[0001] The present invention proposes a method to produce class 2 resistors with PTC, in
which:
- a double layer of insulating material, particularly kapton™ or teflon™, is arranged
inside a tube;
- a heating element constituted of one or more PTC elements clamped between a pair of
diffusers is placed inside the tube, centring the assembly using centring rings;
- the space around the heating element is filled with pulverized insulating material,
in particular magnesium oxide;
- said insulating material is compacted;
and in which the dimensions of the magnesium oxide grains are below 200 micrometers,
and the average dimension of the grains is preferably around 40 micrometers.
[0002] In this way resistors are obtained in which it is no longer necessary to provide
control and/or safety devices such as thermostats and/or thermal fuses as the necessary
insulation is guaranteed in any case.
[0003] In particular the use of magnesium oxide with the indicated grain size makes it possible
to compact the insulating material inside the tube containing the PTC elements without
damaging the external coating in kapton™.
[0004] The invention also relates to the resistors obtained with said method as defined
in claim 1.
[0005] Generally, to produce class 2 resistors (resistors which must have double insulation)
insulating materials, such as magnesium oxide in grains, are used combined with a
second material, generally constituted by a double turn of kapton™ or teflon™.
[0006] A first type of resistor in this category comprises a winding of resistive wire fitted
inside a tubular container generally made of metal filled with pulverized magnesium
oxide.
[0007] This tube is then fitted inside a second tube with a larger diameter and the space
between them is also filled with magnesium oxide which is subsequently pressed and
compacted.
[0008] This type of resistor has a diameter which for some applications is considered excessive.
[0009] In a second type of resistor the winding of resistive wire is again placed inside
a tube which is filled with pulverized magnesium oxide and this tube is then coated
with a double layer of kapton™ or teflon™ before being fitted inside a second tube,
which constitutes the outer casing.
[0010] This second type of construction makes it possible to obtain resistors with smaller
diameters.
[0011] Class 2 resistors in which the heating element is constituted of one or more PTC
elements have recently been proposed.
[0012] These elements have the considerable advantage of not requiring control and/or safety
devices such as thermostats and/or thermal fuses, even if they still present all the
problems mentioned above, in relation to the need to provide double insulation.
[0013] A first solution to this problem is described in the German patent N. 19737241, which
relates to a resistor comprising one or more PTC resistors clamped between a pair
of heat diffusing elements, with a first layer of insulating material composed of
a plurality of rings in material based on magnesium oxide and silicone rubber, which
are fitted on the pack composed of the PTCs and relative diffusers and a second insulating
layer composed of a double sheet of kapton™ wound around these rings. US-A-4-087 777
describes a composition in which the magnesium oxide have a grain size under 5 micrometers.
[0014] This is all fitted inside a common container composed of a metal tube and then compacted.
[0015] This solution has various advantages compared with prior art, as temperature control
devices are no longer necessary and moreover, its dimensions are also smaller than
prior art resistors.
[0016] However there is still the problem of a somewhat laborious production process, as
the insulating rings in a material based on silicone rubber and magnesium oxide must
be produced in advance, making it possible to further improve this solution.
[0017] In fact, it would be useful to produce a class 2 resistor with PTC heating elements
using, as insulating material, common magnesium oxide and kapton™ or teflon™.
[0018] Experiments have been conducted in this sense, although these provided somewhat disappointing
results as during the phase to compact the magnesium oxide, which is generally performed
by hammering, the grains perforated the layer of kapton™, thus invalidating the insulating
properties of this material.
[0019] To find a solution to this problem the applicant conducted numerous experiments,
varying all the parameters which may influence the final result and, in particular,
varying the magnesium oxide grain size.
[0020] In fact, all the resistors produced to date use magnesium oxide in which the average
dimension of the grains is around 180 micrometers and the fraction with dimensions
below 45 microns is equivalent to around 6% of the total.
[0021] The quantity of fine component is intentionally limited, as this makes filling the
element more difficult, so that the general and common tendency of all producers is
to use magnesium oxide with grains of a certain dimension.
[0022] As an example, tables A and B below provide two examples of typical grain sizes in
micrometers used for this purpose.
| TABLE A |
TABLE B |
| > 500 ........ 0.0% |
>500 ........ 0,0% |
| 425 - 500 ....... 0.0% |
>425 ......... <0.1% |
| 250-425 ...... 31.4% |
425-355 ...... 4% |
| 180-250 ...... 18.3% |
355-250 ...... 24% |
| 100 - 180 .... 26.2% |
250-180 ...... 20% |
| 75-100 ........ 8.9% |
180-106 ...... 24% |
| 45-75 ......... 9.0% |
106-75 ....... 13% |
| <-45 .......... 6.3% |
75-450 ....... 10% |
| |
<45 .......... 5% |
[0023] As previously mentioned, the applicant hypothesized that by varying the grain size
appropriately it might be possible to obtain satisfactory results without running
into the problems that previously caused this course of action to be abandoned.
[0024] Experiments conducted have confirmed this hypothesis to be correct, and have led
to the development of the following method, which shall now be illustrated with reference
to the attached figures in which:
- figure 1 shows the section along the axis of a resistor according to the invention;
- figure 2 is the section of the resistor in figure 1, according to a direction orthogonal
to the previous one.
[0025] In accordance with the invention, a class 2 resistor with heating elements constituted
by PTCs is produced as follows.
[0026] A layer of insulating material 2 composed of a few turns of kapton or teflon, are
wound in a winding and fitted into a tube 1, which forms the external casing of the
resistor, in order to obtain, on the internal surface of the tube, at least two complete
turns of insulating material.
[0027] One or more centring elements 3 composed for example of rings made of teflon™, silicon
rubber or other material capable of withstanding the temperatures developed by the
resistor are then fitted into the tube and subsequently the heating element, composed
of one or more PTC elements 4 clamped between a pair of diffusers 5, for example in
aluminium, is fitted into the tube.
[0028] These diffusers will preferably have the form, in section, of a circular sector in
which the bending radius corresponds to the radius of the internal surface of the
centring elements.
[0029] Preferably, the ends of the diffusers will be shaped to define a pair of projecting
longitudinal edges, indicated with no. 7 in figure 2, which allow more secure assembly
of the PTC plates, preventing them from escaping either entirely or in part from the
diffusers and thus guaranteeing optimum electric contact.
[0030] These centring elements will have an annular internal surface while the external
surface will preferably be polygonal, for example hexagonal, to facilitate the passage
of the magnesium oxide dust which is subsequently introduced to provide the primary
insulating layer indicated with 6 in the figures.
[0031] Once the heating element has been fitted into the tube, the finely triturated magnesium
oxide is then introduced to fill all the available spaces around the heating element
to provide the primary insulation.
[0032] In conformity with one characteristic of the invention, this magnesium oxide has
an average grain dimension of around 40 micrometers, and has no grains with dimensions
above 200 micrometers and preferably no grains with dimensions above 192 micrometers.
[0034] Once the inside of the resistor has been filled with magnesium oxide this is compacted,
for example by hammering after which the tube can be closed and the resistor is ready.
[0035] Using magnesium oxide with the grain size indicated it was observed that the subsequent
operations to compact and press the grains do not cause any damage to the external
coating in kapton™ or teflon™, which thus maintains its integrity.
[0036] In this manner, it is possible to obtain a class 2 resistor with PTCs, with compact
dimensions and which can be produced at a relatively low cost, as it may be produced
using inexpensive materials, already known to and used in the specific sector for
some time.
[0037] Those skilled in the art may then devise different modifications and variants, which
however must all be considered as coming within the scope of the present invention.
1. Method for producing class 2 resistors with PTCs heating elements, said method including
the following phases:
- fitting inside a tube (1) constituting the container of the resistor at least two
layers (2) of insulating material, said layers (2) being positioned proximate to the
internal surface of said tube (1);
- fitting a heating element composed of at least one PTC element (4) inside said tube
(1), after fitting at least one centring element (3) inside the tube (1), said at
least one PTC element (4) being clamped between a pair of diffusers (5);
- filling the spaces between said at least one PTC element (4) and said layers (2)
of insulating material with pulverised magnesium oxide, in which most of the magnesium
oxide grains have dimensions between 12 micrometers and 48 micrometers;
- compacting the magnesium oxide.
2. Method as claimed in claim 1, characterised in that said magnesium oxide grains have dimensions below 192 micrometers.
3. Method as claimed in claim 1, characterised in that a 28.7% of said magnesium oxide grains have dimensions between 48 micrometers and
96 micrometers, a 8.1% of said magnesium oxide grains have dimensions below 12 micrometers
and a 7.4% of said magnesium oxide grains have dimensions between 92 micrometers and
96 micrometers.
4. Class 2 resistors comprising a heating element composed of at least one PTC element
(4) clamped between a pair of diffusers (5), a tube (1) containing said heating element,
a first insulating layer (2) in kapton which is applied proximate to the internal
walls of said tube (1) and a second insulating layer (6) in magnesium oxide which
is provided between said heating element and said first insulating layer (2), characterised in that most of the magnesium oxide grains have dimensions between 12 micrometers and 48
micrometers.
5. Class 2 resistors as claimed in claim 4, characterised in that said diffusers (5) have projecting longitudinal ends (7).
6. Class 2 resistors as claimed in claim 4, characterised in that a 28.7% of said magnesium oxide grains have dimensions between 48 micrometers and
96 micrometers, a 8.1% of said magnesium oxide grains have dimensions below 12 micrometers
and a 7.4% of said magnesium oxide grains have dimensions between 92 micrometers and
96 micrometers.
1. Verfahren zum Herstellen von Klasse 2-Widerständen mit PTC-Heizelementen, wobei das
Verfahren die folgenden Phasen umfasst:
- Einpassen von wenigstens zwei Lagen (2) von Isolationsmaterial im Inneren eines
Rohres (1), das dem Behälter des Widerstands bildet, wobei die Lagen (2) nahe der
inneren Oberfläche des Rohres (1) positioniert sind;
- Einpassen eines Heizelementes welches aus wenigstens einem PTC-Element (4) gebildet
ist, im Inneren des Rohres (1), nachdem wenigstens ein Zentrierelement (3) im Inneren
des Rohres (1) eingepasst ist, wobei das wenigstens eine PTC-Element (4) zwischen
einem Paar von Diffusoren (5) eingefasst ist;
- Füllen der Räume zwischen dem wenigstens einen PTC-Element (4) und den Lagen (2)
von Isolationsmaterial mit pulversiertem Magnesiumoxid, in dem die meisten der Magnesiumoxidkörner
Abmessungen zwischen 12 Mikrometer und 48 Mikrometer haben;
- Verdichten des Magnesiumoxids.
2. Verfahren beansprucht wie in Anspruch 1, dadurch gekennzeichnet, dass die Magnesiumoxidoxidkörner Abmessungen unter 192 Mikrometer haben.
3. Verfahren beansprucht wie in Anspruch 1, dadurch gekennzeichnet, dass 28,7% der Magnesiumoxidkörner Abmessungen zwischen 48 Mikrometer und 96 Mikrometer
haben, 8,1% der Magnesiumoxidoxidkörner Abmessungen unter 12 Mikrometer und 7,4% der
Magnesiumoxidoxidkörner Abmessungen zwischen 92 Mikrometer und 96 Mikrometer haben.
4. Klasse 2-Widerstände enthaltend ein Heizelement bestehend aus wenigstens einem PTC-Element
(4), das zwischen einem Paar von Diffusoren (5) eingefasst ist, ein Rohr (1) enthaltend
das Heizelement, eine erste Isolierschicht (2) in Kapton, die nahe der inneren Wände
des Rohres (1) angebracht ist und eine zweite Isolierschicht (6) in Magnesiumoxidoxid,
die zwischen dem Heizelement und der ersten Isolierschicht (2) vorgesehen ist, dadurch gekennzeichnet, dass die meisten der Magnesiumoxidoxidkörner Abmessungen zwischen 12 Mikrometer und 48
Mikrometer haben.
5. Klasse 2-Widerstände beansprucht wie in Anspruch 4, dadurch gekennzeichnet, dass die Diffusoren (5) vorstehende longitudinale Enden (7) haben.
6. Klasse 2-Widerstände beansprucht wie in Anspruch 4, dadurch gekennzeichnet, dass 28,7% der Magnesiumoxidoxidkörner Abmessungen zwischen 48 Mikrometer und 96 Mikrometer
haben, 8,1% der Magnesiumoxidoxidkörner Abmessungen unter 12 Mikrometer und 7,4% der
Magnesiumoxidoxidkörner Abmessungen zwischen 92 Mikrometer und 96 Mikrometer haben.
1. Procédé pour produire des résistances de classe 2 avec des éléments chauffants PTC,
ledit procédé comportant les phases suivantes :
- adapter à l'intérieur d'un tube (1) constituant le conteneur de la résistance au
moins deux couches (2) de matériau isolant, lesdites couches (2) étant placées à proximité
de la surface interne dudit tube (1) ;
- adapter un élément chauffant composé d'au moins un élément PTC (4) à l'intérieur
dudit tube (1), après avoir adapté au moins un élément de centrage (3) à l'intérieur
du tube (1), ledit (lesdits) élément (s) PTC (4) étant bloqué(s) entre une paire de
diffuseurs (5) ;
- remplir les espaces compris entre ledit (lesdits) élément(s) PTC (4) et lesdites
couches (2) de matériau isolant avec de l'oxyde magnésium pulvérisé, dans lequel la
plus grande partie des grains d'oxyde de magnésium présentent des dimensions comprises
entre 12 microns et 48 microns ;
- compacter l'oxyde de magnésium.
2. Procédé selon la revendication 1, caractérisé en ce que lesdits grains d'oxyde de magnésium présentent des dimensions inférieures à 192 microns.
3. Procédé selon la revendication 1, caractérisé en ce que 28,7% desdits grains d'oxyde de magnésium présentent des dimensions comprises entre
48 microns et 96 microns, 8,1 % desdits grains d'oxyde de magnésium présentent des
dimensions inférieures à 12 microns et 7,4% desdits grains d'oxyde de magnésium présentent
des dimensions comprises entre 92 microns et 96 microns.
4. Résistances de classe 2 comportant un élément chauffant composé d'au moins un élément
PTC (4) bloqué entre une paire de diffuseurs (5), un tube (1) contenant ledit élément
chauffant, une première couche isolante (2) en kapton qui est appliquée au voisinage
des parois internes dudit tube (1) et une seconde couche isolante (6) en oxyde de
magnésium qui est fournie entre ledit élément chauffant et ladite première couche
isolante (2), caractérisées en ce que la plus grande partie des grains d'oxyde de magnésium présentent des dimensions comprises
entre 12 mirons et 48 microns.
5. Résistances de classe 2 selon la revendication 4, caractérisées en ce que lesdits diffuseurs (5) possèdent des extrémités longitudinales en saillie (7).
6. Résistances de classe 2 selon la revendication 4, caractérisées en ce que 28,7 % desdits grains d'oxyde de magnésium présentent des dimensions comprises entre
48 microns et 96 microns, 8,1 % desdits grains d'oxyde de magnésium présentent des
dimensions inférieures à 12 microns et 7,4 % desdits grains d'oxyde de magnésium présentent
des dimensions comprises entre 92 microns et 96 microns.