When we boil water, the flame over which it sits is field replacing the electrons holding the atoms of hydrogen and oxygen together. Those atoms, now lighter than air, start to rise. However, because they are rising into a diminishing field, the atoms immediately turn back into water as the oxygen and hydrogen atoms recombine. If we put the process under pressure, the atoms don’t recombine, become an explosive gas and can perform work, as in a steam engine. However, as the steam expands, it immediately condenses as the recombination of the atoms draws electrons out of the ambient field.
However, leaving water out in the sun causes the sun to do the field replacing. The process is not only less rapid as boiling water, the atoms of oxygen and hydrogen are not rising into a diminishing field. We see empirical classification at work here with heat causing water to disappear with the two equaling evaporation, but the outcome of each is quite different. When water is rapidly boiled and evaporates into a diminishing field, the oxygen and hydrogen atoms come back together as water. When water is evaporated in sunlight, the oxygen and hydrogen atoms don’t get a chance to reunite, but rather remain separate. When they do reunite, they do produce rain along with a heck of a lot of lightning.
Let’s look at the evaporation process at the equator, where most weather originates. Nuclei of the oxygen and hydrogen atoms are held together into water molecules by the excess affinity propensities of their nuclei and the cloud of orbiting electrons that surround them. As the sun strikes the surface of the equatorial waters, it replaces the clouds of orbiting electrons, and loosens the attraction of the excess affinity propensities by replacing that attraction with its own field. As hydrogen is much lighter than oxygen, it immediately rises into the atmosphere, but because the oxygen is also lighter than the atmosphere, it follows. However, because the two are moving at different rates, they don't have a chance to recombine.
When they rise high enough, they freeze, but into what? As science has no idea about these massive fields of frozen oxygen and hydrogen atoms that comprise the upper atmosphere, I am forced to make up a name for them, and I ended up referring to them as ice flecs, the slight misspelling designed to distinguish them from ice flecks, which actually are ice.
Looking more closely at the field replacement process, when the atoms of oxygen and hydrogen separate, what is happening? All nuclei need a cloud of orbiting electrons. The water molecule has a single cloud of orbiting electrons, When the three atoms separate, each atom needs its own field of orbiting electrons, so what before field replacement required a single cloud of orbiting electrons requires three fields of orbiting electrons after field replacement.
As the hydrogen and oxygen atoms are being field replaced at the equator, they are pulling huge amounts of electrons out of what is an electron abundant area, the electrons produced by the rays of the sun breaking down on the surface of the equatorial oceans. What does this mean? It means that the rising evaporate, the individual atoms, are carrying with them one heck of a lot of heat, or in simple terms, energy and this is why I call the result ice flecs. As they rise into the atmosphere, there is, on a purely physical basis, more and more area available. This causes these giant sheets of ice flecs to cling closer together as a result of the increasing affinity propensities of the larger area. They become the raw material of the weather, and while I don’t want to infringe on the material in the next chapter, we still need to see what happens when the sheets of ice flecs themselves become field replaced.
(To be continued)
Monday, November 26, 2007
Saturday, November 17, 2007
Field Replacement (continued)
The same effect occurs when we leave frozen food in the freezer too long, only it’s called freezer burn, and with good reason, because too much cold for too long a period of time literally sucks the electrons out of the surface of things. This is the same process that occurs when we put a match too close to our skin. To see the analogy, all we have to do is examine pictures of frostbite victims. The flesh is actually in a burnt condition, and requires burn treatment to heal (if the appendage doesn’t just fall off). This effect, where field replacement produces both the sensations we feel when we are burnt or freezing is a part of popular understanding, even among children. I refer to the trick where the subject is told he is going to receive a sever burn on the back. When he takes his shirt off, the trickster prepares a heated knife or merely strikes a match, then applies an ice cube to the back. The subject actually feels like he’s been burnt.
While field replacement has a part in water boiling, the steam from the evaporating water has to be distinguished from the process where water is field replaced that occurs at the equator, or for that matter, in any body of water sitting under hot sunlight.
(To be continued)
While field replacement has a part in water boiling, the steam from the evaporating water has to be distinguished from the process where water is field replaced that occurs at the equator, or for that matter, in any body of water sitting under hot sunlight.
(To be continued)
Saturday, November 10, 2007
Field Replacement (contnued)
But what happens if there aren’t enough electrons in the ambient field? To explore this, we need look no further than our refrigerator. How does the interior of the box get cold? For this we need a refrigerant, which is, surprise, a compressible gas. The process of refrigeration begins with a compressor that compresses the gas. Of course, we’ll need a fan at the point of compression because the compression process releases a lot of heat, a requirement of the refrigerant that it be able to absorb vast quantities of electrons.
With the electrons compressed out of the gas by the process of forcing the nuclei of the gas atoms together, field replacing each other’s affinity propensities and removing the need for the nuclei’s orbiting electrons, the gas is sent into the insulted box. The insulation is a physical substance that resists the transfer of electrons and therefore is capable of reducing the electrons in the ambient field.
As the refrigerant circulates in the box, it removes the ambient electrons from the field, and then begins to remove the electrons that are orbiting the molecules of air. As the movement of electrons represents heat, the removal of electrons represents the removal of heat. While the ability of the box to lose heat is dependent on the ability of its insulation to prevent the transference of electrons from outside the box to inside the box, the box will become cold as the electrons are leached out of it by the expanding nuclei of the atoms in the refrigerant and then compressed out in heat which is then removed from the area by the fan.
Now we put a tender morsel of meat in the box. What happens to it?
The air in the box, already having given up its ambient electrons, and also some of the electrons orbiting its molecules, and even atoms, to the incessant demands of the expanding gas in the refrigerant, now has a new source of electrons, the electrons in the morsel of meat. In an attempt to balance the affinity propensity deficits, the meat gives up its electrons, cooling in the process, the definition of cooler being less activity, less movement of electrons.
Throw in a six pack of beer, some hot dogs and hamburgers, and the process continues, with the expanding gas of the refrigerant faithfully removing electrons from the box and, in the compression process, dropping them outside to be dissipated by the compressor's fan. We can adjust the level of coolness in the box by adjusting the amount of electrons we want withdrawn from it, calibrated for our senses in the form of temperature.
Alongside the refrigerator box, the increasingly popular separate box for taking temperatures down below the freezing point, is set to withdraw electrons to the point that ice and other products freeze. Even in the freezing of ice, we can see a unique process that results from field replacement. Science has long marveled that the combination of two hydrogen and an oxygen atom can form into either a gas, a liquid or a solid, the solid being the ice that freezing water produces. Science also notes that in the early part of freezing, the ice actually gains volume, expanding in the ice tray. What causes this?
We’ll see in a moment how water’s evaporation is not what’s happening when the sun beats down on the surface of a pool, it’s field replacement. In short, one of the biggest failures of science is to explain how moisture gets in the air, and thus weather itself, a subject we’ll take up in detail in the next chapter. But when it goes the other way, when water freezes, field replacement is working to withdraw electrons from the orbiting clouds around the molecules and atoms that make up the water. It is also simultaneously withdrawing electrons from the orbiting clouds of the air itself, to the point that both the air and the water have deficits that need to be made up by the nuclei the atoms that make up each field replacing each other.
But a funny thing happens on the way to this molecular field replacement. Air is about 78% nitrogen and 21% oxygen, the same oxygen that makes up the water molecule. As the air and the water intermingle in the freezing process, the excess affinity propensities of some of the oxygen atoms in the air replace the excess affinity propensities of some of the oxygen atoms in the water, dragging the molecule of air along with it into the freezing process, the reason that water appears to have air bubbles, floats, and expands in size.
However, if we leave the ice in the freeze too long, field replacement begins to take its toll, with the ice slowly losing both molecules of air and molecules of water to the persistent expansion of the refrigerant. This shrinks the remaining oxygen and hydrogen atoms into smaller and smaller slivers, similar in appearance to hail, an analogy that will become clear in the next chapter.
(To be continued)
With the electrons compressed out of the gas by the process of forcing the nuclei of the gas atoms together, field replacing each other’s affinity propensities and removing the need for the nuclei’s orbiting electrons, the gas is sent into the insulted box. The insulation is a physical substance that resists the transfer of electrons and therefore is capable of reducing the electrons in the ambient field.
As the refrigerant circulates in the box, it removes the ambient electrons from the field, and then begins to remove the electrons that are orbiting the molecules of air. As the movement of electrons represents heat, the removal of electrons represents the removal of heat. While the ability of the box to lose heat is dependent on the ability of its insulation to prevent the transference of electrons from outside the box to inside the box, the box will become cold as the electrons are leached out of it by the expanding nuclei of the atoms in the refrigerant and then compressed out in heat which is then removed from the area by the fan.
Now we put a tender morsel of meat in the box. What happens to it?
The air in the box, already having given up its ambient electrons, and also some of the electrons orbiting its molecules, and even atoms, to the incessant demands of the expanding gas in the refrigerant, now has a new source of electrons, the electrons in the morsel of meat. In an attempt to balance the affinity propensity deficits, the meat gives up its electrons, cooling in the process, the definition of cooler being less activity, less movement of electrons.
Throw in a six pack of beer, some hot dogs and hamburgers, and the process continues, with the expanding gas of the refrigerant faithfully removing electrons from the box and, in the compression process, dropping them outside to be dissipated by the compressor's fan. We can adjust the level of coolness in the box by adjusting the amount of electrons we want withdrawn from it, calibrated for our senses in the form of temperature.
Alongside the refrigerator box, the increasingly popular separate box for taking temperatures down below the freezing point, is set to withdraw electrons to the point that ice and other products freeze. Even in the freezing of ice, we can see a unique process that results from field replacement. Science has long marveled that the combination of two hydrogen and an oxygen atom can form into either a gas, a liquid or a solid, the solid being the ice that freezing water produces. Science also notes that in the early part of freezing, the ice actually gains volume, expanding in the ice tray. What causes this?
We’ll see in a moment how water’s evaporation is not what’s happening when the sun beats down on the surface of a pool, it’s field replacement. In short, one of the biggest failures of science is to explain how moisture gets in the air, and thus weather itself, a subject we’ll take up in detail in the next chapter. But when it goes the other way, when water freezes, field replacement is working to withdraw electrons from the orbiting clouds around the molecules and atoms that make up the water. It is also simultaneously withdrawing electrons from the orbiting clouds of the air itself, to the point that both the air and the water have deficits that need to be made up by the nuclei the atoms that make up each field replacing each other.
But a funny thing happens on the way to this molecular field replacement. Air is about 78% nitrogen and 21% oxygen, the same oxygen that makes up the water molecule. As the air and the water intermingle in the freezing process, the excess affinity propensities of some of the oxygen atoms in the air replace the excess affinity propensities of some of the oxygen atoms in the water, dragging the molecule of air along with it into the freezing process, the reason that water appears to have air bubbles, floats, and expands in size.
However, if we leave the ice in the freeze too long, field replacement begins to take its toll, with the ice slowly losing both molecules of air and molecules of water to the persistent expansion of the refrigerant. This shrinks the remaining oxygen and hydrogen atoms into smaller and smaller slivers, similar in appearance to hail, an analogy that will become clear in the next chapter.
(To be continued)
Friday, November 2, 2007
Field Replacement (continued)
While it’s all well and good to describe what’s theoretically possible using the single particle, our converted electron, with its opposing properties of at rest motion and affinity propensity to explain what no one else has ever been able to explain, namely what’s going on when you look at the burning logs in your fireplace, what’s mechanically going on, not what’s going on in science’s limited vocabulary of ignition point, oxygen combustion, the (humorous) claim that what isn’t left in the fireplace went up in gases, we can also look around at every day phenomena to get an idea of what field replacement is, what’s going on when one set of affinity propensities replaces another set of affinity propensities.
We can start off with something that is very simple, something that we first notice as children fixing the flat tires of our bikes. When we get the tire patched, we have to pump air into it. We take a little foot pump and start pumping away. What’s the first thing we notice, other than the pumping is making us tired but the tire is pumping up? If we feel the tire, which we always do to see how firm it’s getting, we notice that it is hotter than it was before we started pumping.
Where’s the heat coming from?
If we look in our science books, we find that compression of a gas produces heat. This, however, is monkey see, monkey say science, the proclivity of science to simply describe the result of what is happening and then pretending it knows what’s happening. While there’s certainly a body of theory out there dealing with compression and gases, when you boil it down, it’s still just describing effects of a cause. Nothing out there tells us mechanically what is happening to cause heat when a gas, the air in our tire, is compressed.
However, if we look at the pumping process in light of field replacement, we can clearly see exactly what is happening. Heat is movement, to be exact, the movement of electrons. When we put the unlit match deeper into the field of the lit match, the match ignited, and the motion of the electrons produced heat. But we don’t always need fire to produce heat. Heat is produced in all sorts of ways. However, no matter how it is produced, it is still an increase in the movement of electrons, or more to the point, an increase in the number of electrons in a given area.
When we compress the atoms, or molecules of atoms, of a gas, what are we doing? We are forcing the nuclei of the atoms into closer proximity. What is the result of this? The excess affinity propensities of the artificially compressed nuclei begin to replace each other’s affinity propensity, removing the need for the nuclei to satisfy those excess affinity propensities with orbiting electrons. With more stable affinity propensities replacing the less stable affinity propensities of the orbiting electrons, those electrons take off and become ambient. As they are all being released at the source of compression, they add heat to the immediate environment, heat that soon dissipates with the departing ambient electrons.
Now let’s reverse the process. I just cleaned my computer keys today using a can of compressed air, although decompressing a gas, say letting the air out of a tire, has the same effect. As I pressed the nozzle of the can, letting a blast of air rid the keys of dust, the can became cold. Why did this effect occur?
When the air is being decompressed, the nuclei of its atoms are returning to their normal distances from one another. They are no longer being artificially forced into a closer proximity. That means that these nuclei now have an excess affinity propensity that has to be satisfied by attracting electrons out of the ambient field. What constitutes the ambient field? In my case, the air around the top of the can where the nuclei were regaining their normal distances. All of a sudden, instead of an abundance of electrons, there was a deficit of electrons, and as electrons always seek out the strongest excess affinity propensity, and the strongest excess affinity propensity was the need of the decompressing nuclei for orbiting electrons, the decompressing nuclei were sucking electrons out of the ambient field, then some out of the molecules of air immediately surrounding them, some out of the surface nuclei of the can, and of course, some out of the surface flesh of my hand.
This process will continue until all the separate sources of excess affinity propensities have been satisfied. Slowly, electrons in the ambient field will migrate to the congeries of excess affinity propensities, in the decompressing nuclei, the air, the can and my skin, and everything will return to normal.
But what happens if there aren’t enough electrons in the ambient field?
(To be continued)
We can start off with something that is very simple, something that we first notice as children fixing the flat tires of our bikes. When we get the tire patched, we have to pump air into it. We take a little foot pump and start pumping away. What’s the first thing we notice, other than the pumping is making us tired but the tire is pumping up? If we feel the tire, which we always do to see how firm it’s getting, we notice that it is hotter than it was before we started pumping.
Where’s the heat coming from?
If we look in our science books, we find that compression of a gas produces heat. This, however, is monkey see, monkey say science, the proclivity of science to simply describe the result of what is happening and then pretending it knows what’s happening. While there’s certainly a body of theory out there dealing with compression and gases, when you boil it down, it’s still just describing effects of a cause. Nothing out there tells us mechanically what is happening to cause heat when a gas, the air in our tire, is compressed.
However, if we look at the pumping process in light of field replacement, we can clearly see exactly what is happening. Heat is movement, to be exact, the movement of electrons. When we put the unlit match deeper into the field of the lit match, the match ignited, and the motion of the electrons produced heat. But we don’t always need fire to produce heat. Heat is produced in all sorts of ways. However, no matter how it is produced, it is still an increase in the movement of electrons, or more to the point, an increase in the number of electrons in a given area.
When we compress the atoms, or molecules of atoms, of a gas, what are we doing? We are forcing the nuclei of the atoms into closer proximity. What is the result of this? The excess affinity propensities of the artificially compressed nuclei begin to replace each other’s affinity propensity, removing the need for the nuclei to satisfy those excess affinity propensities with orbiting electrons. With more stable affinity propensities replacing the less stable affinity propensities of the orbiting electrons, those electrons take off and become ambient. As they are all being released at the source of compression, they add heat to the immediate environment, heat that soon dissipates with the departing ambient electrons.
Now let’s reverse the process. I just cleaned my computer keys today using a can of compressed air, although decompressing a gas, say letting the air out of a tire, has the same effect. As I pressed the nozzle of the can, letting a blast of air rid the keys of dust, the can became cold. Why did this effect occur?
When the air is being decompressed, the nuclei of its atoms are returning to their normal distances from one another. They are no longer being artificially forced into a closer proximity. That means that these nuclei now have an excess affinity propensity that has to be satisfied by attracting electrons out of the ambient field. What constitutes the ambient field? In my case, the air around the top of the can where the nuclei were regaining their normal distances. All of a sudden, instead of an abundance of electrons, there was a deficit of electrons, and as electrons always seek out the strongest excess affinity propensity, and the strongest excess affinity propensity was the need of the decompressing nuclei for orbiting electrons, the decompressing nuclei were sucking electrons out of the ambient field, then some out of the molecules of air immediately surrounding them, some out of the surface nuclei of the can, and of course, some out of the surface flesh of my hand.
This process will continue until all the separate sources of excess affinity propensities have been satisfied. Slowly, electrons in the ambient field will migrate to the congeries of excess affinity propensities, in the decompressing nuclei, the air, the can and my skin, and everything will return to normal.
But what happens if there aren’t enough electrons in the ambient field?
(To be continued)
Sunday, October 28, 2007
Field Replacement (continued)
Now let’s return to our single flow and see how it affects the orbiting electrons of an atom, the basic reason the phenomenon is called field replacement. For purposes of visualization, we can imagine a single atom with a cloud of orbiting electrons whizzing around its nucleus. We bring our single flow of electrons close to the cloud of orbiting electrons. The nucleus has attracted only so many orbiting electrons as its excess affinity propensity will allow. What happens when the flow of electrons, with an electron at every point in the flow, comes close to the cloud of orbiting electrons?
The electrons orbiting the flow have their affinity propensities balanced by their at rest motion. At the first chance, their at rest motion is going to gain the upper hand and the electrons will fly off, ambient in the field. In like manner, the electrons orbiting the nucleus have their at rest motion balancing their affinity propensity and at the first chance the at rest motion can gain the upper hand, they too will fly off, ambient in the field.
Thus, when the more stationary electron in the flow satisfies the affinity propensity of the nucleus of the atom, one electron to be exact because we have only a single flow of electrons, both the electron orbiting the flow at that point and one electron orbiting the nucleus will no longer be necessary. The affinity propensity of the flow is now satisfying the affinity propensity of the nucleus, or to be more exact, the more stable affinity propensities of the nucleus and the flow have replaced the less stable affinity propensities of the orbiting electrons, and no longer with an affinity propensity to attract them, they are off in search of other affinity propensities.
If we double the flow, two electrons are replaced, triple it and three electrons are replaced. Of course, in the real world, we’re dealing with billions of electron flows and billions of orbiting electrons. Note that a single flow can replace the electrons in multiple atoms because at any point in the flow there is an affinity propensity that is more stable than the affinity propensities of the orbiting electrons. That’s why the electrons replaced by the affinity propensities of the flow will join a flow of electricity and why certain elements can become magnetic, the orbiting electrons being replaced by the electric flows becoming electrons orbiting all the atoms in the element.
Let’s revisit our wooden matches, where we had one match head with a flame, the other without. When the matches are a foot apart, the expanding flows of electrons are not strong enough to penetrate the physical surface of the sulfur. They are merely being deflected and therefore not producing field replacement. However, as we move the unlit match closer to the flame, the flows of electrons begin to penetrate the physical surface and begin to field replace the sulfur at the match’s head. As the orbiting electrons are replaced, the try to head off, but they too have to contend with the physical surface of the sulfur. At the outset, they can’t all breach the surface and thus not only are the flows of electrons replacing orbiting electrons, but the replaced electrons are milling about, also replacing the need for orbiting electrons in the sulfur.
The field replacement continues apace until the physical surface of the sulfur can no longer contain the electrons, and the match head ignites, its mass of ambient electrons now becoming directed by the combustion process of the match itself. This combustion is itself a clearly defined process in which the orbiting electrons, now being replaced on a massive scale, cannot all exit the match head at the same time. As a result, one mass of them is released in an expanding sphere. During the instant between this expanding sphere and the next expanding sphere, the massive mass of replaced electrons in the match head regroups and organizes for another mass exit from the match head. This reorganization can be viewed as an instant of contraction, the release of the expanding spheres being a point of expansion. This cycle of contraction and expansion is what gives the totality of expanding spheres produced by a single event frequency, with the rate of combustion (or if we are producing them with electricity, oscillation) determining frequency.
(To be continued)
The electrons orbiting the flow have their affinity propensities balanced by their at rest motion. At the first chance, their at rest motion is going to gain the upper hand and the electrons will fly off, ambient in the field. In like manner, the electrons orbiting the nucleus have their at rest motion balancing their affinity propensity and at the first chance the at rest motion can gain the upper hand, they too will fly off, ambient in the field.
Thus, when the more stationary electron in the flow satisfies the affinity propensity of the nucleus of the atom, one electron to be exact because we have only a single flow of electrons, both the electron orbiting the flow at that point and one electron orbiting the nucleus will no longer be necessary. The affinity propensity of the flow is now satisfying the affinity propensity of the nucleus, or to be more exact, the more stable affinity propensities of the nucleus and the flow have replaced the less stable affinity propensities of the orbiting electrons, and no longer with an affinity propensity to attract them, they are off in search of other affinity propensities.
If we double the flow, two electrons are replaced, triple it and three electrons are replaced. Of course, in the real world, we’re dealing with billions of electron flows and billions of orbiting electrons. Note that a single flow can replace the electrons in multiple atoms because at any point in the flow there is an affinity propensity that is more stable than the affinity propensities of the orbiting electrons. That’s why the electrons replaced by the affinity propensities of the flow will join a flow of electricity and why certain elements can become magnetic, the orbiting electrons being replaced by the electric flows becoming electrons orbiting all the atoms in the element.
Let’s revisit our wooden matches, where we had one match head with a flame, the other without. When the matches are a foot apart, the expanding flows of electrons are not strong enough to penetrate the physical surface of the sulfur. They are merely being deflected and therefore not producing field replacement. However, as we move the unlit match closer to the flame, the flows of electrons begin to penetrate the physical surface and begin to field replace the sulfur at the match’s head. As the orbiting electrons are replaced, the try to head off, but they too have to contend with the physical surface of the sulfur. At the outset, they can’t all breach the surface and thus not only are the flows of electrons replacing orbiting electrons, but the replaced electrons are milling about, also replacing the need for orbiting electrons in the sulfur.
The field replacement continues apace until the physical surface of the sulfur can no longer contain the electrons, and the match head ignites, its mass of ambient electrons now becoming directed by the combustion process of the match itself. This combustion is itself a clearly defined process in which the orbiting electrons, now being replaced on a massive scale, cannot all exit the match head at the same time. As a result, one mass of them is released in an expanding sphere. During the instant between this expanding sphere and the next expanding sphere, the massive mass of replaced electrons in the match head regroups and organizes for another mass exit from the match head. This reorganization can be viewed as an instant of contraction, the release of the expanding spheres being a point of expansion. This cycle of contraction and expansion is what gives the totality of expanding spheres produced by a single event frequency, with the rate of combustion (or if we are producing them with electricity, oscillation) determining frequency.
(To be continued)
Saturday, October 20, 2007
Field Replacement
The concept of field replacement arises from the single particle with its two opposing properties of at rest motion and affinity propensity. Broadly stated, field replacement is the principle that stationary fields replace less stationary fields. Specifically, more stationary affinity propensities replace less stationary affinity propensities.
What are stationary affinity propensities?
One stationary affinity propensity is found in the nucleus of the atom, the excess affinity propensity of the combined units that attracts electrons into orbit around it. A less stationary affinity propensity is found in the orbiting electrons, where the affinity propensities of the electrons are balanced by their at rest motion.
However, the electrons with the most stable affinity propensities are, surprisingly, electrons in a flow of electrons, either in the form of electricity, magnetism, or the electromagnetic frequency spectrum. Let’s take a close look at a flow of electrons by starting out looking at a flow of water.
Assume we’re sitting beside a quietly flowing stream. We look out at the water and it appears to be perfectly still. However, we know it isn’t because every once in a while, a leaf will flow lazily by. What makes the water look still is that all the molecules of water are identical. When one molecule of water vacates a point in the stream, an identical molecule that follows it takes its position. While all the molecules of water are drifting with the flow of the stream, they all look like they are stationary because at any moment, the molecule that comes behind is replacing each molecule.
This is also the case in a flow of electrons. While science has a pretty hazy, and many times contradictory, view of an electron, we know the electron as our single elementary particle with its two opposing properties. We also know that all electrons are identical. Thus, we can picture a single flow of electrons. At any point in the flow there is always an electron. It is not the same electron at any one time, but since all electrons are alike, the fact that at any point in the flow there is always an electron means that for all intents and purposes, at any point in a flow of electrons, there is what is basically a stable electron, an electron’s presence that is stationary.
Now, let’s take a moment and look closely at the effect of a single flow of electrons. At any point in the flow, there is an excess affinity propensity due to the fact that at any point in the flow there is always an electron. The electron’s at rest motion is being satisfied by the forward motion of the flow, and to some extent, each electron's affinity propensity is partially used up by its presence next to the electron in front of it and the electron in back of it, but since all electrons are involved in a directed field, a field that has obtained its direction from an activity at its source, most of its affinity propensity is excess affinity propensity.
What do we know about excess affinity propensities? Electrons in the ambient field will seek excess affinity propensities out so that they can satisfy their own excess affinity propensities. In the case of the flow of electrons, how could electrons in the ambient field best satisfy the excess affinity propensities of both?
At each point on the flow, the excess affinity propensity would attract an orbiting electron but since each point in the flow is next to the point ahead and behind it, the only way the orbiting electron could satisfy the excess affinity propensities is if it orbited at a right angle the flow. With every point in the flow attracting an electron out of the ambient field, all of the electrons orbiting the flow at right angles make up what we measure to be the inductive field, the flow of electrons around a primary flow.
Why not attract electrons out of the ambient field at a left angle, which is to say, why does induction follow the right hand rule, the rule where, if you put the thumb of your right hand in the direction of the primary flow and curl your fingers, the curl of your fingers will give you the direction of the inductive flow. For reasons that will become clear when we discuss planetary orbiting and rotation, all motion in the universe accords with a right hand rule. If we point the thumb of our right hand in the direction of the North Pole and curl our fingers, our fingers will curl in the direction of planetary rotation and, if we extend our mind to the solar system, orbiting. I suspect induction follows rotation.
In any event, let’s add a second flow to the first flow. What happens? With twice the excess affinity propensity at every point in the flow, each point attracts two orbiting electrons out of the ambient field that orbit at right angles, doubling the inductive flow. Add a third flow and the inductive flow triple what it would be for a single flow. In short, the inductive flow is proportional to the primary flow, the basic rule of induction, and a fact of utmost importance when we later describe the mechanism of gravity.
(To be continued)
What are stationary affinity propensities?
One stationary affinity propensity is found in the nucleus of the atom, the excess affinity propensity of the combined units that attracts electrons into orbit around it. A less stationary affinity propensity is found in the orbiting electrons, where the affinity propensities of the electrons are balanced by their at rest motion.
However, the electrons with the most stable affinity propensities are, surprisingly, electrons in a flow of electrons, either in the form of electricity, magnetism, or the electromagnetic frequency spectrum. Let’s take a close look at a flow of electrons by starting out looking at a flow of water.
Assume we’re sitting beside a quietly flowing stream. We look out at the water and it appears to be perfectly still. However, we know it isn’t because every once in a while, a leaf will flow lazily by. What makes the water look still is that all the molecules of water are identical. When one molecule of water vacates a point in the stream, an identical molecule that follows it takes its position. While all the molecules of water are drifting with the flow of the stream, they all look like they are stationary because at any moment, the molecule that comes behind is replacing each molecule.
This is also the case in a flow of electrons. While science has a pretty hazy, and many times contradictory, view of an electron, we know the electron as our single elementary particle with its two opposing properties. We also know that all electrons are identical. Thus, we can picture a single flow of electrons. At any point in the flow there is always an electron. It is not the same electron at any one time, but since all electrons are alike, the fact that at any point in the flow there is always an electron means that for all intents and purposes, at any point in a flow of electrons, there is what is basically a stable electron, an electron’s presence that is stationary.
Now, let’s take a moment and look closely at the effect of a single flow of electrons. At any point in the flow, there is an excess affinity propensity due to the fact that at any point in the flow there is always an electron. The electron’s at rest motion is being satisfied by the forward motion of the flow, and to some extent, each electron's affinity propensity is partially used up by its presence next to the electron in front of it and the electron in back of it, but since all electrons are involved in a directed field, a field that has obtained its direction from an activity at its source, most of its affinity propensity is excess affinity propensity.
What do we know about excess affinity propensities? Electrons in the ambient field will seek excess affinity propensities out so that they can satisfy their own excess affinity propensities. In the case of the flow of electrons, how could electrons in the ambient field best satisfy the excess affinity propensities of both?
At each point on the flow, the excess affinity propensity would attract an orbiting electron but since each point in the flow is next to the point ahead and behind it, the only way the orbiting electron could satisfy the excess affinity propensities is if it orbited at a right angle the flow. With every point in the flow attracting an electron out of the ambient field, all of the electrons orbiting the flow at right angles make up what we measure to be the inductive field, the flow of electrons around a primary flow.
Why not attract electrons out of the ambient field at a left angle, which is to say, why does induction follow the right hand rule, the rule where, if you put the thumb of your right hand in the direction of the primary flow and curl your fingers, the curl of your fingers will give you the direction of the inductive flow. For reasons that will become clear when we discuss planetary orbiting and rotation, all motion in the universe accords with a right hand rule. If we point the thumb of our right hand in the direction of the North Pole and curl our fingers, our fingers will curl in the direction of planetary rotation and, if we extend our mind to the solar system, orbiting. I suspect induction follows rotation.
In any event, let’s add a second flow to the first flow. What happens? With twice the excess affinity propensity at every point in the flow, each point attracts two orbiting electrons out of the ambient field that orbit at right angles, doubling the inductive flow. Add a third flow and the inductive flow triple what it would be for a single flow. In short, the inductive flow is proportional to the primary flow, the basic rule of induction, and a fact of utmost importance when we later describe the mechanism of gravity.
(To be continued)
Saturday, October 13, 2007
The Atom
Combustion is the field. It is the process by which matter unravels, first the electrons that hold molecules and atoms into physical matter depart, then the units of the nuclei separate as the field of the combustion process replaces the affinity propensities holding them together, and then the actual electrons in the nuclei themselves are emitted in expanding spheres.
When the conglomerations of the heaviest atoms that formed in the absence of a field begin to ignite, some are small, the size of moons or planets, others are large, the size of stars. Regardless of size, however, they all have one thing in common: they are cooling. And they are all cooling at the same rate. This means that the larger the sphere of the heaviest element is, the longer it will take to cool.
As the smaller spheres start to cool, the rate of combustion on their surfaces slows. This means that the process that is occurring on the surface when it is combusting like the sun is today reverses itself. A point is reached where the electrons of the unit can no longer be separated by the lower field and thus the units begin to retain their original size. The most important result is that, as the field passes through various degrees of cooling, as what is becoming a planet is cooling and crusting over, the units are able to increasingly stay together.
The resulting nuclei will not be as complex as the heaviest atom that forms in the absence of a field, but they will range from the single unit, which science labels hydrogen, on up the field of elements to the radioactive elements.
Before we discuss why radioactive elements are radioactive, we should note that this model tells us a lot about the core of the Earth. Once sufficient crust has formed to shield the heaviest atoms that can form, those atoms' surface rate of combustion slows. This means that the core of the Earth is comprised of the heaviest atoms that can form in the absence of a field, the surface of this core burning intensely but not with the rate that occurs on the surface of the sun. This core is surrounded by the crust, elements whose atoms have fewer units in their nuclei, the range of nonradioactive elements, through which the core's expanding sphere passes, reaching up to the surface, which contains radioactive elements.
So why are some elements radioactive? The answer is once again found in the field, which on Earth is a combination of the internally produced field, the combustion on the surface of the core, and the sun. The elements that exist on Earth exist in this combined field. However, there are boundary elements that are the heaviest elements that can exist in a particular field. Because the field is what causes elements to break down, the elements that exist in a particular field are those elements that can hold themselves together solidly in that field and those elements that aren’t stable in the field because the field is constantly attempting to break them down, field replace them in the terms of the next chapter.
Thus, on Earth we have heavy elements such as uranium that are at the boundary of the Earth’s field. Elements that have fewer units in their nuclei are stable, while elements with more units in their nuclei simply don’t exist (or perhaps do momentarily under laboratory conditions). This means that in all likelihood, uranium, which is a boundary element on Earth, would be stable in the much weaker field of Pluto, which is both cold and distant from the sun’s field. Perhaps the manmade californium is the radioactive element on Pluto, the boundary element, and uranium is stable.
On the other side of the scale, the scalding surface of Mercury would not even allow uranium to exist, and the boundary element, the radioactive element would be much lighter, perhaps something like tungsten. (Synthetic radioactive elements, isotopes, that don’t exist naturally, are not boundary elements by rather forced elements that are unstable in a given field.)
The atom here built or modeled on the basis of a single particle with the two opposing properties of at rest motion and affinity propensity fits all the requirements of the atom we need to construct reality and find in reality. It explains solid matter, and in fact is one of the three constructions the particle with opposing properties can form. It explains weight, and the basic feature of gravity, why atoms of different complexity fall at the same rate buy require different forces to move against gravity, the mechanics of which will be shown when we describe what gravity is. The atom accounts for decay and matter’s ability to produce light, both of which will become clear in the next chapter. Above all, it does away with the need for the made-up strong force and provides an explanation for what moves orbiting electrons.
What about magnetism?
The nucleus of an atom has an excess of affinity propensity that attracts electrons into orbit around the nuclei. However, there is one situation in which the nuclei have formed into solid matter while still having an excess of affinity propensities. This means that the affinity propensities cannot be satisfied by orbiting electrons, but can be satisfied by sharing electrons. The magnetic material attracts an external cloud of orbiting electrons. The electrons travel in one end of the magnet and pass by the nuclei of the atoms in the magnet, replacing the nuclei’s excess affinity propensities as it does so. It exists the opposite end of the magnet, travels in lines outside the magnet, and reenters at the opposite end once again.
Passing a conducting circuit through the orbiting electrons will cause the electrons to tip into the circuit, producing electricity. An element that isn’t naturally magnetized has the excess affinity propensities of the nuclei of its atoms satisfied by orbiting electrons. However, if it comes close to a magnet, it will lose some of those orbiting electrons to the flow from the magnet and itself become magnetized. In like manner, if an electric coil is wrapped around the metal, the electricity in the coil will do the same thing, magnetize what wouldn’t ordinarily be magnetic.
When the conglomerations of the heaviest atoms that formed in the absence of a field begin to ignite, some are small, the size of moons or planets, others are large, the size of stars. Regardless of size, however, they all have one thing in common: they are cooling. And they are all cooling at the same rate. This means that the larger the sphere of the heaviest element is, the longer it will take to cool.
As the smaller spheres start to cool, the rate of combustion on their surfaces slows. This means that the process that is occurring on the surface when it is combusting like the sun is today reverses itself. A point is reached where the electrons of the unit can no longer be separated by the lower field and thus the units begin to retain their original size. The most important result is that, as the field passes through various degrees of cooling, as what is becoming a planet is cooling and crusting over, the units are able to increasingly stay together.
The resulting nuclei will not be as complex as the heaviest atom that forms in the absence of a field, but they will range from the single unit, which science labels hydrogen, on up the field of elements to the radioactive elements.
Before we discuss why radioactive elements are radioactive, we should note that this model tells us a lot about the core of the Earth. Once sufficient crust has formed to shield the heaviest atoms that can form, those atoms' surface rate of combustion slows. This means that the core of the Earth is comprised of the heaviest atoms that can form in the absence of a field, the surface of this core burning intensely but not with the rate that occurs on the surface of the sun. This core is surrounded by the crust, elements whose atoms have fewer units in their nuclei, the range of nonradioactive elements, through which the core's expanding sphere passes, reaching up to the surface, which contains radioactive elements.
So why are some elements radioactive? The answer is once again found in the field, which on Earth is a combination of the internally produced field, the combustion on the surface of the core, and the sun. The elements that exist on Earth exist in this combined field. However, there are boundary elements that are the heaviest elements that can exist in a particular field. Because the field is what causes elements to break down, the elements that exist in a particular field are those elements that can hold themselves together solidly in that field and those elements that aren’t stable in the field because the field is constantly attempting to break them down, field replace them in the terms of the next chapter.
Thus, on Earth we have heavy elements such as uranium that are at the boundary of the Earth’s field. Elements that have fewer units in their nuclei are stable, while elements with more units in their nuclei simply don’t exist (or perhaps do momentarily under laboratory conditions). This means that in all likelihood, uranium, which is a boundary element on Earth, would be stable in the much weaker field of Pluto, which is both cold and distant from the sun’s field. Perhaps the manmade californium is the radioactive element on Pluto, the boundary element, and uranium is stable.
On the other side of the scale, the scalding surface of Mercury would not even allow uranium to exist, and the boundary element, the radioactive element would be much lighter, perhaps something like tungsten. (Synthetic radioactive elements, isotopes, that don’t exist naturally, are not boundary elements by rather forced elements that are unstable in a given field.)
The atom here built or modeled on the basis of a single particle with the two opposing properties of at rest motion and affinity propensity fits all the requirements of the atom we need to construct reality and find in reality. It explains solid matter, and in fact is one of the three constructions the particle with opposing properties can form. It explains weight, and the basic feature of gravity, why atoms of different complexity fall at the same rate buy require different forces to move against gravity, the mechanics of which will be shown when we describe what gravity is. The atom accounts for decay and matter’s ability to produce light, both of which will become clear in the next chapter. Above all, it does away with the need for the made-up strong force and provides an explanation for what moves orbiting electrons.
What about magnetism?
The nucleus of an atom has an excess of affinity propensity that attracts electrons into orbit around the nuclei. However, there is one situation in which the nuclei have formed into solid matter while still having an excess of affinity propensities. This means that the affinity propensities cannot be satisfied by orbiting electrons, but can be satisfied by sharing electrons. The magnetic material attracts an external cloud of orbiting electrons. The electrons travel in one end of the magnet and pass by the nuclei of the atoms in the magnet, replacing the nuclei’s excess affinity propensities as it does so. It exists the opposite end of the magnet, travels in lines outside the magnet, and reenters at the opposite end once again.
Passing a conducting circuit through the orbiting electrons will cause the electrons to tip into the circuit, producing electricity. An element that isn’t naturally magnetized has the excess affinity propensities of the nuclei of its atoms satisfied by orbiting electrons. However, if it comes close to a magnet, it will lose some of those orbiting electrons to the flow from the magnet and itself become magnetized. In like manner, if an electric coil is wrapped around the metal, the electricity in the coil will do the same thing, magnetize what wouldn’t ordinarily be magnetic.
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