a) & 3(b) are schematic sectional and perspective views, respectively, of a metallic rod used as a trigger electrode for supplying a high voltage to a flash discharge lamp in accordance with the invention;
a) & 5(b) are schematic sectional and perspective views, respectively, of another embodiment of the metallic rod used as a trigger electrode for supplying a high voltage to a flash discharge lamp in accordance with the invention;
a) & 6(b) each show a schematic sectional view of additional embodiments of the metallic rod used as a trigger electrode for supplying a high voltage to a flash discharge lamp in accordance with the invention;
The overall arrangement of the flash discharge lamp 10 in accordance with the invention is shown in
The lamp 10 comprises an arc tube 2, a trigger electrode 3 and a sealed tubular body 4. The arc tube 2 is formed, for example, of silica glass and is tubular. Within the arc tube 2, there is a pair of opposed electrodes 1 (1a, 1b). The trigger electrode 3 extends in the lengthwise direction of the arc tube 2 on the outside of the arc tube 2. The trigger electrode 3 is arranged such that it is jacketed by the sealed tubular body 4.
The arc tube 2 is, for example, filled with xenon gas. Its two ends are sealed. A discharge space is formed within the arc tube 2. The electrodes 1 (1a, 1b), in the case of operation using an alternating current, as is shown in the drawings, have the same shape and the same size. However, in the case of operation using a direct current, the two electrodes have different shapes and dimensions, since one of the electrodes is the cathode and the other electrode is the anode. Sintered electrodes are used as the electrodes; their main component is, for example, tungsten. The ends of the electrodes (1a, 1b) to which a feed device (not shown) is connected project to the outside through the arc tube 2.
Numerical values of the flash discharge lamp are described below using one example.
The inside diameter of the arc tube 2 is selected to be in the range from 8 mm to 15 mm and is, for example, 10 mm. The length of the arc tube 2 is, for example, 300 mm.
The amount of xenon gas added as the main emission component is selected to be in the range from 200 torr to 1500 torr and is, for example, 500 torr. The main emission component is limited not only to xenon gas, but also argon or krypton gas can be used instead. Furthermore, in addition to xenon gas, substances such as mercury and the like can be added.
In the electrode 1, the outside diameter is chosen to be in the range from 4 mm to 10 mm, and is, for example, 5 mm. Its length is chosen to be in the range from 5 mm to 9 mm and is, for example, 7 mm. The distance between the electrodes is selected to be in the range from 160 mm to 500 mm and is, for example, 280 mm. Furthermore, there are also cases in which barium oxide (BaO), calcium oxide (CaO), strontium oxide (SrO), aluminum oxide (Al2O3), molybdenum or the like is added as an emitter.
The trigger electrode 3 is made of a metallic bar, for example, of tungsten with an outside diameter of 1.5 mm and a length of 500 mm. Besides tungsten, metals such as nickel, aluminum, platinum, inconel (nickel-chromium-iron alloy), molybdenum or the like can be used as the trigger electrode 3.
In the trigger electrode 3, as is shown in
This recessed part 30 is formed, for example, by a cutting device. The numerical values are shown below as an example.
The depth is at least 0.2 mm, specifically, 0.3 mm; and
the length is at least 1.5 mm, specifically, 4 mm.
On the surface of the recessed part 30, a coating layer 3a of metal with a high melting point is formed which must be formed at least on the outer surface of the recessed part 30. However, it can also cover the outer surface of the recessed part 30 and also extend into the area beyond its outer edges as represented in
The trigger electrode 3 is located within the cylindrical sealed tubular body 4 with one end closed and the other end sealed. The sealed tubular body 4 made, for example, of silica glass and is formed, for example, in the shape of a cylinder with an outside diameter of 5 mm, an inside diameter of 2 mm and a length of 600 mm.
One end 31 of the trigger electrode 31 is connected to a molybdenum metal foil 33, while a molybdenum terminal 34 is connected to the other end of the metal foil 33 such that it projects from the sealed tubular body 4. A hermetically sealed arrangement is formed about the metal foil 33. In the region surrounding the metal foil 33, the hermetically sealed arrangement is formed by melting of the sealed tubular body 4.
Specifically, the sealed tubular body 4 is shifted into the molten state by, for example, using a burner to heat the tubular body in the region surrounding the metal foil 33 which is to be sealed. The molten material of which the sealed tubular body 4 is formed, for example, silica glass, penetrates into the recessed part 30. Afterwards, the sealed tubular body 4 continues to be heated at a high temperature in the region of the metal foil, by which the metal foil 33 is clamped as a hermetically sealed arrangement is formed.
In this hermetically sealed arrangement, the trigger electrode 3 is prevented from being attached to the silica glass and crack formation in the sealed tubular body 4 can be prevented. The reason for this is the following:
On the surface of the recessed part 30, the coating layer 3a of a metal with a high melting point is formed. Therefore, an oxide with a high affinity to silica glass cannot be produced on the surface of the trigger electrode 3.
The inside of the sealed tubular body 4 is filled with an inert gas or is subjected to a vacuum atmosphere. Therefore, oxidation of the trigger electrode can be prevented. The sealed tubular body 4 and the arc tube 2 are attached to one another by means of an attachment component 5 of, for example, nickel, which is not shown in
However, since one end 31 of the trigger electrode 3 is attached to the sealed tubular body 4 and the other end 32 within the sealed tubular body 4 is a free end, there is an arrangement in which, even if the trigger electrode 3 is heated and expanded when receiving radiant light from the lamp, the amount of this expansion can be absorbed by the gap between the other end 32 and the inner wall of the sealed tubular body 4.
Silica glass as the material of the sealed tubular body 4 penetrates into the recessed part 30 of the trigger electrode 3 and solidifies. In this connection, the side of the trigger electrode 3 which lies within the sealed tubular body 4 is called the main part L1 and the sealed side is called the base part L2.
In this connection, if the trigger electrode 3 is irradiated with radiant light according to the emission of the lamp 10, the main part L1 of the trigger electrode 3 expands and contracts. However, the expansion-contraction stress only influences the silica glass which has flowed into the recessed part 30 and not onto the base part L2 of the trigger electrode 3.
Since the recessed part 30 is formed behind the tip position of the electrode 1, the base part L2 of the trigger electrode 3 is not irradiated with the radiant light of the lamp, or even upon irradiation, the action of the light is low. Therefore, there is hardly any expansion and contraction in the base part L2.
As a result, even upon irradiation of the trigger electrode 3 with radiant light in the course of emission of the flash discharge lamp, the region A in which the metal foil 33 is welded to the trigger electrode 3 is not exposed to stress. Thus, the disadvantage of tearing of the metal foil 33 is eliminated.
Even if shock waves form in the course of emission of the flash discharge lamp in the space in the vicinity of the lamp, and the trigger electrode 3 vibrates in the sealed tubular body 4, this vibration acts only on the main part L1 and not on the base part L2. As a result, the metal foil 33 is not exposed to vibration even if the trigger electrode 3 vibrates. Thus, the disadvantage of tearing of the metal foil 33 is eliminated.
As was described above, in the flash discharge lamp in accordance with the invention, the region A in which the trigger electrode 3 is welded to the metal foil 33 is not exposed to the effect of expansion and contraction or vibration of the trigger electrode 3. The disadvantage of tearing of the metal foil 33 and similar disadvantages therefore do not occur. A high frequency high voltage can reliably be applied to the trigger electrode 3 via the metal foil 33.
The shape of the recessed part 30 which has been formed in the trigger electrode 3 is described below.
a) & 3(b) are enlarged views of the recessed part 30 of the trigger electrode 3.
When the depth D1 of the recessed part 30 is less than 0.2 (mm), the silica glass in the molten state does not penetrate into the recessed part 30 in the process of sealing. When the depth D1 exceeds ½ H, the strength of the trigger electrode 3 decreases. Thus, the possibility of damaging the trigger electrode 3 by breaking or the like increases.
It is advantageous that the length D2 (mm) of the recessed part 30 is in the range from 1.5 mm to 20 mm. The reason for this is the following:
When the length D2 is less than 1.5 (mm), the silica glass in the molten state does not penetrate into the recessed part 30 in the process of sealing. The value of the upper limit of the length D2 of the concave part 30 is not especially limited. However, when it exceeds 20 (mm), the disadvantage of breaking of the trigger electrode 3 as a result of a reduction of its strength and similar disadvantages occur.
The recessed part 30 of the trigger electrode 3 is described below using other embodiments. In this connection, only the trigger electrode 3 is shown, and neither the sealed tubular body nor the metal foil are further described.
a) & 5(b) each show an arrangement in which the recessed part 30 is not only formed on part of the periphery of the trigger electrode 3, but is formed around the entire periphery of the trigger electrode 3.
Due to this formation of the recessed part 30 in the overall periphery of the trigger electrode 3, the trigger electrode 3 has a region with a large diameter and a region with a small diameter. The molten silica glass penetrates into the overall periphery of the concave part (of the region with a small diameter) of the trigger electrode 3. Thus, an arrangement can be devised in which the trigger electrode 3 is attached more securely.
a) & 6(b) each show an arrangement in which there are several recessed parts 30 in the lengthwise direction of the trigger electrode 3.
Number | Date | Country | Kind |
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2006-136240 | May 2006 | JP | national |