[0001] The present invention relates to an ultra-violet ray-shielding agent and tube. More
particularly, the present invention relates to an ultraviolet ray-shielding agent
and tube for a discharge lamp.
[0002] It is known that various types of luminescent lamps, for example, mercury lamps,
metal halide vapor lamps, sodium lamps, xenon lamps and halogen lamps, have an excellent
luminance and brightness, a high illumination efficiency, and a long durability, and
thus are useful for illuminating buildings such as shops, and as fish-luring lamps.
[0003] Luminescent lamps irradiate strong ultraviolet rays in addition to visible rays,
and due to recent increases in the luminance or brightness of the luminescent lamps,
for example, halogen lamps, the ultraviolet ray-radiation therefrom can no longer
be ignored. Namely, when these lamps are used to illuminate, for example, department
stores, the ultraviolet rays cause a discoloration and deterioration of the goods,
and when used as fish-luring lights, the ultraviolet rays burn the skin of the users
and may cause skin cancer or a deterioration of the eyesight of the users. Therefore,
it is necessary that some form of shielding from the ultraviolet rays emitted by luminescent
lamp be provided.
[0004] Several attempts have been made to shield the ultraviolet rays, as shown in the following
description:
(1) In a metal vapor luminescent lamp, a coating layer of a titanium dioxide is formed
on an outside or inside surface of a tube or bulb in which a luminescent source is
contained.
(2) In a xenon lamp, a tube or bulb for containing a luminescent source is made from
a transparent quartz containing 10 to 300 ppm of at least one member selected from
titanium dioxide and cerium oxide.
[0005] Nevertheless, in the above-mentioned ultraviolet ray-shielding tubes, titanium dioxide
or cerium oxide is utilized as the ultraviolet ray-shielding material, but these
compounds are disadvantageous in that they have the following properties:
(1) A high refractive index and a poor transparency, and thus the luminance of the
luminescent lamp is lowered.
(2) When titanium dioxide is used in the form of fine particles, the particles absorb
visible rays, and thus the luminance or brightness and color-rendering property of
the lamp are lowered, due to a relatively large size of these particles.
(3) When an organic titanium compound is employed, it is difficult to form a coating
layer having a large thickness, and thus the resultant coating layer exhibits an unsatisfactory
ultraviolet ray-shielding property.
(4) The transparent quartz containing titanium dioxide or cerium oxide is expensive.
Also there is an upper limit to the amount of titanium dioxide or cerium oxide that
can be added to the quartz, and thus the ultraviolet ray-shielding property of the
resultant quartz tube or bulb is still unsatisfactory.
[0006] Generally, ultraviolet ray-shielding coating materials must satisfy all of the following
requirements:
(1) The coating material must be able to shield ultraviolet rays at a wave length
of around 400 nm or less.
(2) The coating material must be stable for practical use over a long period.
(3) The coating material must be harmless to the human body.
[0007] The conventional ultraviolet ray-shielding agents however, cannot satisfy all of
the above-mentioned requirements.
[0008] An object of the present invention is to provide an ultraviolet ray-shielding agent
and tube for luminescent lamps, which have a high transparency to and a low scattering
of visible rays, and provide an effective shield against ultraviolet rays.
[0009] The above-mentioned object can be attained by the ultraviolet ray-shielding agent
and tube of the present invention for luminescent lamps. The ultraviolet ray-shielding
agent of the present invention comprises; a binder capable of transmitting visible
rays therethrough, and extremely fine zinc oxide particles having an average size
of 0.1 µm or less and dispersed in the binder in a mixing ratio of the zinc oxide
particles to the binder of 1:10 to 10:1.
[0010] Also, the ultraviolet ray-shielding tube of the present invention for visible ray-irradiation
luminescent lamps comprises a transparent substrate tube for sealing a light emission
source therein, and at least one ultraviolet ray-shielding coating formed on at least
one surface of the substrate tube, comprising a binder capable of transmitting visible
rays therethrough and extremely fine zinc oxide particles having an average size of
0.1 µm or less and dispersed in the binder in a mixing ratio of the zinc oxide particles
to the binder of 1:10 to 10:1; this coating having a thickness of 0.5 to 50 µm.
[0011] The ultraviolet ray-shielding agent and tube of the present invention provide an
effective shield against ultraviolet rays without reducing the luminance or brightness
and the color-rendering property of the luminescent lamps.
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
Figure 1A is a cross-sectional view of a halogen luminescent lamp to which ultraviolet
ray-shielding tube of the present invention is applied;
Fig. 1B is a magnified cross-sectional view of a portion B of the ultraviolet ray-shielding
tube shown in Fig. 1A;
Fig. 2 is a graph showing a relationship between a wave length and a relative intensity
of light emission of rays irradiated from a halogen luminescent lamp through a conventional
outer bulb;
Fig. 3 is a graph showing a relationship between a wave length and a relative intensity
of light emission of the rays irradiated from a halogen luminescent lamp through an
ultraviolet ray-shielding tube of the present invention;
Fig. 4A is a cross-sectional view of a mercury luminescent lamp provided with an ultraviolet
ray-shielding outer tube according to the present invention;
Fig. 4B is a magnified cross-sectional view of a portion B of the ultraviolet ray-shielding
tube shown in Fig. 4B;
Fig. 5 is a graph showing a relationship between a wave length and a relative intensity
of light emission of the rays irradiated from a conventional mercury luminescent lamp;
Fig. 6 is a graph showing a relationship between a wave length and a relative intensity
of light emission of the rays irradiated through an ultraviolet ray-shielding tube
of the present invention when applied to a mercury luminescent lamp;
Fig. 7A is a cross-sectional view of another mercury luminescent lamp provided with
an ultraviolet ray-shielding inner tube according to the present invention;
Fig. 7B is a magnified cross-sectional view of a portion B of the ultraviolet ray-shielding
inner tube shown in Fig. 7A; and,
Fig. 8 is a graph showing a relationship between a wave length and a relative intensity
of light emission of rays irradiated through an ultraviolet ray-shielding tube of
the present invention applied to a mercury luminescent lamp, as shown in Fig. 7A and
7B.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0013] The ultraviolet ray-shielding agent of the present invention usable for luminescent
lamps, comprises a binder capable of transmitting visible rays therethrough and extremely
fine zinc oxide (ZnO) particles having an average size of 0.1 µm or less, and dispersed
in the binder. The mixing ratio of the zinc oxide particles to the binder is from
1:10 to 10:1.
[0014] The upper end wave length in the ultraviolet ray-absorption of zinc oxide is about
380 nm; which is very close to 400 nm, an upper end of the ultraviolet ray band.
[0015] The conventional zinc oxide particle having a size of more than 0.1 µm exhibit high
visible ray-scattering and shielding properties and thus appear white, and therefore,
the conventional zinc oxide particles are used as a white pigment. But when used as
a coating material for a luminescent lamp, and thus the conventional zinc oxide particles
reduce the luminance and color-rendering property of the luminescent lamp, and thus
the conventional zinc oxide particles are useless as a visible ray-transmitting coating
material.
[0016] The extremely fine zinc oxide particles of the present invention having a size of
0.1 µm or less have a very sharp end in the ultraviolet ray absorption located at
a wave length close to 400 nm and can transmit and scatter the visible rays, and therefore,
are very suitable as a coating material capable of transmitting and scattering the
visible rays and selectively shielding the ultraviolet rays.
[0017] In the ultraviolet ray-shielding agent of the present invention, the extremely fine
zinc oxide particles having an average size of 0.1 µm or less are evenly dispersed,
preferably in the binder, in a mixing ratio of the zinc oxide particle to the binder,
of 1:10 to 10:1, preferably 2:1 to 1:2.
[0018] When the mixing ratio is lower than 1/10, the resultant ultraviolet ray-shielding
agent exhibits an unsatisfactory ultraviolet ray-shielding effect. Also, a mixing
ratio of higher than 10/1 causes the resultant ultraviolet ray-shielding agent layer
to exhibit an unsatisfactory mechanical strength.
[0019] The binder usable for the present invention must be capable of forming a solid film
having a high transparency for visible rays, a satisfactory heat resistance and durability,
provide a satisfactory dispersion of the extremely fine zinc dioxide particles therein,
and firmly adhere to a substrate tube or bulb for containing an emission source.
[0020] Also, the binder should have a thermal expansion coefficient similar to that of the
substrate tube.
[0021] The binder usable for the present invention preferably comprises at least one member
selected from the group-consisting of colloidal silica, polysiloxanes, polyborosiloxanes,
polycarbosilanes, and polyphosphazenes.
[0022] The colloidal silica is preferably selected from aqueous silica sol and a hydrolysis
product of a silicon alkoxide. The polysiloxane can be selected from conventional
polysiloxane resins.
[0023] The binder may contain specific metal ions or boron to adjust the thermal expansion
coefficient of the resultant ultraviolet ray-shielding coating layer to the same level
as that of the substrate tube of the luminescent lamp.
[0024] The extremely fine zinc oxide particles can be evenly mixed with and dispersed in
the binder, together with a solvent for the binder, by using one or more conventional
mixing and dispersing devices, for example, a ball mill, sand mill, atomizer, roll
mill, homogenizer, and paint shaker.
[0025] The ultraviolet ray-shielding tube of the present invention for visible ray-irradiation
luminescent lamps comprises a transparent substrate tube for sealing a light emission
source therein, and at least one ultraviolet ray-shielding coating layer formed on
at least one surface of the substrate tube. The coating layer comprises the ultraviolet
ray-shielding agent as mentioned above, and has a thickness of 0.5 to 50 µm, preferably,
3 to 30 µm.
[0026] When the thickness is less than 0.5 µm, the resultant coating layer exhibits an unsatisfactory
ultraviolet ray-shielding effect. Also, when the thickness is more than 50 µm, the
resultant coating layer reduces the luminance and color-rendering property of the
tube.
[0027] The transparent substrate tube is usually formed of a glass, for example, a quartz
glass.
[0028] The substrate tube to be coated with the ultraviolet ray-shielding agent may be an
outer bulb of a luminescent lamp or an inner tube for sealing a light emission source
of a luminescent lamp.
[0029] There is no specific restriction on the type of luminescent lamps to which the ultraviolet
ray-shielding tube of the present invention can be applied, but usually the luminescent
lamp is selected from the group consisting of mercury vapor lamps, metal halide vapor
lamps, sodium lamps, xenon lamps, and halogen lamps. For example, the ultraviolet
ray shielding coating layer is formed, in a xenon lamp or halogen lamp, on either
one or both of the outside and inside surfaces of the outer bulb, and in a mercury
vapor lamp, metal halide vapor lamp or sodium lamp, on either one or both of the outside
and inside surfaces of an outer bulb or on the outside surface of an inner bulb.
[0030] Referring to Figures 1A and 1B, a halogen lamp has a outer bulb 1 made from a quartz
glass and a light emission source 2 (tungsten filaments), and an ultraviolet ray-shielding
coating 3 is formed on an outside surface of the outer bulb 1; i.e., the coating layer
3 is exposed to the ambient air atmosphere.
[0031] Referring to Figs. 4A and 4B, a mercury vapor lamp has an outer bulb 1, main electrodes
4, supplementary electrodes 4, a light-emission inner tube 6, conductive supporting
rods 7, an initiating resistance element 9, and an ultraviolet ray-shielding coating
3 is formed on the outside surface of the outer tube 1; i.e., the coating layer 3
is exposed to the ambient air atmosphere.
[0032] Referring to Figs. 7A and 7B, an ultraviolet ray-shielding coating 3 is formed on
the outside surface of the light-emission inner tube 6. The coating 3 is exposed to
the gas atmosphere contained in the outer bulb 1.
[0033] The ultraviolet ray-shielding coating can be formed by applying a coating liquid
containing the ultraviolet ray-shielding agent of the present invention on a surface
of an outer or inner bulb of the luminescent lamp, by a dipping method, spraying method,
flow coating method, or brushing method, and solidifying the coated liquid by drying.
EXAMPLES
[0034] The present invention will be further explained in the following specific examples,
which are representative and do not restrict the scope of the present invention.
Example 1
[0035] A mixture of 100 parts by weight of tetraethoxy silane, 300 parts by weight of isopropyl
alcohol, and 35 parts by weight of a 0.1N hydrochloric acid aqueous solution was stirred
at a temperature of 60° for 2 hours to prepare an aqueous silica colloid dispersion.
The resultant aqueous silica colloid dispersion was mixed with 30 parts by weight
of zinc oxide particles having a size of from 0.005 µm to 0.02 µm and an average size
of 0.01 µm, and the mixture was dispersed in a sand mill for 2 hours to provide a
coating liquid. This coating liquid contained extremely fine particles of zinc oxide
and silica, 99% by weight of which have a size of 0.1 µm or less.
[0036] A quartz outer bulb for a 100 W halogen luminescent lamp was immersed in the coating
liquid and taken up at a constant speed to form a liquid coating having an even thickness
on the outside surface of the bulb and the liquid coating was dried at a temperature
of 150°C for 15 minutes, to provide a transparent coating having a thickness of 1.5
µm.
[0037] When a non-coated outer bulb was used, the resultant conventional halogen luminescent
lamp had the relationship between a wave length and a relative intensity of emission
of irradiated rays through the non-coated outer bulb, as shown in Fig. 2. In Fig.
2, the rays irradiated through the non-coated outer bulb contain a specific intensity
of ultraviolet rays having a wave length of 400 nm or less. The conventional lamp
exhibited an intensity of illumination and a quantity of ultraviolet ray irradiation
as shown in Table 1.
[0038] Figure 3 shows a relationship between a wave length and a relative intensity of emission
of rays irradiated from the halogen luminescent lamp through the outer bulb coated
with the ultraviolet ray-shielding agent. In a comparison of Fig. 3 with Fig. 2, it
is clear that the coating formed on the outer bulb surface shielded only the ultraviolet
rays, without shielding the visible rays.
[0039] The halogen luminescent lamp having the coated outer bulb exhibited the intensities
of illumination and quantities of ultraviolet ray irradiation at the initial stage
of the lighting operation and at 1000 hours after the start of the lighting operation,
as indicated in Table 1.
Example 2
[0040] The same coating liquid as mentioned in Example 1 was applied to an outside surface
of a quartz outer bulb of a 1000 W mercury vapor luminescent lamp by a flow-coating
method and the resultant liquid coating was dried at a temperature of 150°C for 15
minutes.
[0041] The above-mentioned procedures were repeated twice to provide a transparent coating
having a thickness of 2.5 µm.
[0042] Before the application of the coating liquid, the non-coated outer bulb exhibited
a spectral transmittance performance as indicated in Fig. 5. Figure 5 shows that the
non-coated outer bulb allowed the transmission of ultraviolet rays having a wave length
of about 400 nm or less therethrough.
[0043] The conventional mercury vapor luminescent lamp having the non-coated outer bulb
exhibited the intensity of illumination and quantity of ultraviolet ray irradiation
as shown in Table 1.
[0044] After coating with the coating liquid containing the ultraviolet ray-shielding agent
of the present invention, the resultant coated outer bulb did not allow a transmission
of the ultraviolet rays therethrough, as indicated in Fig. 6. Also, from a comparison
of Fig. 6 with Fig. 5, it is clear that the coated outer bulb did not shield the visible
rays.
[0045] The mercury vapor luminescent lamp having the coated outer bulb exhibited the intensities
of illumination and quantities of ultraviolet ray irradiation at the initial stage
of the lighting operation, and at 1000 hours after the start of the lighting operation,
as indicated in Table 1.
Example 3
[0046] A light-emission inner bulb made from a quartz glass was immersed in the same coating
liquid as described in Example 1 and taken up at a constant speed and the resultant
coating formed on the outer surface of the inner bulb was dried at a temperature of
500°C for 30 minutes. The above-mentioned procedures were repeated twice, and the
resultant transparent coating had a thickness of 2.0 µm.
[0047] The coated inner bulb was inserted into an outer bulb made from a brone-silicic acid
glass to provide a 1000 W mercury vapor luminescent lamp as shown in Figs. 7A and
7B.
[0048] The resultant mercury vapor luminescent lamp exhibited a spectral transmittance performance
as indicated in Fig. 8. Figure 8 clearly shows that the ultraviolet rays having a
wave length of about 400 nm or less are shielded by the coated inner bulb.
[0049] A comparative conventional mercury vapor luminescent lamp having a non-coated inner
bulb exhibited intensity of illumination and quantity of ultraviolet ray irradiation
as shown in Table 1.
[0050] Also, the mercury vapor luminescent lamp having the coated inner bulb exhibited the
intensities of illumination and quantities of ultraviolet ray irradiation at the initial
stage of the lighting operation, and at 1000 hours after the start of the lighting
operation, as indicated in Table 1.
Comparative Example 1
[0051] The same procedures as those described in Example 1 were carried out except that
the titanium oxide particles in the coating liquid had a size of from 0.05 to 0.1
µm and an average size of 0.08 µm.
[0052] The properties of the comparative lamp having the non-coated bulb and another comparative
lamp having the coated bulb are shown in Table 1.
Table 1
| |
Example No. |
Example 1 |
2 |
3 |
Comparative Example 1 |
| Item |
|
|
|
|
|
|
| Type of bulb |
Property |
|
|
|
|
|
| Non-coated |
Intensity of illumination (lx) |
138,000 |
7,880 |
7,800 |
7,800 |
| Quantity of ultraviolet ray irradiation (mW/m²) |
1.00 |
1.02 |
1.02 |
1.02 |
| Coated |
Intensity of illumination (lx) |
Initial stage |
14,490 |
8,060 |
8,260 |
6,700 |
| 1000 hr after |
14,000 |
7,900 |
8,100 |
6,430 |
| Quantity of ultraviolet ray irradiation (mW/m²) |
Initial stage |
0 |
0 |
0 |
0 |
| 1000 hr after |
0 |
0 |
0 |
0 |
| Note: The intensity of illumination and quantity of ultraviolet ray irradiation were
measured at a point 10 cm from the center of the luminescent lamp in Example 1, and
60 cm from the center of the luminescent lamp in Examples 2 and 3 and Comparative
Example 1. |
[0053] Table 1 clearly shows that, in each of Examples 1 to 3, the resultant ultraviolet
ray shielding layer of the present invention did not reduce the intensity of illumination
of the luminescent lamp but caused an increase thereof, and had a high durability
over a long period of time.
[0054] In Comparative example 1, however, the zinc oxide particles having an average size
of more than 0.1 µm caused the resultant luminescent lamp to exhibit a reduced intensity
of illumination.
1. An ultraviolet ray-shielding agent comprising:
a binder capable of transmitting visible rays therethrough; and
extremely fine zinc oxide particles having an average size of 0.1 µm or less and dispersed
in the binder in a mixing ratio of the zinc oxide particles to the binder of 1:10
to 10:1.
2. The ultraviolet ray-shielding agent as claimed in claim 1, wherein the binder comprises
at least one member selected from the group consisting of colloidal silica, polysiloxanes,
polyborosiloxanes, polycarbosilanes and polyphosphazenes.
3. An ultraviolet ray-shielding tube for visible ray irradiation luminescent lamps,
comprising:
a transparent substrate tube for sealing a light emission source therein, and
at least one ultraviolet ray-shielding coating formed on at least one surface of the
substrate tube, comprising a binder capable of transmitting visible rays therethrough
and extremely fine zinc oxide particles having an average size of 0.1 µm or less and
dispersed in the binder in a mixing ratio of the zinc oxide particles to the binder
of 1:10 to 10:1, said coating having a thickness of 0.5 to 50 µm.
4. The ultraviolet ray-shielding tube as claimed in claim 3, wherein the transparent
substrate tube comprises a glass.
5. The ultraviolet ray-shielding tube as claimed in claim 3 or 4 wherein said tube
is an outer bulb of a luminescent lamp.
6. The ultraviolet ray-shielding tube as claimed in claim 3 or 4 wherein said tube
is an inner tube for sealing a light-emission source of a luminescent lamp.
7. The ultraviolet ray-shielding tube as claimed in claim 5 or 6, wherein the luminescent
lamp is selected from the group consisting of mercury vapor lamps, metal halide vapor
lamps, sodium lamps, xenon lamps, and halogen lamps.
8. The ultraviolet ray-shielding tube as claimed in any of claims 3-7 wherein the
binder comprises at least one member selected from the group consisting of colloidal
silica, polysiloxanes, polyborosiloxanes, polycarbosilane and polyphosphazenes.