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Groups > sci.physics.relativity > #403766 > unrolled thread
| Started by | SEKI <seki.hajime01@gmail.com> |
|---|---|
| First post | 2017-01-02 02:27 -0800 |
| Last post | 2017-02-15 02:14 -0800 |
| Articles | 20 on this page of 121 — 19 participants |
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Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-01-02 02:27 -0800
Re: Can We Believe in Modern Physics Theories? mlwozniak@wp.pl - 2017-01-02 03:32 -0800
Re: Can We Believe in Modern Physics Theories? Ned Latham <nedlatham@woden.valhalla.oz> - 2017-01-02 14:04 +0000
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-01-02 09:27 -0800
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-01-02 20:35 +0100
Re: Can We Believe in Modern Physics Theories? alsor@interia.pl - 2017-01-02 12:02 -0800
Re: Can We Believe in Modern Physics Theories? Demetrice Barren <teercere@tmerunin.tme> - 2017-01-02 20:10 +0000
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-01-02 21:13 +0100
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-01-02 21:16 +0100
Re: Can We Believe in Modern Physics Theories? alsor@interia.pl - 2017-01-02 12:28 -0800
Re: Can We Believe in Modern Physics Theories? Demetrice Barren <teercere@tmerunin.tme> - 2017-01-02 20:43 +0000
Re: Can We Believe in Modern Physics Theories? Ned Latham <nedlatham@woden.valhalla.oz> - 2017-01-03 01:46 +0000
Re: Can We Believe in Modern Physics Theories? alsor@interia.pl - 2017-01-02 11:03 -0800
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-01-03 17:23 -0600
Re: Can We Believe in Modern Physics Theories? benj <benj@nobody.net> - 2017-01-03 19:46 -0500
Re: Can We Believe in Modern Physics Theories? Ermelinda Haymond <nmam@idandly.id> - 2017-01-04 01:00 +0000
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-01-04 06:06 -0800
Re: Can We Believe in Modern Physics Theories? "David (Lord Kronos Prime) Fuller" <fuller.david@hotmail.com> - 2017-01-04 06:18 -0800
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-01-06 09:36 -0600
Re: Can We Believe in Modern Physics Theories? Aubrey Primmer <myr@ejmr.info> - 2017-01-06 15:51 +0000
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-01-06 23:54 -0800
Re: Can We Believe in Modern Physics Theories? Julio Di Egidio <julio@diegidio.name> - 2017-01-04 07:38 -0800
Re: Can We Believe in Modern Physics Theories? alsor@interia.pl - 2017-01-04 11:21 -0800
Re: Can We Believe in Modern Physics Theories? "Ross A. Finlayson" <ross.finlayson@gmail.com> - 2017-01-07 19:19 -0800
Re: Can We Believe in Modern Physics Theories? "David (Lord Kronos Prime) Fuller" <fuller.david@hotmail.com> - 2017-01-07 19:31 -0800
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-01-13 07:55 -0800
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-01-13 17:37 +0100
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-01-14 00:29 -0800
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-01-16 07:24 +0100
Re: Can We Believe in Modern Physics Theories? "David (Lord Kronos Prime) Fuller" <fuller.david@hotmail.com> - 2017-01-13 10:15 -0800
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-01-14 08:31 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-01-14 22:21 -0800
Re: Can We Believe in Modern Physics Theories? "Ross A. Finlayson" <ross.finlayson@gmail.com> - 2017-01-14 22:58 -0800
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-01-15 14:52 -0600
Re: Can We Believe in Modern Physics Theories? "Ross A. Finlayson" <ross.finlayson@gmail.com> - 2017-01-15 13:36 -0800
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-01-15 14:48 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-01-16 00:24 -0800
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-01-16 13:08 -0600
Re: Can We Believe in Modern Physics Theories? Reid Schaffner <dnfoonio@acdnfni.info> - 2017-01-16 19:39 +0000
Re: Can We Believe in Modern Physics Theories? "Ross A. Finlayson" <ross.finlayson@gmail.com> - 2017-01-16 12:20 -0800
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-01-16 19:31 -0800
Re: Can We Believe in Modern Physics Theories? alsor@interia.pl - 2017-01-15 10:13 -0800
Re: Can We Believe in Modern Physics Theories? JanPB <filmart@gmail.com> - 2017-01-17 12:21 -0800
Re: Can We Believe in Modern Physics Theories? alsor@interia.pl - 2017-01-17 12:59 -0800
Re: Can We Believe in Modern Physics Theories? JanPB <filmart@gmail.com> - 2017-01-18 12:40 -0800
Re: Can We Believe in Modern Physics Theories? alsor@interia.pl - 2017-01-19 10:57 -0800
Re: Can We Believe in Modern Physics Theories? JanPB <filmart@gmail.com> - 2017-01-19 12:01 -0800
Re: Can We Believe in Modern Physics Theories? RichD <r_delaney2001@yahoo.com> - 2017-02-16 14:03 -0800
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-02-17 00:03 +0100
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-02-16 21:22 -0600
Re: Can We Believe in Modern Physics Theories? RichD <r_delaney2001@yahoo.com> - 2017-02-17 11:35 -0800
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-17 00:05 -0800
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-12 23:49 -0800
Re: Can We Believe in Modern Physics Theories? mlwozniak@wp.pl - 2017-02-13 00:11 -0800
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 00:31 -0800
Re: Can We Believe in Modern Physics Theories? mlwozniak@wp.pl - 2017-02-13 00:47 -0800
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 02:09 -0800
Re: Can We Believe in Modern Physics Theories? mlwozniak@wp.pl - 2017-02-13 03:19 -0800
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 06:45 -0800
Re: Can We Believe in Modern Physics Theories? Odd Bodkin <bodkinodd@gmail.com> - 2017-02-13 07:21 -0600
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-02-13 14:26 +0100
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 06:51 -0800
Re: Can We Believe in Modern Physics Theories? Odd Bodkin <bodkinodd@gmail.com> - 2017-02-13 09:26 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 07:37 -0800
Re: Can We Believe in Modern Physics Theories? Odd Bodkin <bodkinodd@gmail.com> - 2017-02-13 09:55 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 09:10 -0800
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-02-13 18:44 +0100
Re: Can We Believe in Modern Physics Theories? Sanjuanita Peeples <naalu@nwmeela.org> - 2017-02-13 18:33 +0000
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-02-13 20:11 +0100
Re: Can We Believe in Modern Physics Theories? Sanjuanita Peeples <naalu@nwmeela.org> - 2017-02-13 19:21 +0000
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-02-13 20:43 +0100
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 07:11 -0800
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-02-13 10:56 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 09:18 -0800
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-02-13 12:45 -0600
Re: Can We Believe in Modern Physics Theories? Sanjuanita Peeples <naalu@nwmeela.org> - 2017-02-13 20:44 +0000
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-02-14 09:40 -0600
Re: Can We Believe in Modern Physics Theories? Sanjuanita Peeples <naalu@nwmeela.org> - 2017-02-15 16:13 +0000
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-02-15 17:34 +0100
Re: Can We Believe in Modern Physics Theories? Sanjuanita Peeples <naalu@nwmeela.org> - 2017-02-15 17:11 +0000
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-02-15 18:23 +0100
Re: Can We Believe in Modern Physics Theories? Sanjuanita Peeples <naalu@nwmeela.org> - 2017-02-15 17:31 +0000
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-02-15 20:01 +0100
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 13:24 -0800
Re: Can We Believe in Modern Physics Theories? Sanjuanita Peeples <naalu@nwmeela.org> - 2017-02-13 21:47 +0000
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-02-13 23:01 +0100
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-02-13 18:19 -0600
Re: Can We Believe in Modern Physics Theories? mlwozniak@wp.pl - 2017-02-13 23:24 -0800
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 23:53 -0800
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-13 13:30 -0800
Re: Can We Believe in Modern Physics Theories? Odd Bodkin <bodkinodd@gmail.com> - 2017-02-14 06:43 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-14 07:55 -0800
Re: Can We Believe in Modern Physics Theories? Odd Bodkin <bodkinodd@gmail.com> - 2017-02-14 11:55 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-14 23:21 -0800
Re: Can We Believe in Modern Physics Theories? Odd Bodkin <bodkinodd@gmail.com> - 2017-02-15 14:58 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-15 15:40 -0800
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-02-16 13:14 -0600
Re: Can We Believe in Modern Physics Theories? Ned Latham <nedlatham@woden.valhalla.oz> - 2017-02-16 20:39 +0000
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-02-16 21:21 -0600
Re: Can We Believe in Modern Physics Theories? Ned Latham <nedlatham@woden.valhalla.oz> - 2017-02-17 11:55 +0000
Re: Can We Believe in Modern Physics Theories? mlwozniak@wp.pl - 2017-02-17 03:57 -0800
Re: Can We Believe in Modern Physics Theories? Ned Latham <nedlatham@woden.valhalla.oz> - 2017-02-17 21:42 +0000
Re: Can We Believe in Modern Physics Theories? mlwozniak@wp.pl - 2017-02-18 01:20 -0800
Re: Can We Believe in Modern Physics Theories? Ned Latham <nedlatham@woden.valhalla.oz> - 2017-02-18 16:31 +0000
Re: Can We Believe in Modern Physics Theories? mlwozniak@wp.pl - 2017-02-18 11:58 -0800
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-02-19 08:47 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-16 23:59 -0800
Re: Can We Believe in Modern Physics Theories? Ned Latham <nedlatham@woden.valhalla.oz> - 2017-02-17 12:18 +0000
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-02-19 09:01 -0600
Re: Can We Believe in Modern Physics Theories? Gary Harnagel <hitlong@yahoo.com> - 2017-02-17 04:52 -0800
Re: Can We Believe in Modern Physics Theories? Sanjuanita Peeples <naalu@nwmeela.org> - 2017-02-17 12:57 +0000
Re: Can We Believe in Modern Physics Theories? Tom Roberts <tjroberts137@sbcglobal.net> - 2017-02-19 09:49 -0600
Re: Can We Believe in Modern Physics Theories? Gary Harnagel <hitlong@yahoo.com> - 2017-02-19 09:58 -0800
Re: Can We Believe in Modern Physics Theories? Odd Bodkin <bodkinodd@gmail.com> - 2017-02-17 07:52 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-17 09:03 -0800
Re: Can We Believe in Modern Physics Theories? Odd Bodkin <bodkinodd@gmail.com> - 2017-02-17 11:28 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-17 09:51 -0800
Re: Can We Believe in Modern Physics Theories? Odd Bodkin <bodkinodd@gmail.com> - 2017-02-17 12:22 -0600
Re: Can We Believe in Modern Physics Theories? SEKI <seki.hajime01@gmail.com> - 2017-02-15 00:23 -0800
Re: Can We Believe in Modern Physics Theories? Poutnik <poutnik4nntp@gmail.com> - 2017-02-15 11:09 +0100
Re: Can We Believe in Modern Physics Theories? mlwozniak@wp.pl - 2017-02-15 02:14 -0800
Page 4 of 7 — ← Prev page 1 2 3 [4] 5 6 7 Next page →
| From | Poutnik <poutnik4nntp@gmail.com> |
|---|---|
| Date | 2017-02-13 14:26 +0100 |
| Message-ID | <o7sc2m$94o$1@dont-email.me> |
| In reply to | #409020 |
On 02/13/2017 02:21 PM, Odd Bodkin wrote: > > I don't see any reason to try to force a decision. The fact is, these > are quantum fields, which are NEITHER particles nor waves but a third > kind of thing that exhibit wavelike and particlelike properties. What some people may do not like, as it removes the entertainment in the clash of ideas. -- Poutnik ( The Pilgrim, Der Wanderer ) A wise man guards words he says, as they say about him more, than he says about the subject.
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| From | SEKI <seki.hajime01@gmail.com> |
|---|---|
| Date | 2017-02-13 06:51 -0800 |
| Message-ID | <fc63e616-22e8-4d62-8161-e7c32a9be5a1@googlegroups.com> |
| In reply to | #409020 |
On Monday, February 13, 2017 at 10:21:38 PM UTC+9, Odd Bodkin wrote: > On 2/13/2017 1:49 AM, SEKI wrote: > > Considering single particle (quantum) interference in a double slit > > experiment, we can't deny the fact that a quantum is more of a wave > > than anything. > > In case where a quantum (wave) is localized in a small area, it can > > be seen as a particle. > > > > To me, most physicists seem to be obsessed by the particle model. > > > > It should be noted that most of so-called quantum paradoxes can be > > resolved by abandoning the particle model. > > (Of course, the Bell's inequality is an exception, though can never > > be resolved with the particle model.) > > > > Anyway, quantum theories are constructed as theories of waves, and > > particles appear only in interpretations. > > I don't see any reason to try to force a decision. The fact is, these > are quantum fields, which are NEITHER particles nor waves but a third > kind of thing that exhibit wavelike and particlelike properties. Basically, you are right. I wrote: > > In case where a quantum (wave) is localized in a small area, it can > > be seen as a particle. The wave model can double with the particle model. Thanks SEKI
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| From | Odd Bodkin <bodkinodd@gmail.com> |
|---|---|
| Date | 2017-02-13 09:26 -0600 |
| Message-ID | <o7sj7c$k93$2@gioia.aioe.org> |
| In reply to | #409035 |
On 2/13/2017 8:51 AM, SEKI wrote: > On Monday, February 13, 2017 at 10:21:38 PM UTC+9, Odd Bodkin wrote: >> On 2/13/2017 1:49 AM, SEKI wrote: >>> Considering single particle (quantum) interference in a double slit >>> experiment, we can't deny the fact that a quantum is more of a wave >>> than anything. >>> In case where a quantum (wave) is localized in a small area, it can >>> be seen as a particle. >>> >>> To me, most physicists seem to be obsessed by the particle model. >>> >>> It should be noted that most of so-called quantum paradoxes can be >>> resolved by abandoning the particle model. >>> (Of course, the Bell's inequality is an exception, though can never >>> be resolved with the particle model.) >>> >>> Anyway, quantum theories are constructed as theories of waves, and >>> particles appear only in interpretations. >> >> I don't see any reason to try to force a decision. The fact is, these >> are quantum fields, which are NEITHER particles nor waves but a third >> kind of thing that exhibit wavelike and particlelike properties. > > Basically, you are right. > I wrote: >>> In case where a quantum (wave) is localized in a small area, it can >>> be seen as a particle. > > The wave model can double with the particle model. Or you can do what physicists do these days and stay away from BOTH the particle model and the wave model and instead use the model of quantum fields. That's what they appear to be, actually. The third thing, not some combination of the first two things. > > Thanks > > SEKI > -- Odd Bodkin -- maker of fine toys, tools, tables
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| From | SEKI <seki.hajime01@gmail.com> |
|---|---|
| Date | 2017-02-13 07:37 -0800 |
| Message-ID | <2c49f699-371c-4641-b99f-ffea8c332390@googlegroups.com> |
| In reply to | #409042 |
On Tuesday, February 14, 2017 at 12:26:40 AM UTC+9, Odd Bodkin wrote: > On 2/13/2017 8:51 AM, SEKI wrote: > > On Monday, February 13, 2017 at 10:21:38 PM UTC+9, Odd Bodkin wrote: > >> On 2/13/2017 1:49 AM, SEKI wrote: > >>> Considering single particle (quantum) interference in a double slit > >>> experiment, we can't deny the fact that a quantum is more of a wave > >>> than anything. > >>> In case where a quantum (wave) is localized in a small area, it can > >>> be seen as a particle. > >>> > >>> To me, most physicists seem to be obsessed by the particle model. > >>> > >>> It should be noted that most of so-called quantum paradoxes can be > >>> resolved by abandoning the particle model. > >>> (Of course, the Bell's inequality is an exception, though can never > >>> be resolved with the particle model.) > >>> > >>> Anyway, quantum theories are constructed as theories of waves, and > >>> particles appear only in interpretations. > >> > >> I don't see any reason to try to force a decision. The fact is, these > >> are quantum fields, which are NEITHER particles nor waves but a third > >> kind of thing that exhibit wavelike and particlelike properties. > > > > Basically, you are right. > > I wrote: > >>> In case where a quantum (wave) is localized in a small area, it can > >>> be seen as a particle. > > > > The wave model can double with the particle model. > > Or you can do what physicists do these days and stay away from BOTH the > particle model and the wave model and instead use the model of quantum > fields. That's what they appear to be, actually. The third thing, not > some combination of the first two things. You don't seem to understand the gist of my arguments. Did you read the first posting on this topic? Thanks anyway. SEKI
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| From | Odd Bodkin <bodkinodd@gmail.com> |
|---|---|
| Date | 2017-02-13 09:55 -0600 |
| Message-ID | <o7skta$nm0$1@gioia.aioe.org> |
| In reply to | #409043 |
On 2/13/2017 9:37 AM, SEKI wrote: > On Tuesday, February 14, 2017 at 12:26:40 AM UTC+9, Odd Bodkin wrote: >> On 2/13/2017 8:51 AM, SEKI wrote: >>> On Monday, February 13, 2017 at 10:21:38 PM UTC+9, Odd Bodkin wrote: >>>> On 2/13/2017 1:49 AM, SEKI wrote: >>>>> Considering single particle (quantum) interference in a double slit >>>>> experiment, we can't deny the fact that a quantum is more of a wave >>>>> than anything. >>>>> In case where a quantum (wave) is localized in a small area, it can >>>>> be seen as a particle. >>>>> >>>>> To me, most physicists seem to be obsessed by the particle model. >>>>> >>>>> It should be noted that most of so-called quantum paradoxes can be >>>>> resolved by abandoning the particle model. >>>>> (Of course, the Bell's inequality is an exception, though can never >>>>> be resolved with the particle model.) >>>>> >>>>> Anyway, quantum theories are constructed as theories of waves, and >>>>> particles appear only in interpretations. >>>> >>>> I don't see any reason to try to force a decision. The fact is, these >>>> are quantum fields, which are NEITHER particles nor waves but a third >>>> kind of thing that exhibit wavelike and particlelike properties. >>> >>> Basically, you are right. >>> I wrote: >>>>> In case where a quantum (wave) is localized in a small area, it can >>>>> be seen as a particle. >>> >>> The wave model can double with the particle model. >> >> Or you can do what physicists do these days and stay away from BOTH the >> particle model and the wave model and instead use the model of quantum >> fields. That's what they appear to be, actually. The third thing, not >> some combination of the first two things. > > You don't seem to understand the gist of my arguments. > Did you read the first posting on this topic? Yes, I did. You're missing the point. You keep talking about particle models and wave models. These days, NEITHER model is used. Instead, as of about 1928, a wholly different third model is used: quantum field model. > > Thanks anyway. > > SEKI > -- Odd Bodkin -- maker of fine toys, tools, tables
[toc] | [prev] | [next] | [standalone]
| From | SEKI <seki.hajime01@gmail.com> |
|---|---|
| Date | 2017-02-13 09:10 -0800 |
| Message-ID | <4a716b58-81ee-4565-9d12-2c9e33e6d5c6@googlegroups.com> |
| In reply to | #409052 |
On Tuesday, February 14, 2017 at 12:55:25 AM UTC+9, Odd Bodkin wrote: > On 2/13/2017 9:37 AM, SEKI wrote: > > On Tuesday, February 14, 2017 at 12:26:40 AM UTC+9, Odd Bodkin wrote: > >> On 2/13/2017 8:51 AM, SEKI wrote: > >>> On Monday, February 13, 2017 at 10:21:38 PM UTC+9, Odd Bodkin wrote: > >>>> On 2/13/2017 1:49 AM, SEKI wrote: > >>>>> Considering single particle (quantum) interference in a double slit > >>>>> experiment, we can't deny the fact that a quantum is more of a wave > >>>>> than anything. > >>>>> In case where a quantum (wave) is localized in a small area, it can > >>>>> be seen as a particle. > >>>>> > >>>>> To me, most physicists seem to be obsessed by the particle model. > >>>>> > >>>>> It should be noted that most of so-called quantum paradoxes can be > >>>>> resolved by abandoning the particle model. > >>>>> (Of course, the Bell's inequality is an exception, though can never > >>>>> be resolved with the particle model.) > >>>>> > >>>>> Anyway, quantum theories are constructed as theories of waves, and > >>>>> particles appear only in interpretations. > >>>> > >>>> I don't see any reason to try to force a decision. The fact is, these > >>>> are quantum fields, which are NEITHER particles nor waves but a third > >>>> kind of thing that exhibit wavelike and particlelike properties. > >>> > >>> Basically, you are right. > >>> I wrote: > >>>>> In case where a quantum (wave) is localized in a small area, it can > >>>>> be seen as a particle. > >>> > >>> The wave model can double with the particle model. > >> > >> Or you can do what physicists do these days and stay away from BOTH the > >> particle model and the wave model and instead use the model of quantum > >> fields. That's what they appear to be, actually. The third thing, not > >> some combination of the first two things. > > > > You don't seem to understand the gist of my arguments. > > Did you read the first posting on this topic? > > Yes, I did. > > You're missing the point. You keep talking about particle models and > wave models. These days, NEITHER model is used. Instead, as of about > 1928, a wholly different third model is used: quantum field model. Probably, your interpretation of "wave/particle model" is different from mine. In my terminology, you can interpret the quantum field theory either with the wave model or with the particle model. Anyway, in the context of this topic, my points are that the assumption that there exist extremely small elementary particles (regardless of whether point-like or string) in reality is false, and that a wave function is not to give existence probability of a particle but to represent the substance of a quantum. Do you agree? Than you. SEKI
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| From | Poutnik <poutnik4nntp@gmail.com> |
|---|---|
| Date | 2017-02-13 18:44 +0100 |
| Message-ID | <o7sr6b$2un$1@dont-email.me> |
| In reply to | #409073 |
On 02/13/2017 06:10 PM, SEKI wrote: > Probably, your interpretation of "wave/particle model" is different > from mine. In my terminology, you can interpret the quantum field > theory either with the wave model or with the particle model. > By none of them. -- Poutnik ( The Pilgrim, Der Wanderer ) A wise man guards words he says, as they say about him more, than he says about the subject.
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| From | Sanjuanita Peeples <naalu@nwmeela.org> |
|---|---|
| Date | 2017-02-13 18:33 +0000 |
| Message-ID | <o7su5t$1b9r$1@gioia.aioe.org> |
| In reply to | #409076 |
Poutnik wrote: > On 02/13/2017 06:10 PM, SEKI wrote: > >> Probably, your interpretation of "wave/particle model" is different >> from mine. In my terminology, you can interpret the quantum field >> theory either with the wave model or with the particle model. > > By none of them. You never know.
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| From | Poutnik <poutnik4nntp@gmail.com> |
|---|---|
| Date | 2017-02-13 20:11 +0100 |
| Message-ID | <o7t09d$n3h$1@dont-email.me> |
| In reply to | #409083 |
Dne 13/02/2017 v 19:33 Sanjuanita Peeples napsal(a): > Poutnik wrote: > >> On 02/13/2017 06:10 PM, SEKI wrote: >> >>> Probably, your interpretation of "wave/particle model" is different >>> from mine. In my terminology, you can interpret the quantum field >>> theory either with the wave model or with the particle model. >> >> By none of them. > > You never know. There is not known any such a model yet that can. -- Poutnik ( The Pilgrim, Der Wanderer ) A wise man guards words he says, as they say about him more, than he says about the subject.
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| From | Sanjuanita Peeples <naalu@nwmeela.org> |
|---|---|
| Date | 2017-02-13 19:21 +0000 |
| Message-ID | <o7t10c$1gbm$1@gioia.aioe.org> |
| In reply to | #409096 |
Poutnik wrote: > Dne 13/02/2017 v 19:33 Sanjuanita Peeples napsal(a): >> Poutnik wrote: >> >>> On 02/13/2017 06:10 PM, SEKI wrote: >>> >>>> Probably, your interpretation of "wave/particle model" is different >>>> from mine. In my terminology, you can interpret the quantum field >>>> theory either with the wave model or with the particle model. >>> >>> By none of them. >> >> You never know. > > There is not known any such a model yet that can. No? Indeed, YOU never know. QM is inherently probabilistic amplitude wave function model. Go to school, young man.
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| From | Poutnik <poutnik4nntp@gmail.com> |
|---|---|
| Date | 2017-02-13 20:43 +0100 |
| Message-ID | <o7t25h$un2$1@dont-email.me> |
| In reply to | #409098 |
Dne 13/02/2017 v 20:21 Sanjuanita Peeples napsal(a): > Poutnik wrote: > >> Dne 13/02/2017 v 19:33 Sanjuanita Peeples napsal(a): >>> Poutnik wrote: >>> >>>> On 02/13/2017 06:10 PM, SEKI wrote: >>>> >>>>> Probably, your interpretation of "wave/particle model" is different >>>>> from mine. In my terminology, you can interpret the quantum field >>>>> theory either with the wave model or with the particle model. >>>> >>>> By none of them. >>> >>> You never know. >> >> There is not known any such a model yet that can. > > No? Indeed, YOU never know. QM is inherently probabilistic amplitude wave > function model. Go to school, young man. Wave functions should not be confused with wave nature of quantum objects. So you did not pay much attention in school, being busy changing nicks. BTW, I graduated 27 years ago. -- Poutnik ( The Pilgrim, Der Wanderer ) A wise man guards words he says, as they say about him more, than he says about the subject.
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| From | SEKI <seki.hajime01@gmail.com> |
|---|---|
| Date | 2017-02-13 07:11 -0800 |
| Message-ID | <2c9821fe-b7f2-4870-82e0-ccc645cb9f76@googlegroups.com> |
| In reply to | #409020 |
On Monday, February 13, 2017 at 10:21:38 PM UTC+9, Odd Bodkin wrote: > I don't see any reason to try to force a decision. The fact is, these > are quantum fields, which are NEITHER particles nor waves but a third > kind of thing that exhibit wavelike and particlelike properties. I wrote: > > Considering single particle (quantum) interference in a double slit > > experiment, we can't deny the fact that a quantum is more of a wave > > than anything. > > In case where a quantum (wave) is localized in a small area, it can > > be seen as a particle. The above can be paraphrased as follows: Considering single particle (quantum) interference in a double slit experiment, the particle model as of the Copenhagen interpretation is not acceptable. The wave model can double with the particle model. Thank you. SEKI
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| From | Tom Roberts <tjroberts137@sbcglobal.net> |
|---|---|
| Date | 2017-02-13 10:56 -0600 |
| Message-ID | <Wp-dnV9mpcy_eDzFnZ2dnUU7_8zNnZ2d@giganews.com> |
| In reply to | #409000 |
On 2/13/17 2/13/17 - 1:49 AM, SEKI wrote: > Anyway, quantum theories are constructed as theories of waves, and > particles appear only in interpretations. Neither "particle" nor "wave" accurately captures the concepts of quantum field theory. All your blather cannot change that, and your attempts to apply those labels to the theory are doomed. The quantum realm is QUITE different from the world we see around us in our everyday lives. Live with it (after all, you have no choice!). Word meanings that apply to our everyday lives need not apply in regimes far removed from our everyday experience, and in many cases they don't -- such as "wave" and "particle" (and many more).... Tom Roberts
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| From | SEKI <seki.hajime01@gmail.com> |
|---|---|
| Date | 2017-02-13 09:18 -0800 |
| Message-ID | <20795f6d-211f-4c8a-a459-93c9c50b087b@googlegroups.com> |
| In reply to | #409071 |
On Tuesday, February 14, 2017 at 1:56:08 AM UTC+9, tjrob137 wrote: > On 2/13/17 2/13/17 - 1:49 AM, SEKI wrote: > > Anyway, quantum theories are constructed as theories of waves, and > > particles appear only in interpretations. > > Neither "particle" nor "wave" accurately captures the concepts of quantum field > theory. All your blather cannot change that, and your attempts to apply those > labels to the theory are doomed. Then, you agree that the assumption that there exist extremely small elementary particles (regardless of whether point-like or string) in reality is false. Right?
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| From | Tom Roberts <tjroberts137@sbcglobal.net> |
|---|---|
| Date | 2017-02-13 12:45 -0600 |
| Message-ID | <5469dcda-1ecc-cadd-86a8-105387963c9c@sbcglobal.net> |
| In reply to | #409074 |
On 2/13/17 2/13/17 - 11:18 AM, SEKI wrote: > On Tuesday, February 14, 2017 at 1:56:08 AM UTC+9, tjrob137 wrote: >> Neither "particle" nor "wave" accurately captures the concepts of quantum field >> theory. All your blather cannot change that, and your attempts to apply those >> labels to the theory are doomed. > > Then, you agree that the assumption that there exist extremely small > elementary particles (regardless of whether point-like or string) in reality > is false. Right? Nope. Experiments measuring scattering from a gold foil show that nearly all of the mass is concentrated in extremely tiny nuclei, ~ 7E-15 meters in radius, spaced ~ 3E-10 meters apart. Experiments measuring neutrino deep inelastic scattering show that inside the nucleus there are pointlike scatterers no larger than ~ 1E-19 meters in diameter. Experiments measuring electron elastic scattering show the electrons have diameters no larger than ~ 1E-19 meters. So there is direct evidence of extremely small "particles". But these do not have all of the attributes one would expect from an ordinary "particle", such as: one cannot identify, label, or count them (one can measure the total # present, but not put them 1-to-1 with integers), one cannot locate them precisely, etc. Tom Roberts
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| From | Sanjuanita Peeples <naalu@nwmeela.org> |
|---|---|
| Date | 2017-02-13 20:44 +0000 |
| Message-ID | <o7t5rh$1qm1$1@gioia.aioe.org> |
| In reply to | #409087 |
Tom Roberts wrote: > Experiments measuring scattering from a gold foil show that nearly all > of the mass is concentrated in extremely tiny nuclei, ~ 7E-15 meters in > radius, spaced ~ 3E-10 meters apart. Experiments measuring neutrino deep How are these numbers not dependent on the thickness of the foil?? > inelastic scattering show that inside the nucleus there are pointlike > scatterers no larger than ~ 1E-19 meters in diameter. Experiments > measuring electron elastic scattering show the electrons have diameters > no larger than ~ 1E-19 meters. How would you know the deepness of that "pointlike" scatter?? > So there is direct evidence of extremely small "particles". But these do > not have all of the attributes one would expect from an ordinary > "particle", such as: one cannot identify, label, or count them (one can > measure the total # present, but not put them 1-to-1 with integers), one > cannot locate them precisely, etc. Tom Roberts Absolutely indeed.
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| From | Tom Roberts <tjroberts137@sbcglobal.net> |
|---|---|
| Date | 2017-02-14 09:40 -0600 |
| Message-ID | <_NqdndMDQZucuD7FnZ2dnUU7_83NnZ2d@giganews.com> |
| In reply to | #409110 |
On 2/13/17 2/13/17 - 2:44 PM, Sanjuanita Peeples wrote: > Tom Roberts wrote: > >> Experiments measuring scattering from a gold foil show that nearly all >> of the mass is concentrated in extremely tiny nuclei, ~ 7E-15 meters in >> radius, spaced ~ 3E-10 meters apart. > > How are these numbers not dependent on the thickness of the foil?? In such scattering experiments, the fraction of the incoming beam that scatters is related to the thickness of the foil. The angular distribution of the scattering process is not, as long as the foil is thin enough that multiple scatters are unlikely (this can be corrected for when necessary). The angular distribution can be used to determine the diameter of the scattering centers, with the result I mentioned above. Tom Roberts
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| From | Sanjuanita Peeples <naalu@nwmeela.org> |
|---|---|
| Date | 2017-02-15 16:13 +0000 |
| Message-ID | <o81unj$bqc$2@gioia.aioe.org> |
| In reply to | #409202 |
Tom Roberts wrote: > On 2/13/17 2/13/17 - 2:44 PM, Sanjuanita Peeples wrote: >> Tom Roberts wrote: >> >>> Experiments measuring scattering from a gold foil show that nearly all >>> of the mass is concentrated in extremely tiny nuclei, ~ 7E-15 meters >>> in radius, spaced ~ 3E-10 meters apart. >> >> How are these numbers not dependent on the thickness of the foil?? > > In such scattering experiments, the fraction of the incoming beam that > scatters is related to the thickness of the foil. The angular > distribution of the scattering process is not, as long as the foil is > thin enough that multiple scatters are unlikely (this can be corrected > for when necessary). > The angular distribution can be used to determine the diameter of the > scattering centers, with the result I mentioned above. Tom Roberts This seemingly is easy for you, but not for a one like me. The foil is assumed rigid, hence the DLS (dynamic laser scattering) is not applicable in the evaluation of the targets size/thickness. Hence the scattered particles (neutrons?) must be dependent on the crystalline structure of the gold foil. How many atoms are there along the radial cross-section? I don't know. How are those aligned? I don't know.
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| From | Poutnik <poutnik4nntp@gmail.com> |
|---|---|
| Date | 2017-02-15 17:34 +0100 |
| Message-ID | <o81vrg$b2b$1@dont-email.me> |
| In reply to | #409345 |
On 02/15/2017 05:13 PM, Sanjuanita Peeples wrote: > Tom Roberts wrote: > >> On 2/13/17 2/13/17 - 2:44 PM, Sanjuanita Peeples wrote: >>> Tom Roberts wrote: >>> >>>> Experiments measuring scattering from a gold foil show that nearly all >>>> of the mass is concentrated in extremely tiny nuclei, ~ 7E-15 meters >>>> in radius, spaced ~ 3E-10 meters apart. >>> >>> How are these numbers not dependent on the thickness of the foil?? >> >> In such scattering experiments, the fraction of the incoming beam that >> scatters is related to the thickness of the foil. The angular >> distribution of the scattering process is not, as long as the foil is >> thin enough that multiple scatters are unlikely (this can be corrected >> for when necessary). >> The angular distribution can be used to determine the diameter of the >> scattering centers, with the result I mentioned above. Tom Roberts > > This seemingly is easy for you, but not for a one like me. The foil is > assumed rigid, hence the DLS (dynamic laser scattering) is not applicable > in the evaluation of the targets size/thickness. Hence the scattered > particles (neutrons?) must be dependent on the crystalline structure of > the gold foil. How many atoms are there along the radial cross-section? I > don't know. How are those aligned? I don't know. > The scattering was first done by alfa particles in the Rutherford laboratory in 1911. http://hyperphysics.phy-astr.gsu.edu/hbase/rutsca.html https://en.wikipedia.org/wiki/Rutherford_scattering -- Poutnik ( The Pilgrim, Der Wanderer ) A wise man guards words he says, as they say about him more, than he says about the subject.
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| From | Sanjuanita Peeples <naalu@nwmeela.org> |
|---|---|
| Date | 2017-02-15 17:11 +0000 |
| Message-ID | <o8223d$jnf$1@gioia.aioe.org> |
| In reply to | #409352 |
Poutnik wrote: >> This seemingly is easy for you, but not for a one like me. The foil is >> assumed rigid, hence the DLS (dynamic laser scattering) is not >> applicable in the evaluation of the targets size/thickness. Hence the >> scattered particles (neutrons?) must be dependent on the crystalline >> structure of the gold foil. How many atoms are there along the radial >> cross-section? I don't know. How are those aligned? I don't know. >> > The scattering was first done by alfa particles in the Rutherford > laboratory in 1911. > http://hyperphysics.phy-astr.gsu.edu/hbase/rutsca.html > https://en.wikipedia.org/wiki/Rutherford_scattering What are we talking about. Please learn what a DLS stands for and why.
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