rating of tubes, 235
Reception, essential operations in, 235
Regenerative circuit, 176;
frequency of, 179
Repeater stations, 261
Resistance, measurement of, 64;
non-inductive, 103;
square, 251
Resonance, 161
Resonance curve, 117
Retard coils, 210
Salt, atomic construction of, 17;
crystal structure, 147;
molecule in solution, 19;
percentage in sea water, 11
Saturation, 38
Sea water, atomic constitution of, 11
Self-inductance, 83;
unit of, 83
Side bands, 248;
relation to wave lengths, 249
Silicon, percentage in earth, 11
Sodium chloride, in solution, 19
Sound, production of, 152
Speech, to transmit by radio, 230
Speed of light, 122
Standard cell, 58
Storage battery, 28, 30
Sulphuric acid, 22
Super-heterodyne, 242;
advantages of, 242
Telephone receiver, 130;
theory of, 131
Telephone transmitter, 142
Telephony, by wire, 253
Tickler coil, 182
Transcontinental telephone line, 261
Transmission, essential operations in, 230
Transmitter, Arlington, 233;
continuous wave, 94, 119;
for high power, 233
Transformer, 185;
step-up, 193
Tubes, connected in parallel, 234
Tuning, curve, 117;
sharp, 214;
with series condenser, 224
Undamped waves (see continuous waves), 86
Vacuum tube, 35, 40;
characteristics of, 67;
construction of, 205;
modulator, 239;
three-electrode, 41;
two-electrode, 42
Variometer, 108
Vibrating string, study of, 154
Vocal cords, 153
Voice frequencies, 163
Volt, definition of, 57;
measurement of, 61
Voltmeter, calibration of, 62;
construction of, 205
Watt, 235
Wave form, 182
Wave length, relation to frequency, 98, 122;
defined, 122
Wire, inductance of, 104
Wire, movement of electrons in, 14;
emission of electrons from, 37
Wire telephony, 253
Wired wireless, 255;
advantages of, 257
X-rays, 147
Zero coupling, 177
Zinc, electrode for battery, 23