TECHNICAL FIELD
[0001] The invention relates to cigarette substitutes, and specifically to a baked smoking
set.
BACKGROUND ART
[0002] When a flat sheet-shaped heating element is inserted into a substantial cylindrical
sleeve of a baked smoking set, tobaccos at a central area of the heating sheet suffer
from different pressures from tobaccos at two sides thereof, and tobaccos at the two
sides can be extruded by a larger pressure force, causing that the edges of the two
sides of the heating sheet are in tight contact with tobaccos to easily have residual
soot.
SUMMARY OF THE INVENTION
[0003] The technical problem to be solved by the invention is to provide an improved baked
smoking set.
[0004] The technical solution of the invention adopted for solving the technical problem
is to construct a baked smoking set, comprising a tubular sleeve and a sheet-shaped
heating element detachably inserted into the sleeve, wherein;
the heating element comprises a first side and a second side opposite to the first
side in a width direction, the first side and the second side are respectively provided
with a blade portion that allows a thickness of the heating element to gradually decrease
towards an edge in the width direction,
wherein a central line of the heating element is coaxial with a center of the sleeve,
and distances from two opposite sides in the width direction of the heating element
to an inner wall surface of the sleeve respectively are equivalent.
[0005] Preferably, the heating element comprises a first surface and a second surface opposite
to the first surface in a thickness direction;
the blade portion comprises a chamfer on an edge of the first surface and/or the second
surface adjacent to the first side, and a chamfer on an edge of the first surface
and/or the second surface adjacent to the second side; each chamfer is a bevel or
a fillet.
[0006] Preferably, the chamfers are provided respectively on two opposite sides in a width
direction of the first surface and the second surface, and the blade portions of the
first side and the second side transform the first side and the second side of the
heating element to round edges or sharp edges.
[0007] Preferably, the edge of the first surface or the second surface adjacent to the first
side is provided with the chamfer, and the edge of the first surface or the second
surface adjacent to the second side is provided with the chamfer, to transform the
first side and the second side to sharp edges.
[0008] Preferably, one end of the heating element is provided with a sharp head that facilitates
inserting into a cigarette.
[0009] Preferably, the heating element comprises a sheet-shaped substrate, an insulating
layer covered on the sheet-shaped substrate, and a conductive path disposed on the
insulating layer, and the conductive path generates heat after being powered.
[0010] Preferably, the sheet-shaped substrate is made of a metallic or an alloy material,
and the blade portion is formed by punching.
[0011] Preferably, the sheet-shaped substrate comprises a flat surface between the blade
portions on the two opposite sides of the heating element, and the conductive path
is printed in an area of the flat surface.
[0012] Preferably, the heating element further comprises an isolation layer covered outside
the conductive path.
[0013] Preferably, the isolation layer is a glaze layer formed by sintering a glass glaze,
and an outer surface of the heating element is covered by the isolation layer.
[0014] Implementing the baked smoking set of the invention has the following advantageous
effects: since the two sides of the heating element become thinner gradually, when
the heating element is inserted into a cigarette received in the sleeve, pressures
of the two sides of the heating element on tobaccos can be reduced, and tobaccos proximal
to the two sides corresponding to the blade portions may not be subjected to large
extrusion or compression, thereby relieving the pressures on tobaccos proximal to
the two sides, and improving atomizing efficiency of tobaccos. The blade portion also
can represent a smooth transition, to prevent tobaccos from sticking on the two sides
of the heating element.
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Hereinafter, the invention is further described with reference to accompanying drawings
and embodiments. In the drawings:
FIG. 1 is a schematic diagram of a sectional structure of a heating element of a baked
smoking set when inserted into a sleeve with a cigarette in one embodiment of the
invention.
FIG. 2 is a structural diagram of the heating assembly according to the invention.
FIG. 3 is a schematic diagram of a sectional structure of the heating element in FIG.
1.
FIG. 4 is an exploded diagram of respective layers of the heating assembly according
to the invention.
FIG. 5 is a distribution diagram of a temperature field when heating the cigarette
if a sheet-shaped substrate is made of a metal.
FIG. 6 is a schematic diagram when a width of the heating element in FIG. 2 gradually
varies.
FIG. 7 is a distribution diagram of a temperature field when heating the cigarette
if the heating element is made of zirconium oxide.
DETAILED EMBODIMENT OF THE INVENTION
[0016] To clearly understand technical features, objects and effects of the invention, now
detailed embodiments of the invention are explicitly explained with reference to the
accompanying drawings.
[0017] As shown in FIGS. 1 and 2, a baked smoking set in one preferable embodiment of the
invention comprises a tubular sleeve 1, and a heating assembly 2 comprising a heating
element 21, a leading wire 22 and a mounting base 23.
[0018] Referring to FIGS. 1-3, the heating element 21 is in a sheet shape, and is detachably
inserted into the sleeve 1. The heating element 21 comprises a first end A and a second
end B opposite to the first end A in a length direction, and the first end A is configured
to be inserted into the sleeve 1 of the baked smoking set.
[0019] The heating element 21 comprises a first side C and a second side D opposite to the
first side C in a width direction, and the first side C and the second side D are
provided with a blade portion 211 respectively that allows a thickness of the heating
element 21 to gradually decrease towards an edge in the width direction. A central
line of the heating element 21 is coaxial with a center of the sleeve 1, and distances
from two opposite sides in the width direction of the heating element 21 to an inner
wall surface of the sleeve 1 respectively are equivalent.
[0020] Since the two sides of the heating element 21 become thinner gradually, when the
heating element 21 is inserted into a cigarette 3 received in the sleeve 1, pressures
of the two sides of the heating element 21 on tobaccos can be reduced, and tobaccos
proximal to the two sides corresponding to the blade portions 211 may not be subjected
to extrusion or compression, thereby relieving the pressures on tobaccos proximal
to the two sides, and improving atomizing efficiency of tobaccos. The blade portions
211 also can represent a smooth transition, to prevent tobaccos from sticking on the
two sides of the heating element 21.
[0021] The heating element 21 comprises a first surface E and a second surface F opposite
to the first surface E in a thickness direction, and the blade portions 211 comprises
chamfers on edges of the first surface E and the second surface F adjacent to the
first side C, and chamfers on the edges of the first surface E and the second surface
F adjacent to the second side D.
[0022] Each chamfer can be a bevel or a fillet. The edges of the first surface E and the
second surface F adjacent to the first side C are respectively provided with the chamfer,
and the edges of the first surface E and the second surface F adjacent to the second
side D are respectively provided with the chamfer, and the blade portions 211 of the
first side C and the second side D transform the first side C and the second side
D of the heating element 21 to round edges or sharp edges.
[0023] In other embodiments, the blade portions 211 may comprise a chamfer only on the edge
of the first surface E or the second surface F adjacent to the first side C, and a
chamfer only on the edge of the first surface E or the second surface F adjacent to
the second side D, to transform the first side C and the second side D to sharp edges,
so as to facilitate once punch forming.
[0024] Smooth transition, or smooth polishing, or coating a glaze layer of the blade portions
211 on two opposite sides can effectively prevent sticking of tobaccos on the sides,
and relieve accumulation of tobaccos.
[0025] As shown in FIG. 4, the heating element 21 comprises a sheet-shaped substrate 212
made of a metallic material, an insulating layer 213 covered on the sheet-shaped substrate
212, and a conductive path 214 disposed outside the insulating layer 213. The leading
wire 22 is connected to the conductive path 214, and the leading wire 22 is led outwardly.
The conductive path 214 can be supplied with power through the leading wire 22, so
that the conductive path 214 generates heat to atomize tobaccos.
[0026] Preferably, the heating element 21 is made of a metallic or an alloy material, and
the sheet-shaped substrate 212 may use metallic materials, such as stainless steel
or titanium alloy, preferably stainless steel, such as 430 and 304 stainless steel.
A thickness of the sheet-shaped substrate 212 is generally 0.2 to 0.8 mm, and the
sheet-shaped substrate 212 is formed by punch forming or wire cutting, which is low
in cost. The blade portions 211 on the sheet-shaped substrate 212 made of a metallic
material can be formed by punching to further save cost. Dimensions of length, width
and the like of the heating element 21 are fitted with diameter and length of the
cigarette, which facilitates sufficient heating of tobaccos.
[0027] The sheet-shaped substrate 212 made of a metallic material, as a main body of the
heating element 21, has a high toughness, so that fracture of the heating element
21 can be effectively prevented under long-term high temperature and mechanical shock,
such as, cigarette loading, and the like. Meanwhile, the sheet-shaped substrate 212
made of a metallic material has a good thermal conductive performance, which ensures
uniformity of a surface temperature of the heating element 21, and facilitates heating
the non-combustible cigarette to obtain an optimized taste.
[0028] Referring to FIGS. 5 and 7, according to steady state simulation experiments, in
the same temperature fields, the area exceeding 215 degrees Celsius around the heating
element 21 made of stainless steel is larger than that around the heating element
21 made of ceramic such as zirconium oxide and the like, so the atomizing efficiency
of the heating element 21 made of stainless steel is higher, and taste is better.
[0029] Preferably, the first end A of the sheet-shaped substrate 212 is provided with a
sharp head 215 that facilitates inserting into a cigarette 3. The sharp head 215 can
guide insertion of the heating element 21, and reduce a resistant force when inserting.
[0030] In order to satisfy process requirements for printing the conductive path 214 onto
the sheet-shaped substrate 212, the sheet-shaped substrate 212 comprises a flat surface
2121 between the blade portions 211 on the two opposite sides of the heating element
21, and the conductive path 214 is printed in an area of the flat surface 2121. The
blade portions 211 are disposed outwardly by two opposite sides in a width direction
of the flat surface 2121.
[0031] The insulating layer 213 is formed by sintering at 400 to 1000 °C after a surface
of the sheet-shaped substrate 212 is covered by a glass slurry containing silicon
oxide, calcium oxide, and aluminum oxide, and since the sheet-shaped substrate 212
made of a metallic or an alloy material is conductive, the insulating layer 213 can
prevent a short circuit between the sheet-shaped substrate 212 and the conductive
path 214.
[0032] The insulating layer 213 is covered on the sheet-shaped substrate 212 by the way
of spraying or printing, and a thickness of the insulating layer 213 can be designed
according to pressure resistance requirements between the conductive path 214 and
the sheet-shaped substrate 212. Generally, the insulating layer 213 has a thickness
less than 0.1 mm.
[0033] In order to prevent oxidation of the sheet-shaped substrate 212 made of a metallic
material during use in a high temperature, preferably, two sides of the sheet-shaped
substrate 212 are covered with the insulating layer 213. The conductive path 214 is
located on one side of the insulating layer 213. The insulating layer 213 also can
be provided only on one side of the sheet-shaped substrate 212 which the conductive
path 214 is disposed, and when the heating element 21 is made of a non-metallic and
non-conductive material, the insulating layer 213 also can be removed.
[0034] The conductive path 214, as a resistance heater, can be a conductive layer formed
on the insulating layer 213 in a manner of such as physical vapor deposition, or electroplating,
or printing.
[0035] Preferably, the conductive path 214 comprises a heating resistor 2141, and an electrical
connection portion electrically connected to the heating resistor 2141. The heating
resistor 2141 and the electrical connection portion are arranged along a length direction
of the sheet-shaped substrate 212, and conductive electrodes 2142 are connected to
an external circuit. Preferably, the electrical connection portion comprises two conductive
electrodes 2142 electrically connected to the heating resistor 2141.
[0036] The leading wires 22 are connected to the conductive electrodes 2142, and are led
out from one end away from the heating resistor 2141 along a length direction of the
heating element 21, i.e., the heating resistor 2141 and the conductive electrodes
2142 are arranged in a direction from the first end A to the second end B, and the
leading wires 22 are led outwardly from the second end B.
[0037] The heating resistor 2141 can be formed by sintering after printing with any one
of silver-palladium resistance slurry, ruthenium-palladium resistance slurry, platinum
slurry and nickel-based slurry. The heating resistor 2141 can be flexibly patterned,
and an appropriate resistance value desired for the heating element 21 is obtained
in cooperation with the slurry properties and a thickness of the heating resistor
2141. The resistance value of the heating element 21 is usually between 0.3 to 2.0
Ω, and the thickness of the heating resistor 2141 is usually less than 0.1mm, preferably,
less than 20 µm. The conductive electrode 2142 is formed by sintering after printing
with silver-based slurry having a relatively low resistivity.
[0038] When the leading wire 22 is connected to an external power supply, the heating resistor
2141 can be powered to generate heat, and the leading wire 22 can be connected to
the conductive electrodes 2142 by the way of high temperature brazing with silver-copper
solder, or pure silver solder, or nickel solder under a protective atmosphere of 600
to 1100 °C. The leading wire 22 is connected to the conductive electrode 2142 by the
way of tin welding with a high-temperature welding paste, and a use temperature is
greater than 300 °C.
[0039] Since the sheet-shaped substrate 212 made of a metallic material has a good conductivity,
in order to prevent energy loss, through holes 2122 are provided in a section of a
length direction of the sheet-shaped substrate 212 where the conductive electrode
2142 is located. The through holes 2122 can isolate heat, and reduce heat delivered
to the second end B.
[0040] Since the section corresponding to the conductive electrode 2142 has a relatively
low temperature, tobaccos cannot be sufficiently atomized, and tobacco shreds can
store and absorb a certain amount of tobacco tar, so the tobacco tar can be prevented
or reduced from leakage.
[0041] A great temperature gradient exists between the section of the heating element 21
corresponding to the heating resistor 2141 for inserting into tobaccos and that corresponding
to the conductive electrodes 2142, and the section corresponding to the conductive
electrode 2142 has a relatively low temperature and small heat dissipation, which
facilitates effective use of energy.
[0042] In order to isolate the heating resistor 2141 from outside air, and further extend
service life and stability thereof, the heating element 21 further comprises an isolation
layer 216 covered outside the conductive path 214.
[0043] The isolation layer 216 is a glaze layer formed by sintering a glass glaze, and a
thickness is usually less than 0.1 mm thereof. Two sides of the sheet-shaped substrate
212 are covered by the isolation layer 216 respectively. The glaze layer allows a
surface of the heating element 21 to be smooth, and has a small roughness to reduce
adhesion of smoke stains and smoke tar after baking of tobaccos, and facilitate scrubbing.
In other embodiments, the isolation layer 216 also can be covered only on one side
where the conductive path 214 is located.
[0044] Preferably, as shown in FIG. 6, in order to facilitate inserting the heating element
21 into the cigarette 3, a width of the heating element 21 from the first end A to
the second end B gradually increases, so the heating element 21 is in a sword shape;
the first end A is narrow, combining with a thinning structure of the blade portion
211, so that a resistant force is relatively small when the heating element 21 is
inserted, to facilitate insertion, and accumulation of tobaccos on sides of the heating
element 21 also can be effectively reduced. A bottom of the heating element becomes
wider to facilitate increasing strength of the heating element 21, and prevent fracture
of the heating element due to inserting and pulling the cigarette several times.
[0045] Generally, an angle between the two opposite sides in a width direction of the sharp
head 215 is greater than an angle between the two opposite sides in a width direction
of the second end B of the heating element 21. In other embodiments, the heating element
21 also can be a triangle.
[0046] Referring to FIG. 2 again, the mounting base 23 is sleeved on the second end B of
the heating element 21, i.e., sleeved on the end led out of the leading wires 22 of
the heating element 21, and sleeved onto the electrical connection portion. In other
embodiments, the mounting base 23 also can be an individual component, which is separately
mounted on the heating element 21.
[0047] The sharp head 215 is located on one end of the heating element 21 away from the
mounting base 23, and the mounting base 23 and the sharp head 215 are respectively
located on two opposite ends of the heating element 21. After one end of the sharp
head 215 of the heating element 21 is inserted into the sleeve 1, the mounting base
23 abuts against an outer end of the sleeve 1, to define an insertion depth of the
heating element 21.
[0048] Since through holes 2122 are provided in the section of a length direction of the
sheet-shaped substrate 212 where the conductive electrode 2142 is located, transmission
of heat to the second end B is reduced, and excess temperature of the mounting base
23 also can be prevented.
[0049] Since a heating zone is not disposed between an end portion of the second end B where
the mounting base 23 is located and the conductive electrodes 2142, possibility of
producing noxious gas is reduced, and a range of selecting materials of the mounting
base 23 is extensive to reduce cost. Generally, the mounting base is formed by injection
molding using high-molecular polymer, and the commonly used material is polyether-etherketone,
high-temperature nylon and the like.
[0050] It shall be understood that the above respective technical features can be combined
optionally for use without limitation.
[0051] The disclosures are only embodiments of the invention, rather than limiting the extent
of the invention. Any equivalent structures or equivalent flow changes using the specification
and the drawings of the invention, or directly or indirectly application in other
relevant technical fields shall also be included in the extent of protection of the
invention.
1. A baked smoking set, comprising a tubular sleeve (1) and a sheet-shaped heating element
(21) detachably inserted into the sleeve (1), wherein;
the heating element (21) comprises a first side (C) and a second side (D) opposite
to the first side (C) in a width direction, the first side (C) and the second side
(D) are respectively provided with a blade portion (211) that allows a thickness of
the heating element (21) to gradually decrease towards an edge in the width direction,
wherein a central line of the heating element (21) is coaxial with a center of the
sleeve (1), and distances from two opposite sides in the width direction of the heating
element (21) to an inner wall surface of the sleeve (1) respectively are equivalent.
2. The baked smoking set according to claim 1, characterized in that the heating element (21) comprises a first surface (E) and a second surface (F) opposite
to the first surface (E) in a thickness direction;
the blade portions (211) comprises a chamfer on an edge of the first surface (E) and/or
the second surface (F) adjacent to the first side (C), and a chamfer on an edge of
the first surface (E) and/or the second surface (F) adjacent to the second side (D);
each chamfer is a bevel or a fillet.
3. The baked smoking set according to claim 2, characterized in that the chamfers are provided respectively on two opposite sides in a width direction
of the first surface (E) and the second surface (F), and the blade portions (211)
of the first side (C) and the second side (D) transform the first side (C) and the
second side (D) of the heating element (21) to round edges or sharp edges.
4. The baked smoking set according to claim 2, characterized in that the edge of the first surface (E) or the second surface (F) adjacent to the first
side (C) is provided with the chamfer, and the edge of the first surface (E) or the
second surface (F) adjacent to the second side (D) is provided with the chamfer, to
transform the first side (C) and the second side (D) to sharp edges.
5. The baked smoking set according to claim 1, characterized in that one end of the heating element (21) is provided with a sharp head (215) that facilitates
inserting into a cigarette (3).
6. The baked smoking set according to any one of claims 1 to 5, characterized in that the heating element (21) comprises a sheet-shaped substrate (212), an insulating
layer (213) covered on the sheet-shaped substrate (212), and a conductive path (214)
disposed on the insulating layer (213), and the conductive path (214) generates heat
after being powered.
7. The baked smoking set according to claim 6, characterized in that the sheet-shaped substrate (212) is made of a metallic or an alloy material, and
the blade portion (211) is formed by punching.
8. The baked smoking set according to claim 6, characterized in that the sheet-shaped substrate (212) comprises a flat surface (2121) between the blade
portions (211) on the two opposite sides of the heating element (21), and the conductive
path (214) is printed in an area of the flat surface (2121).
9. The baked smoking set according to claim 6, characterized in that the heating element (21) further comprises an isolation layer (216) covered outside
the conductive path (214).
10. The baked smoking set according to claim 9, characterized in that the isolation layer (216) is a glaze layer formed by sintering a glass glaze, and
an outer surface of the heating element (21) is covered by the isolation layer (216).