FIELD OF ART
[0001] The present invention relates to a surge absorbing component for protecting semiconductor
circuit or a telephone line from a lightning surge and overvoltage or overcurrent,
which can avoid firing and overheat of the circuit substrate, even when overvoltage
or overcurrent is applied to the circuit.
BACKGROUND OF THE ART
[0002] A surge absorber is to protect an equipment such as a communication line, e.g. a
telephone line for telephone and telecopier, and a line for a cable television and
a cable radio and the like, as well as a device, e.g. semiconductor device, from a
lightning surge.
[0003] A protection function of the surge absorber is to protect a communication device
connecting communication lines when the communication line interconnects the source
line to load overcurrent or overvoltage on the line, which will heat the breaker fuse
wire so as to melt the wire, thereby opening the circuit to protect the equipment
from the overcurrent and overvoltage. In the conventional surge absorber having as
function to protect from overcurrent and overvoltage, a low melting point metal wire
is only surrounding the surge absorber within an inorganic material housing. Connecting
terminals are provided at both of the ends of the inorganic material housing of the
surge absorber.
[0004] Further, there have been published Japanese Patent Publication No. 63-205026/1988,
which is considered to be the closest prior art and Japanese Patent Application No.
61-152703 as measures to resolve the case where the short-circuit with source occurs,
which disclose a method of preventing overheat and fire of a surge absorbing element
by contacting a low-melting point metal wire with the surface of a microgap surge
absorbing element so that the heat generated by overvoltage or overcurrent charged
in the surge absorbing element will melt easily and rapidly the low melting point
wire, thereby, making to open the circuit. The structure of mounting the low melting
point metal wire on the surface of the surge absorbing element is housed within a
case of inorganic material.
[0005] In this structure, a temperature fuse or low melting point metal wire is mounted
in contact with the surface of the surge absorbing element and can protect the surge
absorbing element and the equipment to be connected. The heat generated on the surface
thereof by the overheat of the surge absorbing element will melt the fuse or low melting
point metal wire, making to open the circuit. Therefore, the conventional structure
will require complete melting down of the temperature fuse or the low melting point
metal wire so as to make open the circuit. It takes relatively longer time to attain
complete melting down of the fuse or the low melting point metal wire.
[0006] Such component of the conventional structure has three or four external terminals,
and one or two terminals among these ones are in form of wire, and then, the connecting
position is unstable, and not easy to be assembled. Further, a cover glass tube which
is disclosed in Japanese Patent Publication No. 63-205026/1988, will be naked and
directly in contact with a substrate when assembled in the circuit. Therefore, when
the overcurrent or overvoltage is continuously applied to the component, the surge
absorbing element located within a hollow of a cover glass is heated and then the
low melting point metal wire is broken by the heat generated in the surge absorbing
element. The cover glass tube is heated through such phenomenon, so that the substrate
as assembled within a hollow of cover glass is affected by such heat( exothermal and
generating smoke) and in some cases would be fired.
DISCLOSURE OF INVENTION
[0007] With the foregoing considerations in mind, the present invention contemplates the
provision of an improved surge absorbing component with shorter time of making open
the circuit. This is achieved with a surge absorbing component according to claim
1. For the contemplated component, a metal with high stiffness modulus which has been
elastically deformed is used to be mounted on the electrodes or the leads of the surge
absorbing element, by using low melting point metal wire, and then, the heat generated
by application of continuous overvoltage or overcurrent will melt the low melting
point metal connecting the stiff metal wire and the lead of the element, and the metal
wire with high stiffness which has been deformed will be returned to original shape,
and thereby leaving rapidly the connection point (the lead of the element). Therefore,
the protective surge absorbing component with rapid response can be attained, and
then the safety of the surge absorbing component can be improved. That is, the structure
of the present invention can enable to make open the circuit as soon as possible after
the low melting point metal is melt, because the metal wire with high stiffness which
has been elastically deformed and fixed on the terminal of the element will be returned
mechanically and rapidly into its original shape, by its elasticity, at the time when
the low melting point metal is melt by the heat generated by the surge absorbing element
when overvoltage or overcurrent is applied to.
[0008] "A surge absorbing component" hereinafter means "an equipment to avoid application
of overvoltage and overcurrent by providing a gap or microgap on a portion of conductive
thin film, such that discharge will occur through the gap or microgap, when overvoltage
higher than optional level is applied on the gap or microgap, generating a branch
flow for the overvoltage or overcurrent", and in ordinal structure, the conductive
film having the gap or the microgap is enclosed and sealed in a gas-charged tube.
Therefore, it can be called a gap or microgap surge absorbing element. Hereinafter,
"a surge absorbing component having protection function" means "a network or system
including a surge absorbing element to protect a communication device connecting communication
lines when the communication line interconnects the source line, with the combination
with fuse and the other elements and component, so as to prevent overheat and fire
due to the overcurrent or overvoltage on the line.
[0009] The resin base for the surge absorbing component can be made from resin such as epoxy
resin and polybutadien type resin. Three terminal pins are mounted on the surface
of the resin base. The terminal pins have the diameter of 0.5 to 1.0 mm and the length
of about 10 mm. Further, the resin base has a structure on which an inorganic housing
or cover glass tube can be fixed with its margin. Within the housing are provided
a gap or microgap surge absorbing element, a metal wire with high stiffness which
has been elastically deformed, and connected and fixed between the terminal of the
element and the lead pin, the lead wires of the element are provided in enough space.
The lead pins will fix the element and the deformed metal wire with high stiffness
is fixed on one of the terminals or electrodes of the element, through low melting
point metal.
[0010] The housing is fixed with resin, such that the heat from the gap or microgap surge
absorbing device is prevented from conducting to the outside of the component. The
metal wire with high stiffness which has been elastically deformed and each of the
lead wires are fixed by binding or spot welding on each of the lead pins mounted on
the resin base.
[0011] Therefore, the influence of the heat can be restrained within the space of the surge
absorbing component of the function to protect from the overvoltage and overcurrent,
and does not affect the outside of the component.
[0012] The efficiency of assembling the inventive surge absorbing component can be improved
by using a predetermined number of the lead pins which are previously mounted or fixed
on the resin base so as to assemble or fix the surge absorbing element within the
component.
SIMPLE DESCRIPTION OF DRAWINGS
[0013] FIG. 1 shows schematically a sectional view of a surge absorbing component according
to the present invention.
[0014] FIG. 2 shows schematically a circuit for a surge absorbing component according to
the present invention.
BEST MODE FOR CARRYING OUT THE INVENTION
[0015] FIG. 1 shows schematically a sectional view of a surge absorbing component having
protection function according to the present invention. There are provided a surge
absorbing element 9, arranged in hollowed resin case 8 and on a resin base 10 to which
the surge absorbing element 9 is mounted, and three lead pins 11A, 11B and 11C mounted
on the resin base 10, and respective lead wires 12A and 12B each connected to one
of the terminals of the surge absorbing element 9, a phosphor bronze wire 14 which
has been elastically deformed mounted on one of the terminals of the surge absorbing
element 9 through solder 15.
[0016] The inventive surge absorbing component having protection function utilizes this
feature of the metal wire with high stiffness modulus which has been elastically deformed,
and which mounts the terminal or lead wire of the surge absorbing element. When the
surge absorbing element is heated by application of overvoltage or overcurrent, the
metal wire with high stiffness can be returned immediately after the low melting metal
is melt, and thereby enabling rapidly making open the circuit, and at the same time
, the elastic deformation of the metal wire with high stiffness will function to enforce
to leave or to open the circuit by mechanical force.
[0017] The surge absorbing component having protection function can be used in a connector
with a telephone line, a telecopier machine, and a telephone exchanging machine, in
order to protect from a surge and overvoltage and overcurrent.
[0018] The present invention is further illustrated by the following example, but should
not be interpreted as a limitation of the invention.
EXAMPLE
[0019] FIG. 1 shows in sectional view a structure of an embodiment of the surge absorbing
component having protection function of the present invention.
[0020] Terminal pins 11A, 11B and 11C are mounted on a resin base 10, and then, a microgap
surge absorbing element 9 (direct discharge initiating voltage = 300 V) is mounted
by one of lead wire 12A which has been bent as shown in the drawings, and the other
one of lead wire 12B, respective lead wires 12A and 12B are mounted on each of lead
pins 11A and 11B through each of binders 13A and 13B so as to connect electrically,
and fixed as shown in FIG. 1.
[0021] Then, a phosphorus bronze wire 14 is used as a metal wire with high stiffness, to
connect the lead pin 11C by means of a binder 13C, and the other end of the phosphorus
bronze wire 14 is bent by force as shown in FIG. 1, and fixed on the lead wire 12A
of a microgap surge absorbing element 9, i.e. fixed on the terminal of the surge absorbing
element by means of solder 15 as a low melting point metal, thereby forming electrical
connection, and fixed. Further, the whole structure is surrounded by a resin case
8. Then, the surge absorbing component having protection function can be obtained
as shown FIG. 1, with three terminals.
[0022] The inventive surge absorbing component having protection function is assembled and
is connected as shown in the circuit diagram of FIG. 2, a microgap surge absorbing
element 9 and a metal wire with high stiffness 14 are assembled, and the telephone
line 3 is connected so as to protect an equipment 2 from surge. Further, each of terminals
11A, 11B and 11C are positioned as shown in FIG. 2.
[0023] The above assembled surge absorbing component having protection function was tested
bv charging overvoltage, and the reference product was tested similarly. The result
is described as below table 1.
[0024] Herein, the reference product has the above-mentioned conventional structure, i.e.
a temperature fuse is mounted around the surface of the gap or microgap surge absorbing
element, and will be melt down when heated, so that the protection function is provided.
Table 1
| Applied Voltage |
AC 600V |
AC 600V |
AC 600V |
AC 600V |
AC 600V |
AC 600V |
| Applied Current |
40 A |
7 A |
2.2 A |
1 A |
0.5 A |
0.25 A |
| Result |
| Time of opening the circuit |
| Inventive |
15-25 |
0.2-0.4 |
1-2 |
2-4 |
3-5 |
3-10 |
| Product |
micro-seconds |
| Reference |
15-25 |
0.2-0.4 |
3-6 |
6-10 |
10-30 |
20-50 |
| |
micro-seconds |
[0025] It is apparent from Table 1 that the inventive product evidences significant improvement
of the performance in range of lower current applied.
INDUSTRIAL UTILIZATION
[0026] The inventive surge absorbing component for protecting a communication line from
overvoltage or overcurrent will provide relatively shorter time for making open the
circuit in comparison with the reference product, by using a metal wire with high
stiffness which has been elastically deformed, and therefore, enabling to discontinue
rapidly the loading of overvoltage or overcurrent.
[0027] The metal wire with high stiffness which has been elastically deformed can be returned
mechanically immediately after the overvoltage or overcurrent is applied, and then,
the circuit for the surge absorbing element is rapidly made to be open so as to protect
the equipment.
[0028] Therefore, the inventive surge absorbing component with protection function can protect
the equipment such as a telephone, telecopier, and telephone exchanger being connected
to the line, from surge and overvoltage and overcurrent, then improving the operation
performance of the surge absorbing component having protection function.
1. A surge absorbing component with protection function for a semiconductor circuit or
a communication line, for example a telephone line to protect from overvoltage and
overcurrent, comprising: a gap or microgap surge absorbing element (9), comprising
a portion of conductive thin film on which is defined a discharge gap or microgap
arranged so that discharge will occur at a given overvoltage, said portion of film
being enclosed and sealed in a gas-charged tube, an external terminal (11C) and a
metal wire (14) connected with one end to a terminal of or a lead of the element (9)
and with the other end to the external terminal (11C), characterised in that said
metal wire (14) has a high stiffness modulus and that it is connected with said one
end to a terminal or lead of the element (9) through a low melting point metal (15),
the member (14) being in a mechanically and elastically deformed state, biased by
virtue of its resilience away from the connection with the terminal of or lead of
the element (9) whereby, in use, when an overvoltage or overcurrent is applied to
the element (9) causing the element (9) to heat up, the low melting point metal (15)
is melted and the member (14) is lifted from the connection with the element (9) thus
opening a circuit in which the member (14) is connected in series with equipment to
be protected.
2. The surge absorbing component according to claim 1, wherein said metal with high stiffness
modulus is phosphor bronze.
3. The surge absorbing component according to claim 1, wherein said lower melting point
metal, is made of metal having the melting point below 400°C, and particularly soldering
metal.
1. Ableiterelement mit Schutzfunktion für einen Halbleiterschaltkreis oder eine Übertragungsleitung,
beispielsweise eine Telephonleitung, zum Schutz gegen Überspannung und Überstrom,
umfassend: ein Spalt- oder Mikrospalt-Ableiterelement (9), das einen Abschnitt einer
leitfähigen Dünnschicht aufweist, auf der ein Entladungsspalt oder - Mikrospalt so
angeordnet ist, daß eine Entladung bei einer vorgegebenen Überspannung stattfindet,
wobei der Abschnitt der Schicht in einer abgedichteten, mit Gas gefüllten Röhre eingeschlossen
ist, einen externen Anschluß (11C) und einen Metalldraht (14), der mit einem Ende
an einem Anschluß des Elements (9) oder einem Anschlußdraht desselben und mit dem
anderen Ende mit dem externen Anschluß (11c) verbunden ist, dadurch gekennzeichnet, daß der Metalldraht (14) einen hohen Steifigkeitsmodul aufweist, und daß er mit dem einen
Ende eines Anschlusses des Elements (9) oder einem Anschlußdraht desselben über ein
Metall (15) mit niedrigem Schmelzpunkt verbunden ist, daß das Teil (14) in einem mechanisch
und elastisch deformierten Zustand ist, wobei es aufgrund seiner Federkraft von der
Verbindung mit dem Anschluß des Elements (9) oder des Anschlußdrahtes desselben vorgespannt
wird, wodurch im Einsatz, wenn eine Überspannung oder ein Überstrom an das Element
(9) angelegt wird, die bewirkt, daß das Element (90) sich aufheizt, das Metall (15)
mit niedrigem Schmelzpunkt schmilzt und das Teil (14) von der Verbindung mit dem Element
(9) abgehoben wird, sodaß ein Schaltkreis geöffnet wird, in dein das Teil (14) in
Reihe mit dem zu schützenden Gerät angeschlossen ist.
2. Ableiterelement nach Anspruch 1, worin das Metall mit einem hohen Steifigkeitsmodul
Phosphorbronze ist.
3. Ableiterelement nach Anspruch 1, worin das Metall mit niedrigem Schmelzpunkt aus einem
Metall hergestellt ist, das einen Schmelzpunkt unterhalb 400°C hat, insbesondere aus
Lötmetall.
1. Composant coupe-circuit avec fonction de protection pour un circuit à semi-conducteur
ou une ligne de communication, par exemple une ligne téléphonique, pour les protéger
à l'égard d'une surtension et d'un courant de surcharge, comportant: un élément coupe-circuit
(9) à écartement ou micro-écartement des contacts, comportant une portion d'un fin
film conducteur sur lequel est défini un écartement ou un micro-écartement de décharge
disposé de façon que la décharge se produise pour une surtension donnée, ladite portion
de film étant enclose et scellée dans un tube rempli de gaz, une borne extérieure
(11C) et un fil métallique (4) relié, par sa première extrémité, à une borne ou à
un conducteur de l'élément (9) et, par son autre extrémité, à la borne extérieure
(11C), caractérisé par le fait que ledit fil métallique (14) a un module de rigidité
élevé et qu'il est connecté, par ladite première extrémité, à une borne ou à un conducteur
de l'élément (9) par l'intermédiaire d'un métal (15) à bas point de fusion, l'élément
(14) se trouvant dans un état mécaniquement et élastiquement déformé, contraint, par
sa résilience, à s'écarter de la connexion avec la borne ou le conducteur de l'élément
(9), ce par quoi, en service, si une surtension ou un courant de surcharge est appliqué
à l'élément (9), faisant que l'élément (9) s'échauffe, le métal (15) à bas point de
fusion fond et l'élément (14) est libéré de la connexion avec l'élément (9), ouvrant
ainsi un circuit dans lequel l'élément (14) est connecté en série avec l'équipement
à protéger.
2. Composant coupe-circuit selon la revendication 1, dans lequel ledit métal à module
de rigidité élevé est le bronze au phosphore.
3. Composant coupe-circuit selon la revendication 1, dans lequel ledit métal à bas point
de fusion est fait d'un métal dont le point de fusion est inférieur à 400°C, et en
particulier d'un métal pour soudage.