BACKGROUND OF THE INVENTION
1. Field of the Invention
[0001] The present invention relates to a lamp and a manufacturing method of that lamp that
has a special structure of electrode sealing and whose internal pressure become one
atmosphere or more when operated to light it.
2. Description of the Prior Art
[0002] Conventionally, high intensity discharge lamps have been widely used for ordinary
illumination in homes, facilities and stores. In recent years, these lamps are being
used as light sources for overhead projectors, projection televisions and motion picture
projectors. The reason for this is because high intensity discharge lamps emit an
extremely bright light.
[0003] In particular, in recent years, research has been active on ways to bring lamps closer
to a point light source by shortening the length of the discharge arc. However, reductions
in lamp voltage occur following efforts to shorten the length of the discharge arc.
Therefore, when an attempt is made to operate a lamp using an identical voltage, increases
in lamp current generate. These increases in lamp current are linked to large increases
in electrode loss, actively vaporize electrode materials worsening the early stages
of electrodes. Namely, the increases in lamp current cause the lifecycles of the lamps
to shorten. From this type of reason, when shortening the arc length, it is normal
to increase the mercury vapor pressure when operating the lamp is made to protect
against reductions in lamp voltage (increases in lamp current).
[0004] When the mercury vapor pressure and other similar parameters are made to increase
when operating the lamp, the lamp must be constructed such that it will not be cracked
due to that high operating pressure.
[0005] Fig. 11 shows the structure of a conventional discharge lamp. In the figure, 100
is a light emission portion wherein exists a discharge arc and 101 is a side tube
portion that extends from light emission portion 100. Light emission portion 100 and
side tube portion 101 are both comprised by quartz glass.
[0006] A gas that becomes a high pressure when the lamp is operated is sealed in light emission
portion 100. Further, 102 is an electrode that functions to supply electrical current
into light emission portion 100. The electrode material is normally tungsten. In comparison
to the thermal expansion coefficient of tungsten of 5.2 × 10
-6, the thermal expansion coefficient of quartz glass is 5.5 × 10
-7 that is almost one decimal place different., Technology for sealing methods of two
types which differ greatly in this way is difficult.
[0007] For a sealing method for this case a foil sealing structure is known wherein a metal
foil 104 connects between electrode 102 and an external electrical current supply
line 103 and glass being sealed airtight in this metal foil. By carrying out plastic
deformation on an extremely thin metal foil, the difference in the thermal expansion
coefficient between the glass and the metal is absorbed making it possible to obtain
a seal.
[0008] Conventionally, pinch sealing is a manufacturing method of this foil sealing structure
lamp. In the following, conventional pinch sealing will be described referring to
Fig. 12. Glass tube 110 is formed by a separate process in which a quartz glass tube
is heated and allowed to expand forming light emission portion 100 in a specified
shape. A quartz glass tube that is not deformed is connected to both end portions
of light emission portion 100 as side tube portion 101. Glass tube 110 is retained
by a chuck 113., The end portion of electrode 102 is disposed on light emission portion
100 to maintain a discharge arc. And also, electrode 102, metal foil 104 (connected
to the other end portion of electrode 102) and electrical current supply line 103
are disposed on side tube portion 101.
[0009] Further, in order to prevent electrode oxidation during the sealing process, side
tube portion 101 maintains in a rare gas environment. The glass of this side tube
portion 101 is thermally fused by a burner 111 and then pressure formed by a forming
die 112 from two directions perpendicular to the surface of metal foil 104.
PROBLEMS TO BE SOLVED
[0010] The following two problems exist when using this type of sealed lamp.
[0011] Electrode 102 and the glass of side tube portion 101 have different thermal expansion
coefficients and there is no airtight seal. Thereupon, a gap can be opened between
electrode 102 and the glass of side tube portion 101.
[0012] Fig. 13 shows the cross sectional shape of the side tube portion along line 105 shown
in Fig. 11. In the figure, 120 is a side tube portion glass. Further, 121 is a gap
between electrode 102 and side tube portion glass 120. The shape of gap 121 has a
sharp notch 122 due to squeezing from two directions of the glass. There was a problem
of a concentration of stress acting on sharp notch 122 and the lamp being damaged
due to a pressure lower than the pressure strength actually possessed by the glass.
[0013] The second problem is a crack 106 shown in Fig. 11. This crack 106 occurs in the
side tube portion glass at the position of electrode 102. The percentage of cracks
which occur during sealing is larger than cracks which occur due to differences in
the thermal expansion coefficients of the electrode and the glass. However, this crack
has an action that is said to lessen the stress occurring between the electrode and
the glass when lighting and extinguishing the lamp. Because of this, cracks which
occur due to differences in the thermal expansion coefficients do not interfere with
the lamp.
[0014] Cracks which occur because of differences in the thermal expansion coefficients however,
occur due to another mechanism. The electrode does not cause plastic deformation as
with a metal foil. Because of this, if the electrode is struck by the side tube portion
glass with a strong force, the glass will crack due to that impact. A concentration
of stress will generate at the tip of this crack which will further lower the pressure
strength of the lamp. In other words, there is a problem of cracks occurring due to
factors other than differences in the thermal expansion coefficients of the glass
and the electrode .
[0015] Thereupon, a shrink seal method is used to solve the above-mentioned two problems.
An example of a shrink seal method is shown in Fig. 14. Glass tube 110 is retained
by chuck 126. The end portion of electrode 102 is disposed on light emission portion
100 to maintain a discharge arc. And also, electrode 102, metal foil 104 (connected
to the other end portion of electrode 102) and electrical current supply line 103
are disposed on side tube portion 101. A reduced pressure state is maintained inside
glass tube 110. While this glass tube 110 is rotated in the circumferential direction
of the tube (approximately indicated by arrow 128), side tube portion 101 is thermally
fused uniformly by burner 127. Side tube portion 101 glass undergoes diameter reduction
by means of a pressure difference between the inside and outside of glass tube 110
and then metal foil 104 and side tube portion 101 glass positioned where the metal
foil is located are sealed airtight.
[0016] According to this method, because the glass undergoes diameter reduction towards
the electrode , the shape of the gap between the glass and the electrode becomes almost
circular eliminating the notch portion that generates a concentration of stress. Further,
because the sealing pressure does not exceed the atmospheric pressure, the glass does
not receive any impact when sealed.
[0017] However, because the sealing pressure of the metal foil portion does not exceed one
atmosphere in this shrink seal method, there are still remaining problems of an insufficient
amount of plastic deformation of the metal foil and a weak seal between the metal
foil and the glass tube.
[0018] Thereupon, a method has been attempted that uses a die to evenly squeeze the glass
(for example, a polygon shaped die or a circular die) in order that the shape of the
gap between the electrode and the glass does not have a notch portion and that additionally
removes cracks occurring in the side tube portion glass positioned where the electrode
is located from the rear.
[0019] For example, Japanese Patent Laid-open Publication (Kokai) HEI 5-159743 discloses
a method which attempts to eliminate cracks by reheating and gradually cooling the
side tube portion after pinch sealing.
[0020] However, in order to eliminate cracks, the glass temperature must be increased up
to the softening point. The softening point of quartz glass is 1683°C. Fig. 11 shows
the state of crack 106. In particular, a location 122 (Fig. 13) where a crack occurs
is adjacent to light emission portion 100. Because an electrode is embedded in side
tube portion 101, light emission portion 100 is also greatly affected by temperature.
Light emission portion 100 is formed in an approximate spherical shape and the tip
of the light emission portion adjacent to the side tube portion has a thin skin of
glass making it especially vulnerable to deformation due to temperature increases.
Deformation of the light emission tube changes the temperature of the coolest point
inside the light emission tube when the lamp is operated (lowest point in the direction
of the gravitational force of light emission portion 100 when the axial direction
of the side tube portion is set in the horizontal direction and used in that manner).
The vapor pressure of the light emitting material inside the lamp is determined by
the coolest temperature point inside the light emission tube when the lamp is operated.
In other words, deformation of the light emission tube causes the vapor pressure of
the light emitting material inside the lamp to change thereby changing the spectral
distribution characteristics. Because of these factors, eliminating cracks after the
sealing process is passed through is difficult.
[0021] Further, an explanation was provided for the above-mentioned discharge lamp although
this is not a specific problem for a discharge lamp and when hermetically sealing
an electrical current supply line inside a glass tube, the same problems occur. In
other words, the same problems exist in an incandescent lamp of a halogen light bulb.
[0022] The object of the present invention is to take these factors into consideration and
provide a lamp with the following improvements. Eliminates concentration of stress
occurring in the gap between the glass and electrode . Controls to a minimum the occurrence
of cracks which occur due to factors other than differences in the thermal expansion
coefficients of the glass and the electrode . And in addition has a high pressure
strength structure with improved adhesiveness between the metal foil and the glass.
MEANS FOR SOLVING THE PROBLEM
[0023] In order for the present invention to achieve the above-mentioned objects, a method
is used to produce a discharge lamp wherein an electrode assembly is hermetically
sealed that comprises at least an electrical current supply line and a metal foil
connected to the electrical current supply line to produce a lamp in the following
process. A side tube portion located at the position of the metal foil portion is
compressed by a pressure higher than a pressure that compresses the side tube portion
located at the position of the electrical current supply line in a process that hermetically
seals the metal foil portion in a state in which the electrode assembly (positioned
such that one portion of the electrical current supply line is inside the light emission
portion) is inserted inside a glass bulb that comprises at least a light emission
portion and a side tube portion extending into the light emission portion.
[0024] Further, the lamp of the present invention is characterized by having a light emission
portion comprised by glass, a side tube portion that extends from the light emission
portion and is comprised by glass as well as an electrical current supply line with
one portion arranged inside the light emission portion, one end portion connected
to a metal foil, and that is hermetically sealed in the side tube portion. The lamp
is further characterized by the lateral cross sectional shape in the perpendicular
direction of the axis of the electrical current supply line of the gap between the
electrical current supply line and the side tube portion having a shape similar to
the cross section of the electrical current supply line as well as the side tube portion
glass located at the position of the metal foil portion being compression formed by
a die.
[0025] The lamp of the present invention is further characterized by having an electrical
current supply line with one portion arranged inside the light emission portion together
with one end portion connected to a metal foil, and that is hermetically sealed in
a side tube portion extending from the light emission portion. And is even further
characterized by the lateral cross sectional shape in the perpendicular direction
of the axis of the electrical current supply line of the gap between the electrical
current supply line and the side tube portion having a smooth shape without notches
which cause a concentration of stress and the side tube portion positioned where the
metal foil is located being compression formed by a forming die.
BRIEF DESCRIPTION OF THE DRAWINGS
[0026]
Fig. 1 shows a comparison of the structure of a discharge lamp of a first embodiment
of the present invention and a conventional discharge lamp;
Fig. 2A is an enlarged cross section along dashed line 6 of Fig. 3;
Fig. 2B is an enlarged cross section along dashed line 7 of Fig. 3;
Fig. 3 shows the structure of a discharge lamp of a first embodiment of the present
invention;
Fig. 4 shows the structure of an incandescent lamp of a second embodiment of the present
invention;
Fig. 5A is an enlarged cross section along dashed line 210 of Fig. 4;
Fig. 5B is an enlarged cross section along dashed line 211 of Fig. 4;
Fig. 6 shows a manufacturing method of a discharge lamp of a second embodiment of
the present invention;
Fig. 7 shows a manufacturing method of a discharge lamp of a second embodiment of
the present invention;
Fig. 8 shows a manufacturing method of a discharge lamp of a second embodiment of
the present invention;
Fig. 9 shows a manufacturing method of a discharge lamp of a second embodiment of
the present invention;
Fig. 10 shows a manufacturing method of a discharge lamp of a third embodiment of
the present invention;
Fig. 11 shows the structure of a conventional discharge lamp;
Fig. 12 shows a manufacturing method (pinch sealing) of a conventional discharge lamp;
Fig. 13 is an enlarged cross section along dashed line 105 of Fig. 11;
Fig. 14 shows a manufacturing method (shrink seal) of a conventional discharge lamp;
EMBODIMENTS OF THE PRESENT INVENTION
[0027] In the following, embodiments of the present invention will be described with reference
to the attached drawings.
(First Embodiment)
[0028] In the following, a first embodiment of a discharge lamp of the present invention
will be described with reference to Fig. 1 to Fig. 3. Fig. 3 shows the structure of
a discharge lamp of a first embodiment of the present invention.
[0029] In Fig. 3, 1 is a light emission portion comprised by glass and 2a and 2b are both
side tube portions comprised by glass which extend from light emission portion 1.
Further, an electrode assembly is hermetically sealed in here that connects metal
foil 4 between electrode 3 and external electrical current supply line 5 connected
to a power supply (not shown in figure). A gas that becomes a high pressure when the
lamp is operated is sealed in light emission portion 1 in like manner to a conventional
discharge lamp.
[0030] Fig. 2A is an enlarged cross section along dashed line 6 of Fig. 3 and Fig. 2B is
an enlarged cross section along dashed line 7 of Fig. 3.
[0031] The structure of the lamp of the first embodiment is characterized by the lateral
cross sectional shape of the gap between electrode 3 and side tube portion glass 2
having a shape similar to the lateral cross sectional shape of the electrode and the
side tube portion glass positioned where metal foil 4 is located being formed by a
die.
[0032] As shown in Fig. 2B, the side tube portion glass 2 related to the present invention
has a first portion wherein electrode 3 is inserted and retained and a second portion
wherein metal foil 4 is inserted and retained.
[0033] The manufacturing method in the first embodiment initially uses a shrink seal method
and then softens the first portion utilizing heat to reduce the diameter. For this
case, the portion inside the glass tube is brought to a pressure lower than atmospheric
pressure to reduce the diameter. Continuing, as shown at the lower right of Fig. 1,
a forming die is positioned at any of levels L1, L2 or L3, namely, the die is set
at the connection portion between electrode 3 and metal foil 4 to carry out pinch
sealing, For a lamp manufactured using a conventional pinch sealing method, as shown
at the lower left of Fig. 1, the forming die is set at the position of level L0 which
is the boundary portion between light emission portion 1 and side tube portion glass
2.
[0034] In order to reduce the diameter in the manufacturing process of the present invention,
pressure added to the second portion of the side tube portion glass is a value larger
than the pressure added to the first portion. Because of this, stress on the side
tube portion glass of the first portion is applied evenly to prevent cracks from easily
occurring along with a high pressure being applied to the side tube portion glass
of the second portion thereby improving the adhesiveness between the metal foil and
the side tube portion glass.
[0035] Further, the boundary between the first portion and the second portion can be a portion
where electrode 3 and metal foil 4 overlap or a portion close to that.
[0036] In order to describe the differences between a lamp with a conventional structure
and the lamp of the first embodiment, the cross sectional views of side tube portion
6 and portion 7 are both shown in Fig. 1. In Fig. 1, left column, top view is a cross-sectional
view taken along a line A'-A' shown in left column bottom view, and the left column,
bottom view is a cross-sectional view taken along a line A''-A'' shown in left column
top view. Similarly, the views in the center column are the cross-sectional views
taken along lines B'-B' and B''-B'' shown in counterpart views, and the views in the
right column are the cross-sectional views taken along lines C'-C' and C''-C'' shown
in counterpart views. The views in the left column are prior art lamp formed by pinch
seal method. The views in the center column are prior art lamp formed by shrink seal
method. The views in the right column are present invention lamp formed by the method
of the present invention.
A lamp with a conventional structure undergoes pinch sealing and shrink sealing.
[0037] In a lamp with a pinch sealing structure as shown in the left column in Fig. 1, the
adhesiveness between the metal foil and the side tube portion glass is strong. However,
there is a notch portion 122 that generates a concentration of stress in the gap between
the electrode and the side tube portion glass.
[0038] In a lamp with a shrink sealing structure as shown in the center column in Fig. 1,
a concentration of stress in the gap between the electrode and the side tube portion
glass does not occur. However, the adhesiveness between the metal foil and the side
tube portion glass becomes weak because of insufficient pressure.
[0039] By means of providing a seal structure as in the discharge lamp of the first embodiment
as shown in the right column in Fig. 1, a concentration of stress in the gap between
the electrode and the side tube portion glass does not occur, and the adhesiveness
of the metal foil is high. When the second portion of the side tube portion glass
cracks in the lamp of the present invention, cracking similar to the metal foil peeling
does not occur. The side tube portion glass cracks in a direction that is roughly
perpendicular or is at angle to the metal foil portion.
[0040] In this way, it is preferable for the cross sectional shape of the gap between the
electrode 3 and the first portion of side tube portion glass 2 to be a smooth shape
without notch portions which generate a concentration of stress. For example, the
shape can be circular, approximately circular, or an elliptical, approximately elliptical.
[0041] Moreover, it is preferable for the second portion of side tube portion glass 2 positioned
where metal foil 4 is located to reach to the area around the connection portion between
the electrode and the metal foil. This allows even more improvement of the adhesiveness
between the metal foil and the side tube portion glass.
(Second Embodiment)
[0042] In the following, a second embodiment of an incandescent lamp of the present invention
will be described with reference to Fig. 4 and Fig. 5. Fig. 4 shows the structure
of a incandescent lamp of a second embodiment of the present invention.
[0043] In Fig. 4, 200 is a light emission portion comprised by glass and 201 is a side tube
portion comprised by glass which extends from light emission portion 200. Further,
the electrode assembly is hermetically sealed in side tube portion 201. Both end portions
of the electrode assembly are connected to metal foil 203 and external electrical
current supply line 204 (connected to a power supply) is connected to electrical current
supply line 202 of which one portion (positioned where light emission portion 200
is located) is formed in a coil shape as well as to the other end portion of the metal
foil. A gas that becomes a high pressure when the lamp is operated is sealed in light
emission portion 200.
[0044] Fig. 5A shows an enlarged cross sectional shape along side tube portion glass 210
positioned where electrical current supply line 202 of Fig. 4 is located and Fig.
5B shows an enlarged cross sectional shape along side tube portion 211.
[0045] The structure of the lamp of the second embodiment is characterized by the lateral
cross sectional shape of the gap between electrical current supply line 202 and the
side tube portion glass having a shape similar to the lateral cross sectional shape
of electrical current supply line 202 and the side tube portion glass positioned where
metal foil 203 is located being formed by a die.
[0046] The incandescent lamp of the second embodiment does not have a concentration of stress
occurring in the gap between the electrode and the side tube portion glass. The adhesiveness
of the metal foil is also high.
(Third Embodiment)
[0047] Fig. 6 to Fig. 9 describe an embodiment of the manufacturing method of the lamp of
the present invention.
[0048] In Fig. 6, 10 is a glass tube formed by a separate process wherein a quartz glass
tube heats and is expanded and is comprised by light emission portion 11 formed in
a specified shape and side tube portions 12a and 12b of the quartz glass tube which
extend from both end portions of light emission portion 11. The end portion of the
other side tube portion 12a is sealed.
[0049] In contrast, electrode assembly 13 consists of electrode 20, metal foil 21 connected
to electrode 20, and electrical current supply line 22 connected to the end portion
of the metal foil portion on the side opposite to where the metal foil portion is
connected to electrode 20. A spring 23 is mounted to the end portion of metal current
supply line 22 on the side not connected to the metal foil. Electrode assembly 13
attached to spring 23 inserts from the opening of side tube portion 12b and the end
portion of the metal foil of the electrode not connected is arranged towards the light
emission portion. By pressing the inner surface of the side tube portion glass on
the spring connected to electrode assembly 13, electrode assembly 13 is secured at
a specified position.
[0050] In this state, at first, after carrying out a vacuum discharge from the opening of
side tube portion 12b, 200 mbar of argon gas is injected from the opening of side
tube portion 12b. Then, the periphery of the end portion of side tube portion 12b
not yet sealed is heated by burner 30 and sealed as shown in Fig. 7.
[0051] Continuing, as shown in Fig. 8, the end portion of side tube portion 12a of glass
tube 10 is held by chuck 40 in a state in which argon gas is at 200 mbar and electrode
assembly 13 is inserted. Next, glass tube 10 rotates in the direction of the circumference
of the valve (indicated by arrow 42). Then, the glass tube is heated and softened
by means of burner 41 (heating element) reaching to one portion of a metal lead-in
wire 22 positioned where side tube portion 12b is located from the boundary of light
emission portion 11 and side tube portion 12b.
[0052] At this time, because the inside of glass tube 10 is in a reduced pressure state,
the inside diameter of side tube portion 12b is reduced at the softened position by
means of a pressure difference between the surrounding atmospheric pressure of glass
tube 10. In particular, after the diameter of the inner surface of the glass of side
tube portion 12b positioned where electrode 20 is located is reduced up to the area
around the electrode , the heating of burner 41 and the rotation 42 of glass tube
10 cease.
[0053] Now, as shown in Fig. 9, the side tube portion 12b glass positioned where metal foil
21 is located is squeezed by die 43 from two directions perpendicular to the plane
of metal foil 21 (indicated by arrow 44). At this time, it is preferable for the squeezing
action of die 43 to cease almost simultaneous when the heating of burner 41 ceases.
This is to improve the adhesiveness between the glass and the metal foil by means
of squeezing the glass in a sufficiently softened state. In this manner the electrode
sealing of side tube portion 12b is complete.
(Fourth Embodiment)
[0054] Next, an embodiment of a process that hermetically seals electrode assembly 12 inside
side tube portion 12b in the manufacturing method of the high intensity discharge
lamp of the present invention will be described. Fig. 10 describes a manufacturing
method for sealing utilizing high frequency dielectric heating.
[0055] In Fig. 10, 50 is a magnetron for carrying out high frequency dielectric heating,
51 is an antenna for emitting microwaves, 52 is a container sealed airtight by acrylic
or similar material, and 53 is a waveguide for microwaves. One end of waveguide 53
is arranged inside sealed container 52. The internal portion of waveguide 53 located
inside sealed container 52 is also hermetically sealed by a cover 64 that uses material
such as teflon that allows microwaves to pass through on the inside of waveguide 53
located at the boundary between the atmosphere and sealed container 52. Waveguide
53 located within the atmosphere functions as 53a and waveguide 53 located inside
sealed container 52 functions as 53b.
[0056] Furthermore, in Fig. 10, 54 is an open cylindrical hole that functions to arrange
glass tube 10 inside waveguide 53 located within sealed container 52. A heat absorbing
element (heating element) 55 comprising silicon or similar material is located on
one portion of the circumference of hole 54 (used to arrange the lamp) for the purpose
of heating the glass of side tube portion 12b and sealing electrode assembly 13. Heat
absorbing element 55 has either a ring shape or a cylindrical shape. Further, heat
absorbing element 55 is heated by microwaves and a high temperature occurs within
the element. Moreover, 56 in Fig. 10 is an adiabatic material such as alumina to improve
the efficiency of heat absorbing element 55. The adiabatic material 56 encircles the
circumference of heat absorbing element 55.
[0057] Even further, 57 in Fig. 10 is a chuck that holds glass tube 10. A motor (not shown
in the figure) is connected to chuck 57 and glass tube 10 mounted to chuck 57 rotates
in the direction of the circumference of glass tube 10 as shown by arrow 60. Further,
because chuck 57 is disposed such that it can move up and down by a drive means (not
shown in the figure), glass tube 10 mounted to chuck 57 can move up and down its axial
direction as indicated by arrow 61.
[0058] Even further, 62 in Fig. 10 is a compressor that functions to increase the pressure
inside sealed container 52 to atmospheric pressure or more and 63 is a regulating
valve that uniformly maintains the pressure inside sealed container 52. This regulating
valve 63 can freely set the pressure inside the sealed container to atmospheric pressure
or increase the pressure.
[0059] In the following, the process of the above embodiment will be described. At first,
the glass of the first portion of side tube portion 12b positioned where electrode
20 is located heats and then the inside diameter of the glass of side tube portion
12b positioned where electrode 20 is located undergoes diameter reduction reaching
to the area around electrode 20. This is described in detail below.
[0060] Atmospheric pressure is maintained inside sealed container 52. In this state chuck
57 is mounted to glass tube 10. In other words, one end of side tube portion 12b is
held by chuck 57 in order that the axis of heat absorbing element 55 matches the axis
of side tube portion 12b. Next, the position of glass tube 10 is adjusted in order
that heat absorbing element 55 is opposite to the first portion of side tube portion
12b. Continuing, glass tube 10 is made to rotate.
[0061] Next, microwaves generated from magnetron 50 heat-up heat absorbing element 55. Then,
heat absorbing element 55 heats the first portion of side tube portion 12b positioned
where rotating electrode 20 is located up to the softening point or more which in
turn reduces the inside diameter of the first portion reaching to the area around
electrode 20. For this case, because the inside of sealed container 52 is maintained
at atmospheric pressure while the interior of the glass tube becomes lower than atmospheric
pressure, the glass tube equally reduces the diameter around electrode 20 as shown
at the right edge of Fig. 1 halfway down.
[0062] Then the heated side tube portion 12b cools to room temperature. The cooling of glass
tube 10 can be done inside sealing device 52 or outside sealed container 52.
[0063] Continuing, by means of moving chuck 57 (that is retaining glass tube 10) in the
downward direction, heat absorbing element 55 is brought opposite to the second portion.
Then, along with glass tube 10 being rotated, the glass of the second portion of side
tube portion 12b positioned where metal foil 21 is located heats. Further, compressor
62 increases the pressure (from 1 to 10 atmospheres) inside sealed container 52 to
atmospheric pressure or more. In this manner the second portion is hermetically sealed.
[0064] This completes the electrode sealing of side tube portion 12b. The electrode sealing
of side tube portion 12a is carried out in like manner.
[0065] Moreover, although the discharge lamp was described as examples in the second and
third embodiments, the present invention can be applied to other types of lamps, such
as incandescent lamps which employ electrode assembly with an airtight sealing method
inside glass.
[0066] According to the present invention as described above, because there is no concentration
of stress between the side tube portion glass positioned at the electrode portion
and the electrode as well as the metal foil having a high adhesiveness, a lamp can
be achieved with an excellent high pressure resistant structure that is difficult
to crack.
1. A manufacturing method of a lamp having a tube comprising a light emission portion
glass and a side tube portion glass that extends from said light emission portion
glass, said lamp having a sealed electrode assembly comprising an electrical current
supply line with one end portion connected to a metal foil, said manufacturing method
of a lamp comprising:
inserting said electrode assembly into a side tube portion glass such that the axis
of said side tube portion glass and the axis of said electrode assembly approximately
match,
locating one end portion of the electrical current supply line not connected to said
metal foil inside said light emission portion,
heating a first portion of said side tube portion glass where said electrical current
supply line is located,
applying a first pressure to said heated first portion of said side tube portion glass
to compress the first portion,
heating a second portion of said side tube portion glass where said metal foil is
located, and
applying a second pressure to said heated second portion of said side tube portion
glass to compress the second portion, said second pressure being made larger than
the first pressure.
2. A manufacturing method of a lamp according to claim 1, wherein said lamp is a discharge
lamp.
3. A manufacturing method of a lamp according to claim 1, wherein said lamp is an incandescent
lamp.
4. A manufacturing method of a lamp according to claim 1, wherein the first pressure
that compresses said first portion being one atmosphere or less.
5. A manufacturing method of a lamp according to claim 1, wherein the inside of said
tube being maintained at atmospheric pressure or less, a first portion being substantially
and uniformly heated, and said first portion undergoing diameter reduction by means
of a pressure difference between the inside and outside of said tube, and said second
portion being uniformly heated and squeezed by a die.
6. A manufacturing method of a lamp according to claim 1, wherein the inside of a tube
being maintained at atmospheric pressure or less, a first portion being substantially
and uniformly heated, and said first portion undergoing diameter reduction by means
of a pressure difference between the inside and outside of said tube, the periphery
of said second portion being maintained at atmospheric pressure or more, a second
portion being substantially and uniformly heated, and said second portion undergoing
diameter reduction by means of a pressure difference between the inside and outside
of said tube.
7. A manufacturing method of a lamp according to claim 1, wherein said tube is filled
with an inert gas in order to prevent oxidation of said electrode assembly.
8. A manufacturing method of a lamp according to claim 7, wherein said inert gas is argon
gas.
9. A manufacturing method of a lamp according to claim 1, wherein said side tube portion
is heated while rotating circumferentially in order to substantially and uniformly
heat the side tube portion glass positioned where an electrode assembly is located.
10. A manufacturing method of a lamp according to claim 1, wherein a heating element is
provided which is rotated in the direction of the circumference of said side tube
in order to substantially and uniformly heat a side tube portion glass positioned
where an electrode assembly is located
11. A manufacturing method of a lamp according to claim 10, wherein said heating element
is a burner.
12. A manufacturing method of a lamp according to claim 10, wherein said heating element
is a high frequency dielectric heating element.
13. A lamp comprising:
a light emission portion made of glass,
a side tube portion made of glass and extending from said light emission portion;
and
an electrical current supply line with one end portion disposed within said light
emission portion, the other end portion connected to a metal foil and that is sealed
airtight in said side tube portion,
a lateral cross sectional shape of the gap between an electrical current supply line
and a side tube portion glass located at a first portion where said electrical current
supply line is positioned within said side tube portion glass being a shape similar
to the lateral cross sectional shape of said electrical current supply line, and a
second portion positioned where said metal foil is located within said side tube portion
glass being compressed by a die.
14. A lamp according to claim 13 wherein said lamp is a discharge lamp.
15. A lamp according to claim 13 wherein said lamp is an incandescent lamp.
16. A lamp comprising:
an electrical current supply line with one end portion disposed within a light emission
portion, the other end portion connected to a metal foil that is sealed airtight in
a side tube portion extending from said light emission portion,
a lateral cross sectional shape of the gap between said electrical current supply
line and said side tube portion being a smooth curve that does not have a notch portion
that causes a concentration of stress and,
said side tube portion where said metal foil is located being compressed by a forming
die.