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Into Unscientific Chapter 299
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Into Unscientific Chapter 299

  Chapter 299 Roentgen: You are amazing, you are noble! (7.4K)

  Inside the laboratory.

  After discovering this abnormal light.

   Faraday, Gauss, and Weber did not dare to neglect, and immediately gathered at the edge of the table.

  I saw the heads of the three of them touching together, staring fixedly at the vacuum tube in front of them.

Do not know why.

   This picture reminded Xu Yun of an emoji he had seen before time travel:

  Three golden retrievers are surrounded by a mat, looking at a kitten that is about the same size as their nose in the mat, next to it is written "Is this guy new here?"

  Ahem, this shouldn't be regarded as deceiving the master and destroying the ancestors.

after awhile.

   Wei Bo stroked his thick beard, turned his head to look at Mai, with doubts in his eyes:

   "It's so weird"

   "Student Maxwell, how did you discover this light?"

  At this time, Mai Mai was still standing by the switch, and pointed to the window when he heard the words, and replied:

   "I coughed and coughed just now, the position I was standing just now was facing that window."

   "The window is in the corner, and the door is blocked by curtains, so the view in that area will be relatively darker."

  “As a result, when I turned my head, I suddenly felt something flashed on the vase, but it disappeared when I turned my head, so.”

  Faraday raised his head and glanced at him, then said:

   "That's why you think this may be an illusion. You didn't tell us this phenomenon directly, but chose to verify it yourself, right?"

  Wheat nodded slightly.

be honest.

  The flash of light just appeared for a short time, and it disappeared before he could take a closer look, so he really thought it was his hallucination.

  Besides, although the curtains on the windows have been drawn at this time, it is broad daylight outside, and some sunlight will come in more or less.

   Guaranteed that the light shining on the vase is the light from outside?

  So out of this psychology.

  Wheat was not in a hurry to tell Faraday and Gauss about the situation, but rearranged the vase by himself and conducted another experiment.

   There is really nothing special about the context of the whole thing, but the problem is.

  What the **** is this light?

   How the **** did it come about?

   What are its physical properties?

   Now that electromagnetic waves have been discovered, Faraday and others are qualified to conduct a more in-depth analysis of some phenomena.

   Then Faraday thought for a while, turned around, and said to Kirchhoff:

   "Gustav, take out another Xiao Yan tube."

   "Remember to cut the middle area into two sections, with a hollow space of ten centimeters from each other, and do another experiment."

  Kirchhoff was slightly taken aback, and confirmed to Faraday:

   "Professor Faraday, you mean to cut a Xiaoyan tube into two sections? Mouth-to-mouth interval of ten centimeters?"

   Faraday nodded:

   "Exactly."

  Kirchhoff saw a hint of hesitation on his face, hesitatingly said:

   "Professor Faraday, it's no problem to intercept the vacuum tube, but in this way, the degree of vacuum we worked so hard to prepare will be affected."

   Mentioned a long time ago.

  Xiao Yan tube. Or the modified version of the Gessler tube is somewhat similar in structure to the Crooks tube.

  In order to facilitate experimental observation, this vacuum tube can be twisted into two sections from the middle and then increased in length.

  For example, the vacuum tube used in Leonard's experiment was once supplemented to a length of 1.3 meters.

  So it is not surprising that the vacuum tube is twisted into two sections separately, in order to add another part of the tube body to facilitate observation.

  But as Faraday said, the tube body is not increased after unscrewing, but the practice of directly facing each other ten centimeters apart is undoubtedly a bit puzzling.

  Because the design purpose of the vacuum tube is to create a vacuum environment, once the two tube bodies are exposed to the air, the vacuum degree will inevitably drop severely.

   Once the vacuum degree drops, it is difficult for cathode rays to appear.

   Facing Kirchhoff's question, Faraday waved his hand at him and said:

   "Gustav, let's do this first, I know what to do."

  Seeing that Faraday insisted on this approach, Kirchhoff was puzzled, but he had no choice but to obey:

   "Understood, Professor Faraday."

   Faraday delivered more than 20 'Xiao Yan tubes' prepared by Cambridge University this time, so Kirchhoff quickly prepared the new equipment Faraday needed:

  A vacuum tube was split into two pieces, ten centimeters apart from each other.

  Their exteriors are still connected to the circuit with wires to ensure that the cathode and anode can be connected without short circuit.

  At the same time, Faraday put a thermocouple on the cutout at the anode end to observe the data.

  After everything is ready.

   Faraday turned on the power again.

   A few seconds passed.

  A bluish-white light routinely appeared at the cathode, accompanied by two or three dark areas.

   But follow the light path.

  When the light leaves the cathode slit and comes into contact with air

  The blue-white light only advanced three to five centimeters before completely dissipating in the air.

at the same time.

  Faraday glanced at the thermocouple, and the temperature rise value was clearly displayed on it:

  0.00007.

   This is a fairly small number.

  According to the simple calculation of the temperature rise conversion formula, it can be said that almost no cathode rays reach the anode end.

   This is the case at the kerf, let alone the anode end.

  See this scenario.

   Faraday turned off the switch, and exchanged glances with Gauss and Weber.

  The three of them could see a sense of solemnity and excitement in each other's eyes.

  This control experiment, whether it is the phenomenon or the digital feedback of the thermocouple, clearly shows one thing:

  The penetration of cathode rays in the air is weaker than they expected, and it is considered long to travel a few centimeters.

  And the light shining on the vase fully penetrated two meters of air!

  This means that the energy levels, wavelengths, and frequencies of the two are different!

  Think here.

  Gauss suddenly realized something, and took out a cylindrical magnifying glass from his body—that is, the kind of monocular magnifying glass commonly used by watch repairers in later generations, and walked quickly to the vacuum tube that emitted mysterious rays.

  I saw him leaning down and moving his eyes wearing a magnifying glass to near the anode.

   A few seconds passed.

  Gauss suddenly let out a sigh, and beckoned to Faraday and Weber beside him:

   "Michael, Edward, come and see!"

  Faraday and Weber walked quickly to him one after another. Faraday put his hand on Gauss's shoulder and asked:

   "What happened, Friedrich?"

  Gauss took off the magnifying glass, handed it to the two, pointed to the end of the anode and said:

   "Look for yourself, pay attention to the position of the two rays of light."

  Faraday and Weber looked at each other, and Faraday took the magnifying glass from Gauss first.

   After adjusting the coefficients.

  He also put on a magnifying glass and bent down to observe.

soon.

  Faraday raised his bushy eyebrows slightly, as if he had discovered something strange, and leaned forward a little again.

   After about half a minute.

  Faraday took a deep breath, stood up, and gave Weber the magnifying glass and the position.

  Weber then repeated his movements.

   After Weber got up too.

   Gauss asked him and Faraday:

   "How about it, Michael, Edward, have you seen it?"

   Faraday nodded slightly, glanced at Riemann and Kirchhoff who were unclear, and said slowly:

   "See, the entry point of the cathode ray at the anode and the exit point of the unknown ray are not on the same horizontal line."

   "You know, the anode is a metal plate."

  In the field of optics.

  If some refraction occurs in the medium, then its incident point and exit point may indeed not be on a horizontal line.

   But this can happen in crystals, it can happen inside stones, it can even happen in water or in air.

   But it is only impossible to happen in the metal plate - because most metal plates of normal thickness simply cannot allow light to pass through.

   is the colloquial expression 'metal opaque'.

  The reason for this phenomenon can be barely explained by classical mechanics.

   That is, metals have high electrical conductivity, and the reflectivity is inherently high, and the transmitted light will be dissipated by Joule heat.

Of course.

  This explanation is relatively simple, and the fundamental reason still requires quantum mechanics to explain, which involves the problem of electron energy levels in metals.

   Well known.

  The essence of light of various colors is electromagnetic waves of various wavelengths.

  According to quantum mechanics, electrons in matter can be in various or continuous or separated energies, called energy levels.

  If an electron at a low energy level encounters a photon with the right energy, it will absorb the energy of the photon and jump to a higher energy level—the right energy means that the energy of the photon is equal to the difference between the high and low energy levels.

  Whether light in a wavelength band will be absorbed depends on whether there are such electrons and two energy levels.

   Light passes through a substance if it is not absorbed.

   This is transparency.

   For example.

  If the energy level of a substance is less than or equal to 0 and greater than or equal to 5, all electrons just fill those energy levels less than or equal to 0.

  Then the energy of the photon must reach at least 5 to be absorbed, and those lights less than 5 will pass through.

  Metals are opaque because the energy levels of electrons in metals are continuous in a wide range, and photons of any energy can be absorbed when they come in.

   Useless knowledge added. JPG.

  The topic returns to the original place.

   So for metal anodes.

  Theoretically, it is impossible for a beam of light to pass through the left side and then appear from the lower area on the right side.

   Either it's completely blocked, or it's coming through some gap—but if that's the case, then the point of entry and point of exit must be at the same location.

   In other words.

  The source of this abnormal light beam is neither the cathode nor the air ionization in the tube, but

   The anode itself!

  Think here.

  Gauss' heart skipped a beat, turned his head to look at Faraday, and asked:

   "Michael, what metal is the anode?"

  Faraday was taken aback for a moment, then subconsciously blurted out:

   "Tungsten plate!"

   Immediately, he suddenly thought of something, and suddenly turned his head to look at Xu Yun.

   But to his surprise

  Xu Yun's expression at this time was also mixed with confusion, shock and doubt.

  Based on Faraday's experience.

   This really doesn't look like a fake.

   Then he and Gauss looked at each other, pondered for a moment, and asked Xu Yun aloud:

   "Student Luo Feng, did Mr. Fat Yu say why he chose tungsten plates as anodes?"

  Xu Yun just came back to his senses, and shook his head again with a cute face:

   "I can't make it."

  Faraday stared at him earnestly for a few seconds, feeling a little puzzled in his heart.

   Could it be that he really didn't know about it?

  After all, tungsten plates are considered common electrodes, and sometimes they are even easier to obtain than zinc plates, which are not uncommon in laboratories.

  A tungsten plate with a diameter of one centimeter does not have a high or low cost.

  In addition, the residence of "Fat Fish" is the Netherlands, where tungsten plates are abundant.

  In this way, coincidence can also explain the past.

  Think here.

  Although Faraday still hesitated in his heart, he still slowly withdrew his gaze.

  Looking at Faraday who returned his attention to the vacuum tube again, Xu Yun couldn't help but heaved a sigh of relief.

   It's okay, it's okay, this time I finally fooled it.

  Although from a theoretical point of view, both copper and zinc plates can excite this special ray.

  However, the excitation conditions of these materials are relatively complicated, and at least a high-voltage generator is required.

  Although the high-voltage generator is not difficult to find, it is not an easy task to properly incorporate it into the research process of cathode rays.

  Once Faraday and others discover that cathode rays can be generated without a high-voltage generator, it is easy to suspect the cause of the mysterious rays on themselves.

   This is obviously not a good thing.

   Actually.

  Xu Yun did not intend to lead Faraday and others to discover new rays this time. In fact, his expected goal is the cathode ray.

   It turned out that he did not expect that he would push history forward by a small step with all his efforts, and Xiao Mai, a fool or the son of luck, foolishly kicked history forward again.

   That's right.

  Son of Luck.

  Why do you say that?

the reason is simple.

  The light discovered by wheat is nothing but the famous

   X-rays!

  The discoverer of X-rays in history was William Conrad Roentgen. The process of his discovery of X-rays was recorded in elementary school (or forget it in middle school) textbooks.

  It was in the evening of November 8, 1895, Roentgen routinely began to study cathode rays.

  At that time, in order to prevent the influence of external light on the discharge tube, and to prevent the visible light inside the tube from leaking out of the tube, he darkened the room completely, and made a cover for the discharge tube with black hard paper.

  In order to check whether the envelope leaked light, he connected the discharge tube to the power supply, and he was satisfied when he saw that the envelope did not leak light.

   But when he cut off the power, he unexpectedly found a flash of light on a small workbench one meter away, and the flash was emitted from a fluorescent screen.

  However, cathode rays can only travel a few centimeters in the air, which is a conclusion already confirmed by others and his own experiments.

  So Roentgen made a judgment:

   This is not a cathode ray, but a new kind of ray.

  After repeated experiments, Roentgen finally determined that this was a new ray that was not yet known, so he gave it a name:

  X-rays.

   Later, a classic appeared:

  When his wife came to see him in the laboratory one day, he asked her to put her hand on the photographic film wrapped tightly in black paper, and then irradiated it with X-rays for 15 minutes.

  After developing.

  The bone image of his wife is clearly shown on the film, and the wedding ring on the finger is also very clear.

  Many people have been impressed by Mrs. Roentgen's hand bone photo after many years.

  Later, Roentgen won the Nobel Prize for this and became the winner of the first Nobel Prize in Physics.

   But on the one hand.

  Due to the age of the audience, the textbook did not describe the process of Roentgen's discovery of X-rays too deeply.

  In the original history, the process of Roentgen's discovery of X-rays was actually far from as simple as it was written in the book.

   Students who have studied optics should know it.

  Light is actually the transfer of energy, and its essence is a flow of photons in a specific frequency band.

  The light source emits light because the electrons in the light source gain extra energy and release energy in the form of waves during the transition process.

  Sunlight, lightning, and fire are all like this.

   Therefore.

  Essentially, light is a kind of electromagnetic wave, which is energy information transmitted by photons.

  There is energy, so naturally there is the theory of frequency.

  In the long-term evolution of the human eye, it is only sensitive to the frequency band of about 380~780nm, so the electromagnetic wave of this specific frequency band is called visible light.

   That is red orange yellow green blue blue purple and so on.

   In addition to visible light, there are many lights invisible to the human eye.

   Such as radio waves, infrared rays, ultraviolet rays, X-rays, and gamma rays are invisible lights.

  These lights all belong to a certain band and frequency in the electromagnetic spectrum.

  X-rays are electromagnetic waves second only to γ-rays, with wavelengths between 10 nanometers and 0.01 nanometers, frequencies between 3^16~3^20 Hz, and energies of 124eV~1.24MeV.

   This is the energy of each photon. X-rays are high-energy rays, so they have strong penetrating power.

  When X-rays irradiate the human body.

  Part of the x-rays are absorbed by the human body, and most of them pass through the atomic gaps.

  The higher the frequency, the shorter the wavelength of X-rays, the greater the energy and the stronger the penetrating ability.

  In the process of penetrating objects.

   Depending on the density and thickness of an object, the degree of absorption of X-rays varies.

  Therefore, the X-rays that pass through have different strengths and weaknesses, so that the structure of the object that passes through is displayed in the photosensitive film—this is the principle of X-rays in later generations.

   Having said that, here comes the question:

  Since X-rays are invisible light, how did Roentgen notice it?

  The textbook only said that Roentgen found a spot of light on the screen outside the vacuum tube, but X-rays are invisible, so theoretically they can't notice it.

Of course.

  Seeing this, some people may ask:

   Not right.

  Why can't ultraviolet light be seen, but ultraviolet light can see purple light?

the reason is simple:

  Because the manufacturers of ultraviolet lamps have added photoinitiators or photosensitizers into the lamps, after absorbing ultraviolet light, active free radicals or ionic radicals are generated, thereby initiating polymerization, crosslinking and grafting reactions.

  This process has a proper term called UV curing.

  The physical properties of UV light radiation are similar to visible light, so you can see the 'light' of ultraviolet lamps.

  You can't see the real ultraviolet rays.

   So for Roentgen.

  Even in a closed room, at most, there will be a little light at the anode due to the ionization effect (that is, the emission point observed by Faraday and the others), but it should not be visible at the end.

   What really helped Roentgen discover X-rays was actually something called barium cyanide-platinate.

  It emits a visible fluorescence after exposure to X-rays.

   Barium cyanide platinate is a common paint in the 19th century, which is common in laboratories and literary and artistic creations.

  At that time, Roentgen saw something projecting X-ray spots, which was a screen coated with barium cyanide platinate.

   And now in this laboratory.

   The only one coated with barium cyanide platinate, is the .

  The exterior decoration of the vase that Mai saw.

  So sometimes Xu Yun really has to wonder if there really is such a thing as a child of luck in the world.

   In his plan.

  The reason why the tungsten plate is used as the anode during the experiment is only to fix it as a common material for cathode ray research.

   Just like the copper rods commonly used in electrolytic cells, let future generations develop a habit.

   There are many people who use it, the shortest is three to five years, and the longest is eleven or twelve years.

  There will always be someone who happens to see the phenomenon of X-rays hitting the barium cyanide platinate-like material.

  By then, Xu Yun has returned to his hometown safely(?).

   There is a certain buffer period in terms of time and now, which is undoubtedly a very delicate arrangement.

   Who would have thought of the result.

  Wheat doesn't talk about martial arts, so he found the only vase in the house coated with barium cyanide platinate, and it happened to be on the X-ray light path

at the same time.

  The Netherlands, a thousand kilometers away.

  In a small town called Apeldoorn.

  In a kindergarten.

  A little boy with an ordinary face who was preparing for a nap suddenly stretched out his hand and grabbed the air.

  The childcare worker not far away saw this scene, so he came over and asked:

"What happened?"

  The little boy opened his mouth subconsciously.

  For some unknown reason, he suddenly felt empty in his heart, as if

   Something is missing in general.

   But in the end, he shook his head:

   "I'm fine, Mr. Sanqi."

   "Then let's take a nap first, Roentgen."

   Promote a book, "I am a royal guard in Britain", the plot is that the Ming Dynasty colonized the world, oriental steampunk, mechanical technology and extraordinary power. A bit of Cthulhu and scp elements, if you are interested, you can go and have a look, it is also a veteran author

  (end of this chapter)

Chapter end

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Chapter 640
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Chapter 587
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Chapter 580
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Chapter 577
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Chapter 575
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Chapter 572
Chapter 571
Chapter 570
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Chapter 568
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Chapter 566
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Chapter 564
Chapter 563
Chapter 562
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Chapter 557
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Chapter 549
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Chapter 547
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Chapter 513
Chapter 512
Chapter 511
Chapter 510
Chapter 509
Chapter 508
Chapter 507
Chapter 506
Chapter 505
Chapter 504
Chapter 503
Chapter 502
Chapter 501
Chapter 500
Chapter 499
Chapter 498
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Chapter 496
Chapter 495
Chapter 494
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Chapter 491
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Chapter 445
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Chapter 441
Chapter 440
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Chapter 438
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Chapter 433
Chapter 432
Chapter 431
Chapter 429
Chapter 428
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Chapter 420
Chapter 419
Chapter 418
Chapter 417
Chapter 416
Chapter 415
Chapter 414
Chapter 413
Chapter 412
Chapter 411
Chapter 410
Chapter 409
Chapter 408
Chapter 407
Chapter 406
Chapter 405
Chapter 404
Chapter 403
Chapter 402
Chapter 401
Chapter 400
Chapter 399
Chapter 395
Chapter 394
Chapter 393
Chapter 392
Chapter 391
Chapter 390
Chapter 389
Chapter 388
Chapter 387
Chapter 386
Chapter 385
Chapter 384
Chapter 383
Chapter 382
Chapter 381
Chapter 380
Chapter 379
Chapter 378
Chapter 377
Chapter 376
Chapter 375
Chapter 374
Chapter 373
Chapter 372
Chapter 371
Chapter 370
Chapter 369
Chapter 368
Chapter 367
Chapter 366
Chapter 365
Chapter 364
Chapter 363
Chapter 362
Chapter 361
Chapter 360
Chapter 359
Chapter 358
Chapter 357
Chapter 356
Chapter 355
Chapter 354
Chapter 353
Chapter 352
Chapter 351
Chapter 350
Chapter 349
Chapter 348
Chapter 347
Chapter 346
Chapter 345
Chapter 344
Chapter 343
Chapter 342
Chapter 341
Chapter 340
Chapter 339
Chapter 338
Chapter 337
Chapter 336
Chapter 335
Chapter 334
Chapter 333
Chapter 332
Chapter 331
Chapter 330
Chapter 329
Chapter 328
Chapter 327
Chapter 326
Chapter 324
Chapter 322
Chapter 321
Chapter 320
Chapter 319
Chapter 318
Chapter 317
Chapter 316
Chapter 315
Chapter 314
Chapter 313
Chapter 312
Chapter 311
Chapter 310
Chapter 309
Chapter 308
Chapter 307
Chapter 306
Chapter 305
Chapter 304
Chapter 303
Chapter 302
Chapter 301
Chapter 300
Chapter 299
Chapter 298
Chapter 297
Chapter 296
Chapter 295
Chapter 294
Chapter 293
Chapter 292
Chapter 291
Chapter 290
Chapter 289
Chapter 288
Chapter 287
Chapter 286
Chapter 285
Chapter 284
Chapter 283
Chapter 282
Chapter 281
Chapter 280
Chapter 279
Chapter 278
Chapter 277
Chapter 276
Chapter 275
Chapter 274
Chapter 273
Chapter 272
Chapter 271
Chapter 270
Chapter 269
Chapter 268
Chapter 267
Chapter 266
Chapter 265
Chapter 264
Chapter 263
Chapter 262
Chapter 261
Chapter 260
Chapter 259
Chapter 258
Chapter 257
Chapter 256
Chapter 255
Chapter 254
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Chapter 252
Chapter 251
Chapter 250
Chapter 249
Chapter 248
Chapter 247
Chapter 246
Chapter 245
Chapter 244
Chapter 243
Chapter 242
Chapter 241
Chapter 240
Chapter 239
Chapter 238
Chapter 237
Chapter 236
Chapter 235
Chapter 234
Chapter 233
Chapter 232
Chapter 231
Chapter 230
Chapter 229
Chapter 228
Chapter 227
Chapter 226
Chapter 225
Chapter 224
Chapter 223
Chapter 222
Chapter 221
Chapter 220
Chapter 219
Chapter 218
Chapter 217
Chapter 216
Chapter 215
Chapter 214
Chapter 213
Chapter 212
Chapter 211
Chapter 210
Chapter 209
Chapter 208
Chapter 207
Chapter 206
Chapter 205
Chapter 204
Chapter 203
Chapter 202
Chapter 201
Chapter 200
Chapter 199
Chapter 198
Chapter 197
Chapter 196
Chapter 195
Chapter 194
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Chapter 192
Chapter 191
Chapter 190
Chapter 189
Chapter 188
Chapter 187
Chapter 186
Chapter 185
Chapter 184
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Chapter 182
Chapter 181
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Chapter 179
Chapter 178
Chapter 177
Chapter 176
Chapter 175
Chapter 174
Chapter 173
Chapter 172
Chapter 171
Chapter 170
Chapter 169
Chapter 168
Chapter 167
Chapter 166
Chapter 165
Chapter 164
Chapter 163
Chapter 162
Chapter 161
Chapter 160
Chapter 159
Chapter 158
Chapter 157
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Chapter 155
Chapter 154
Chapter 153
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Chapter 151
Chapter 150
Chapter 149
Chapter 148
Chapter 147
Chapter 146
Chapter 145
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Chapter 143
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Chapter 140
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Chapter 137
Chapter 136
Chapter 135
Chapter 134
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Chapter 131
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Chapter 128
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Chapter 126
Chapter 125
Chapter 124
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Chapter 119
Chapter 118
Chapter 117
Chapter 116
Chapter 115
Chapter 114
Chapter 113
Chapter 112
Chapter 111
Chapter 110
Chapter 109
Chapter 108
Chapter 107
Chapter 106
Chapter 105
Chapter 104
Chapter 103
Chapter 102
Chapter 101
Chapter 100
Chapter 99
Chapter 98
Chapter 97
Chapter 96
Chapter 95
Chapter 94
Chapter 93
Chapter 92
Chapter 91
Chapter 90
Chapter 89
Chapter 88
Chapter 87
Chapter 86
Chapter 85
Chapter 84
Chapter 83
Chapter 82
Chapter 81
Chapter 80
Chapter 79
Chapter 78
Chapter 77
Chapter 76
Chapter 75
Chapter 74
Chapter 73
Chapter 72
Chapter 71
Chapter 70
Chapter 69
Chapter 68
Chapter 67
Chapter 66
Chapter 65
Chapter 64
Chapter 63
Chapter 62
Chapter 61
Chapter 60
Chapter 59
Chapter 58
Chapter 57
Chapter 56
Chapter 55
Chapter 54
Chapter 53
Chapter 52
Chapter 51
Chapter 50
Chapter 49
Chapter 48
Chapter 47
Chapter 46
Chapter 45
Chapter 44
Chapter 43
Chapter 42
Chapter 41
Chapter 40
Chapter 39
Chapter 38
Chapter 37
Chapter 36
Chapter 35
Chapter 34
Chapter 33
Chapter 32
Chapter 31
Chapter 30
Chapter 29
Chapter 28
Chapter 27
Chapter 26
Chapter 25
Chapter 24
Chapter 23
Chapter 22
Chapter 21
Chapter 20
Chapter 19
Chapter 18
Chapter 17
Chapter 16
Chapter 15
Chapter 14
Chapter 13
Chapter 12
Chapter 11
Chapter 10
Chapter 9
Chapter 8
Chapter 7
Chapter 6
Chapter 5
Chapter 4
Chapter 3
Chapter 2
Chapter 1
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