Gas burners, and cooking appliances equipped with gas burners

JP2026142082APending Publication Date: 2026-09-07RINNAI CORP
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Patent Information

Application Number
JP2025028980
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-02-26
Publication Date
2026-09-07

AI Technical Summary

Benefits of technology

【0018】 このような加熱調理器では、搭載したガスバーナのバーナボディおよびバーナヘッドと温度センサとの相関を安定させることにより、温度センサの検出温度のバラツキを抑制できるので、検出温度に基づいて調理容器の加熱を制御する精度を向上させることが可能となる。

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Abstract

This suppresses variations in temperature detected by a temperature sensor inserted through the central passage of a gas burner, which has an annular burner head mounted on an annular burner body. [Solution] An annular burner head is placed on an annular burner body 13 to which a mixture of fuel gas and air is supplied, with its central axis aligned. The mixture gas is then burned as it is ejected from multiple flame holes opening on the outer circumference of the burner head. A temperature sensor 40 is inserted through a central passage 27 that runs vertically through the center of the burner body and burner head. The upper end of the temperature sensor contacts the bottom surface of a cooking container placed above the burner head to detect the temperature of the cooking container. The temperature sensor is then fixed to the burner body by fixing parts 41, 42, and 44 provided on the burner body, along with its positioning in the central passage.
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Description

Technical Field

[0001] The present invention relates to a gas burner that burns a mixed gas of fuel gas and air and includes a temperature sensor capable of detecting the temperature of an upper cooking container, and a heating cooker equipped with the gas burner.

Background Art

[0002] Gas burners mounted on heating cookers such as gas stoves, which include an annular burner body to which a mixed gas of fuel gas and air is supplied, and an annular burner head placed on the burner body with their central axes aligned, are widely used. By burning the mixed gas ejected from a plurality of flame ports opened on the outer circumference of the burner head, it is possible to heat a cooking container such as a pot placed above the burner.

[0003] Among such gas burners, those provided with a temperature sensor capable of detecting the temperature of a cooking container are known (for example, Patent Document 1). The temperature sensor is inserted through a central passage vertically penetrating the center of the burner body and the burner head, and the upper end of the temperature sensor abuts against the bottom surface of the cooking container, enabling temperature detection. Further, such a temperature sensor is generally installed on a pedestal in the heating cooker where the burner body is installed.

Prior Art Literature

Patent Literature

[0004]

Patent Document 1

Summary of the Invention

Problem to be Solved by the Invention

[0005] However, as mentioned above, when the burner body and temperature sensor are mounted on a base, variations in the manufacturing dimensions of components such as the burner body and temperature sensor, as well as variations in their mounting position on the base, make it difficult to stabilize the correlation between the burner body / burner head and the temperature sensor (aligning the central axes of the burner head and temperature sensor). This results in variations in the radiant heat transmitted from the flame formed on the outer circumference of the burner head to the temperature sensor, leading to variations in the temperature detected by the temperature sensor.

[0006] This invention addresses the aforementioned problems in the prior art and aims to provide a technology that can suppress variations in temperature detected by a temperature sensor inserted through the central passage of a gas burner in which an annular burner head is placed on an annular burner body. [Means for solving the problem]

[0007] To solve the above-mentioned problems, the gas burner of the present invention employs the following configuration: <First aspect> A gas burner comprising an annular burner body to which a mixture of fuel gas and air is supplied, and an annular burner head mounted on the burner body with its central axis aligned, wherein the mixture gas is burned as it is ejected from a plurality of flame holes opened on the outer circumference of the burner head, A temperature sensor is inserted through a central passage that runs vertically through the center of the burner body and the burner head, and its upper end contacts the bottom surface of a cooking container placed above the burner head, thereby enabling the detection of the temperature of the cooking container. A fixing portion is provided on the burner body to fix the temperature sensor to the burner body, along with positioning the temperature sensor in the central passage. It is characterized by being equipped with [the following features].

[0008] In this first embodiment of the gas burner, the temperature sensor is fixed to the burner body by a fixing part directly provided on the burner body, along with its position in the central passage. This allows for more stable correlation between the burner body, burner head, and temperature sensor compared to the case where the fixing part of the temperature sensor is installed on a base on which the burner body is mounted (a base is interposed between the burner body and the fixing part). As a result, differences in radiant heat transmitted from the flame formed on the outer circumference of the burner head to the temperature sensor are less likely to occur, and variations in the temperature detected by the temperature sensor can be suppressed.

[0009] <Second aspect> In the gas burner of the first embodiment, The burner body has a heat dissipation section on its lower surface to promote heat dissipation, The aforementioned fixing portion is provided in the heat dissipation portion. It is characterized by the following:

[0010] In this second embodiment of the gas burner, although the temperature sensor is connected to the burner body via a fixed part, the heat from the burner body is dissipated by the heat dissipation part, thereby reducing heat conduction from the burner body to the temperature sensor. As a result, it is possible to suppress the influence of the temperature rise of the temperature sensor itself on the detected temperature and the deterioration of the temperature sensor due to high temperatures.

[0011] <Third aspect> In the gas burner of the second embodiment, As the heat dissipation section, a plurality of plate-shaped fins are suspended from the lower surface of the burner body. It is characterized by the following:

[0012] In this third embodiment of the gas burner, the surface area of ​​the heat dissipation section can be increased by the multiple fins, thereby promoting heat dissipation from the burner body through thermal radiation.

[0013] <Fourth aspect> In a gas burner of the third embodiment, The plurality of fins are arranged radially around the central passage of the burner body. It is characterized by the following:

[0014] In this fourth embodiment of the gas burner, the combustion of the gas mixture generates an upward airflow in the central passage, which easily creates an airflow from the radial outside of the burner body through the spaces between the fins towards the central passage. This promotes heat dissipation from the fins through thermal convection, thereby further reducing heat conduction to the temperature sensor.

[0015] <Fifth aspect> In any one of the gas burners of the first to fourth embodiments, The burner body comprises a first annular burner body through which the central passage through which the temperature sensor is inserted passes, and a second annular burner body which is larger in diameter than the first burner body and is arranged to surround the outside of the first burner body. The burner head includes a first annular burner head mounted on the first burner body, through which the central passage through which the temperature sensor is inserted passes, and a second annular burner head with a larger diameter than the first burner head, mounted on the second burner body. The fixing portion is provided on the first burner body. It is characterized by the following:

[0016] In this fifth embodiment of the gas burner, since it has a double-ring structure (a so-called parent-child burner) having an inner first burner section on which a first burner head is placed on a first burner body, and an outer second burner section on which a second burner head is placed on a second burner body, the outer diameter of the inner first burner section tends to be small and limited, and because the distance between the flame formed on the outer circumference of the first burner head and the temperature sensor inserted through the central passage is short, the temperature detected by the temperature sensor is easily affected by the radiant heat of the flame. Therefore, by applying the present invention as described above and stabilizing the correlation between the first burner body and the first burner head and the temperature sensor, it is possible to suppress variations in the temperature detected by the temperature sensor.

[0017] <Sixth aspect> The gas burner according to any one of the first to fifth aspects is mounted on a heating cooker, and the heating cooker above is heated by combustion in the gas burner.

[0018] In such a heating cooker, variation in the temperature detected by the temperature sensor can be suppressed by stabilizing the correlation between the burner body and burner head of the mounted gas burner and the temperature sensor, so that it is possible to improve the accuracy of controlling heating of a cooking container based on the detected temperature. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] [Figure 1] It is a perspective view showing the external appearance of a gas stove 1 as an example of a heating cooker equipped with the gas burner 10 of the present embodiment. [Figure 2] It is a perspective view showing an exploded state of the upper part of the gas burner 10 of the present embodiment. [Figure 3] It is a longitudinal sectional view showing the internal structure of the gas burner 10 of the present embodiment. [Figure 4] It is a perspective view showing a configuration for fixing the support pipe 40b of the temperature sensor 40 of the present embodiment. [Figure 5] It is a perspective view showing a state where the support pipe 40b of the temperature sensor 40 of the present embodiment is fixed. MODE FOR CARRYING OUT THE INVENTION

[0020] Figure 1 is a perspective view showing the external appearance of a gas stove 1 as an example of a cooking appliance equipped with the gas burner 10 of this embodiment. The illustrated gas stove 1 comprises a shallow, box-shaped stove body 2 with an open top, and a top plate 3 that rests on the stove body 2 and covers the top surface of the stove body 2. Two gas burners 10 are installed on the left and right sides of the stove body 2, and the upper parts of the gas burners 10 are exposed on the top plate 3 by being inserted through holes formed in the top plate 3. As will be described in detail later, the gas burner 10 of this embodiment is a so-called parent-child burner with a double-ring structure in which a large-diameter annular parent burner part 12 is arranged surrounding the outside of a small-diameter annular child burner part 11.

[0021] On the top plate 3, a trivet 4 is installed for each gas burner 10, above which a cooking container such as a pot is placed. As shown in the figure, the trivet 4 has multiple (five in this embodiment) claws 4b radially supported by an annular frame 4a that surrounds the gas burner 10 and is mounted on the top plate 3. A cooking container is placed on the upper surface of these claws 4b, and the cooking container above is heated by burning a mixture of fuel gas and air in the gas burner 10.

[0022] Furthermore, on the front side of the top plate 3, there are operating knobs 5 corresponding to each of the two gas burners 10, which the user operates when igniting, extinguishing, or adjusting the flame intensity. When the operating knob 5 is pressed down and rotated in a predetermined direction (counterclockwise in this embodiment) from its initial position, fuel gas is supplied to the gas burner 10 and ignited by the spark plug, which will be described later. After that, by changing the rotation angle of the operating knob 5, the amount of fuel gas supplied is changed and the flame intensity of the gas burner 10 can be adjusted. Then, by returning the operating knob 5 to its initial position, the supply of fuel gas to the gas burner 10 is stopped and the flame is extinguished.

[0023] Figure 2 is a perspective view showing the upper part of the gas burner 10 of this embodiment in a disassembled state. As mentioned above, the gas burner 10 of this embodiment is a double-ring structure parent-child burner in which the parent burner part 12 is arranged outside the child burner part 11. As shown in the figure, the child burner part 11 is constructed by placing an annular child burner head 14 on top of an annular child burner body 13, and the child burner body 13 and child burner head 14 of this embodiment are formed by die casting using zinc, aluminum alloy, brass, etc. The child burner body 13 of this embodiment corresponds to the "burner body" and "first burner body" of the present invention, and the child burner head 14 of this embodiment corresponds to the "burner head" and "first burner head" of the present invention. The child burner body 13 and child burner head 14 may also be formed by casting.

[0024] The annular sub-burner body 13 has an annular sub-burner mixing chamber 13c with an open top, formed between the outer peripheral wall 13a and the inner peripheral wall 13b. The gas piping 20 that supplies fuel gas to the gas burner 10 branches into a sub-branch pipe 20a for the sub-burner section 11 and a main branch pipe 20b for the main burner section 12. The fuel gas supplied by the sub-branch pipe 20a is mixed with air as described later, and the mixed gas is supplied to the sub-burner mixing chamber 13c. This sub-burner body 13 is placed on a base 7 provided inside the stove body 2 and fixed with screws or the like.

[0025] The annular sub-burner head 14 has a cylindrical wall 14a that extends downward from its outer edge in a short cylindrical shape, forming its outer circumference, and multiple sub-burner flame holes 14h are opened in this cylindrical wall 14a. In the illustrated example, the sub-burner flame holes 14h are divided into upper and lower sections, with the upper and lower sections of sub-burner flame holes 14h alternating in the circumferential direction of the cylindrical wall 14a.

[0026] On the other hand, the main burner section 12 is constructed by placing an annular main burner head 16 on top of an annular main burner body 15. In this embodiment, the main burner body 15 and the main burner head 16 are formed from die-cast parts made of zinc or aluminum alloy. The main burner body 15 has a larger diameter than the sub-burner body 13, is positioned to surround the outside of the sub-burner body 13, and is detachably attached to the sub-burner body 13. In this embodiment, the main burner body 15 corresponds to the "second burner body" of the present invention, and the main burner head 16 corresponds to the "second burner head" of the present invention.

[0027] The annular main burner body 15 has an annular main burner mixing chamber 15c with an open top, formed between an outer peripheral wall 15a that rises upward from the outer edge and an inner peripheral wall 15b that rises upward from the inner edge. The main burner mixing chamber 15c also has an inlet 15d for the inflow of the mixed gas that opens at the bottom, and as will be described later, the inlet 15d is in communication with the mixing pipe 22.

[0028] In this embodiment, the mixing pipe 22 is formed by sheet metal processing using a thin sheet of stainless steel or the like, with one end communicating with the inlet 15d of the main burner mixing chamber 15c and the other end being open. When fuel gas is injected from the nozzle 21 provided at the tip of the main branch pipe 20b to the open end 22a of the mixing pipe 22, air is drawn in from around the open end 22a by the ejector effect and flows into the mixing pipe 22, and the mixed gas of fuel gas and air that has passed through the mixing pipe 22 is supplied to the main burner mixing chamber 15c.

[0029] The annular main burner head 16 has a cylindrical wall 16a that extends downward from its outer edge in a short cylindrical shape and forms its outer circumference, with multiple main burner flame holes 16h opening in this cylindrical wall 16a. In the illustrated example, the main burner flame holes 16h are divided into upper and lower sections, with the upper and lower sections of main burner flame holes 16h alternating in the circumferential direction of the cylindrical wall 16a.

[0030] Furthermore, the spark plug 17 is installed close to the outer peripheral wall 15a of the main burner body 15, and a canopy portion 16c is provided that extends outward from the upper outer edge of the main burner head 16. When the main burner head 16 is placed on the main burner body 15, the canopy portion 16c covers the top of the spark plug 17. Then, a spark discharge from the spark plug 17 to the main burner head 16 starts the combustion of the mixed gas ejected from the main burner flame hole 16h. In addition, a flame transfer slit 16d, which is a gap for flame transfer in the radial direction, is formed on the upper surface of the main burner head 16. When combustion starts in the main burner flame hole 16h, the flame travels through the flame transfer slit 16d, and the combustion of the mixed gas ejected from the sub-burner flame hole 14h starts.

[0031] A flame sensor 18, consisting of a thermocouple, is installed near the outer peripheral wall 13a of the sub-burner body 13, enabling detection of the flame formed outside the sub-burner flame hole 14h when the sub-burner head 14 is placed on top of the sub-burner body 13. Furthermore, a temperature sensor 40 is installed inserted inside the sub-burner body 13, and the temperature of a cooking container, such as a pot placed on the trivet 4, can be detected by the temperature sensor 40 coming into contact with the cooking container.

[0032] Figure 3 is a longitudinal cross-sectional view showing the internal structure of the gas burner 10 of this embodiment. As described above, the main burner body 15 of the main burner section 12 has an annular main burner mixing chamber 15c with an open top surface formed between the outer peripheral wall 15a and the inner peripheral wall 15b, and the inlet 15d opening at the bottom surface of the main burner mixing chamber 15c and the mixing pipe 22 are connected and in communication by a connecting part 23. Furthermore, when the main burner head 16 is placed on the main burner body 15, a fitting cylinder 16b that is vertically extended downward from the inner edge of the main burner head 16 is fitted inside the inner peripheral wall 15b of the main burner body 15, and the lower end of the cylindrical wall 16a of the main burner head 16 abuts against the upper end of the outer peripheral wall 15a of the main burner body 15, so that the main burner head 16 covers the upper surface of the main burner mixing chamber 15c. The main burner flame hole 16h, which opens in the cylindrical wall 16a of the main burner head 16, is in communication with the main burner mixing chamber 15c. The mixed gas supplied from the mixing pipe 22 to the main burner mixing chamber 15c via the connecting section 23 and the inlet 15d is ejected from the main burner flame hole 16h, and combustion of the mixed gas is started by a spark discharge from the spark plug 17.

[0033] Meanwhile, the sub-burner body 13 of the sub-burner section 11 has an annular sub-burner mixing chamber 13c formed between the outer peripheral wall 13a and the inner peripheral wall 13b, with its upper surface open. In addition, a gas passage 24 is formed, with a sub-branch pipe 20a connected to one end and a nozzle 25 connected to the other end, and a mixing passage 26 is formed, with one end opening opposite the nozzle 25 and the other end connected to the sub-burner mixing chamber 13c. When fuel gas is injected from the nozzle 25 towards the mixing passage 26 through the sub-branch pipe 20a and the gas passage 24, ambient air is drawn in by the ejector effect and flows into the mixing passage 26, and the mixed gas of fuel gas and air that has passed through the mixing passage 26 is supplied to the sub-burner mixing chamber 13c.

[0034] In addition, when the sub-burner head 14 is placed on the sub-burner body 13, a fitting cylinder 14b that extends downward in a cylindrical shape from the inner edge of the sub-burner head 14 is fitted inside the inner circumferential wall 13b of the sub-burner body 13, and the lower end of the cylindrical wall 14a of the sub-burner head 14 abuts against the upper end of the outer circumferential wall 13a of the sub-burner body 13, so that the sub-burner head 14 covers the upper surface of the sub-burner mixing chamber 13c. The sub-burner flame hole 14h that opens in the cylindrical wall 14a of the sub-burner head 14 is in communication with the sub-burner mixing chamber 13c, and the mixed gas supplied to the sub-burner mixing chamber 13c through the mixing passage 26 is ejected from the sub-burner flame hole 14h, and as described above, the flame from the main burner flame hole 16h travels through the ignition slit 16d, initiating combustion of the mixed gas.

[0035] Furthermore, a central passage 27 is formed that penetrates vertically through the center of the child burner body 13 (inside the inner peripheral wall 13b) and the center of the child burner head 14 (inside the fitting cylinder 14b), and a temperature sensor 40 is inserted through this central passage 27. The temperature sensor 40 has a contact portion 40a that protrudes above the child burner head 14, and a support pipe 40b to which the contact portion 40a is attached so as to be vertically movable on its upper end, both of which are made of a metal material such as stainless steel. The contact portion 40a contains a thermistor 40c as a temperature conversion element whose electrical resistance changes according to temperature, and a coil spring 40d that biases the contact portion 40a upward, and a lead wire 40e connected to the thermistor 40c is inserted inside the support pipe 40b. When a cooking container is placed on the trivet 4, the upper end of the contact portion 40a comes into contact with the bottom surface of the cooking container, and the contact portion 40a is pushed down against the biasing force of the coil spring 40d. The temperature transmitted to the upper end of the contact portion 40a in contact with the bottom surface of the cooking container can be detected by the thermistor 40c.

[0036] In conventional gas burners 10, the support pipe 40b for the temperature sensor 40 is typically installed on a base 7 inside the stove body 2. Since the sub-burner body 13 and the support pipe 40b are each attached to the base 7, variations in the manufacturing dimensions of components such as the sub-burner body 13 and the temperature sensor 40, as well as variations in the assembly position relative to the base 7, made it difficult to stabilize the correlation between the sub-burner section 11 (sub-burner body 13 and sub-burner head 14) and the temperature sensor 40 (aligning the central axes of the sub-burner head 14 and the temperature sensor 40). Furthermore, the radiant heat transmitted from the flame formed on the outer circumference of the sub-burner head 14 to the contact portion 40a of the temperature sensor 40 differs, resulting in variations in the temperature detected by the thermistor 40c of the temperature sensor 40. Therefore, in the gas burner 10 of this embodiment, in order to suppress variations in the temperature detected by the temperature sensor 40 inserted through the central passage 27, the support pipe 40b of the temperature sensor 40 is fixed in the following configuration.

[0037] Figure 4 is a perspective view showing the configuration for fixing the support pipe 40b of the temperature sensor 40 in this embodiment. In Figure 4, the sub-burner body 13 is shown upside down so that the bottom surface of the sub-burner body 13 is visible, and accordingly, the contact portion 40a of the temperature sensor 40 is positioned facing downwards, showing the state before the support pipe 40b is fixed. Note that, in order to avoid making the illustration complicated, the mixing pipe 22, sub-branch pipe 20a, and main burner body 15 are omitted from the illustration in Figure 4.

[0038] As shown in the figure, four legs 30 are provided protruding from the lower surface of the sub-burner body 13 in this embodiment, and these legs 30 are screwed in while in contact with the upper surface of the base 7 (see Figure 2) inside the stove body 2. In addition, a plurality of plate-shaped fins 31 are suspended from the lower surface of the sub-burner body 13. These plurality of fins 31 are formed together with the sub-burner body 13 by die-casting or casting using zinc, aluminum alloy, brass, etc., and a large surface area can be secured on the lower surface of the sub-burner body 13, thereby promoting heat dissipation from the sub-burner body 13 by thermal radiation and functioning as a so-called heat sink. Note that the plurality of fins 31 may be formed from a different material than the sub-burner body 13.

[0039] Furthermore, in the sub-burner body 13 of this embodiment, multiple fins 31 are arranged radially around the central passage 27. As is well known, when the mixed gas is burning in the sub-burner section 11, an upward airflow is generated in the central passage 27, and as a result, an airflow is easily generated from the radial outside of the sub-burner body 13, passing between the multiple fins 31 and toward the central passage 27. Therefore, heat can be more effectively dissipated from the multiple fins 31 by thermal convection.

[0040] Then, a fixing plate 41 for fixing the support pipe 40b of the temperature sensor 40 is attached to the fins 31 of the child burner body 13. As shown in the figure, the fixing plate 41 is provided with screw holes 32 corresponding to fixing screws 43 and two protrusions 33 that protrude from the fins 31. On the other hand, the fixing plate 41 is provided with through holes 41a for inserting the fixing screws 43 and two notches 41b corresponding to each of the two protrusions 33. By engaging the two notches 41b of the fixing plate 41 with the two protrusions 33, inserting the fixing screws 43 through the through holes 41a, and tightening them into the screw holes 32, the fixing plate 41 is installed in a state where it is positioned at three points relative to the child burner body 13.

[0041] Furthermore, a mounting plate 42, which is integrated with the fixing plate 41, is bent approximately perpendicular to the fixing plate 41, and a retaining plate 44 is provided between the mounting plate 42 and the retaining plate 44 to clamp the support pipe 40b of the temperature sensor 40. The mounting plate 42 has a clamping groove 42a formed vertically, which is a recess with a cross-sectional shape of approximately semicircular, and on the left and right sides of the clamping groove 42a are engagement holes 42c that open to approximately rectangular shapes and screw holes 42d that correspond to fixing screws 45. On the other hand, the retaining plate 44 has a clamping groove 44a formed vertically, which is a recess with a cross-sectional shape of approximately semicircular, and on the left and right sides of the clamping groove 44a are engagement claws 44c that protrude toward the mounting plate 42 and through holes 44d through which fixing screws 45 are inserted.

[0042] The support pipe 40b is positioned by sandwiching it between the clamping groove 42a of the mounting plate 42 and the clamping groove 44a of the retaining plate 44. The retaining plate 44's engaging claws 44c are then engaged with the engaging hole 42c of the mounting plate 42, and a fixing screw 45 is inserted through the through hole 44d and tightened into the screw hole 42d, thereby fixing the support pipe 40b to the fixing plate 41. At this time, the circumferential protrusions 40f provided on the outer circumference of the support pipe 40b can be fitted into the elongated holes 42b formed perpendicular to the clamping groove 42a and the elongated holes 44b formed perpendicular to the clamping groove 44a, thereby allowing the support pipe 40b to be positioned vertically.

[0043] Figure 5 is a perspective view showing the state in which the support pipe 40b of the temperature sensor 40 in this embodiment is fixed. In Figure 5, as in Figure 4, the image is shown upside down so that the lower surface of the child burner body 13 is visible, and hatching is applied to the fixing plate 41 and mounting plate 42. As described above, the support pipe 40b is clamped between the clamping groove 42a of the mounting plate 42 and the clamping groove 44a of the retaining plate 44, and the fixing plate 41, which is integrated with the mounting plate 42, is installed while being positioned at three points (fixing screws 43 and two protrusions 33) relative to the child burner body 13. As a result, the temperature sensor 40 is fixed to the child burner body 13 along with its position in the central passage 27. Note that the fixing plate 41, mounting plate 42, and retaining plate 44 in this embodiment correspond to the "fixing part" of the present invention.

[0044] In this embodiment of the gas burner 10, the temperature sensor 40 is fixed to the sub-burner body 13 by a fixing plate 41 directly installed on the sub-burner body 13, along with its position in the central passage 27. This stabilizes the correlation between the sub-burner body 13 and sub-burner head 14 and the temperature sensor 40 compared to the case where the fixing part of the temperature sensor 40 is installed on the base 7 on which the sub-burner body 13 is installed (the base 7 is interposed between the sub-burner body 13 and the fixing part). As a result, differences in radiant heat transmitted from the flame formed on the outer circumference of the sub-burner head 14 to the contact part 40a of the temperature sensor 40 are less likely to occur, and variations in the temperature detected by the thermistor 40c of the temperature sensor 40 can be suppressed.

[0045] Furthermore, in the gas burner 10 of this embodiment, multiple fins 31 are provided on the lower surface of the sub-burner body 13 as a heat sink to promote heat dissipation, and a fixing plate 41 is installed on these fins 31. The multiple fins 31 ensure a large surface area on the lower surface of the sub-burner body 13, thereby promoting heat dissipation from the sub-burner body 13 by thermal radiation. Although the temperature sensor 40 is connected to the sub-burner body 13 via the fixing plate 41 and fins 31, the heat from the sub-burner body 13 is dissipated by the multiple fins 31, thereby reducing heat conduction from the sub-burner body 13 to the temperature sensor 40. As a result, it is possible to suppress the influence of the temperature rise of the temperature sensor 40 itself on the detected temperature and the deterioration of the temperature sensor 40 due to high temperatures.

[0046] In particular, in the gas burner 10 of this embodiment, multiple fins 31 are arranged radially around the central passage 27. This arrangement makes it easier for an upward airflow to be generated in the central passage 27 when the mixed gas is burned in the sub-burner section 11, causing an airflow to be generated from the radial outside of the sub-burner body 13 through the spaces between the multiple fins 31 toward the central passage 27. This promotes heat dissipation from the multiple fins 31 by thermal convection, thereby further reducing heat conduction to the temperature sensor 40.

[0047] Although the gas burner 10 of this embodiment has been described above, the present invention is not limited to the above embodiment and can be implemented in various forms without departing from the spirit of the invention.

[0048] For example, in the embodiment described above, a plurality of plate-shaped fins 31 were provided on the lower surface of the sub-burner body 13 as a heat sink (heat dissipation part). However, the configuration of the heat sink is not limited to this, and a plurality of needle-shaped protrusions (pins) may be provided on the lower surface of the sub-burner body 13. By providing a plurality of pins, a large surface area can be secured on the lower surface of the sub-burner body 13, thereby promoting heat dissipation from the sub-burner body 13 by thermal radiation. In addition, heat dissipation from the sub-burner body 13 may be promoted by applying a heat-dissipating paint or plating film to the lower surface of the sub-burner body 13.

[0049] Furthermore, in the embodiment described above, the fixing plate 41 was attached to the fins 31 of the sub-burner body 13 by screw fastening. However, the fixing plate 41 may be integrally formed with the fins 31 of the sub-burner body 13 by die casting or the like. In addition, in the embodiment described above, the support pipe 40b of the temperature sensor 40 was sandwiched between the mounting plate 42 and the retaining plate 44. However, the support pipe 40b may be joined to the fixing plate 41 by welding or the like.

[0050] Furthermore, in the embodiment described above, screw holes 32 and projections 33 were integrally provided with the multiple fins 31 on the lower surface of the sub-burner body 13. However, the screw holes 32 and projections 33 may be provided independently between the fins 31. In addition, in the embodiment described above, the multiple fins 31 were formed together with the sub-burner body 13 by die casting. However, a separate member on which the multiple fins 31 are formed may be joined to the lower surface of the sub-burner body 13.

[0051] Furthermore, in the embodiments described above, a gas burner 10 with a double-ring structure (a so-called parent-child burner) was explained as an example, in which a large-diameter annular parent burner section 12 is arranged surrounding the outside of a small-diameter annular child burner section 11. However, a gas burner with an upper and lower two-stage structure (a so-called parent-child burner) may also be used, in which an annular parent burner section of approximately the same diameter is arranged above the annular child burner section. Moreover, the application of the present invention is not limited to parent-child burners, and a type without a parent burner section 12 (a so-called single burner) may also be used. However, in a parent-child burner with a double-ring structure, the outer diameter of the inner child burner section 11 tends to be small and limited, and because the distance between the flame formed on the outer circumference of the child burner head 14 and the contact portion 40a of the temperature sensor 40 inserted through the central passage 27 is short, the temperature detected by the temperature sensor 40 is easily affected by the radiant heat of the flame. Therefore, as in the embodiments described above, by applying the present invention to stabilize the correlation between the child burner body 13 and child burner head 14 and the temperature sensor 40, it becomes possible to suppress variations in the temperature detected by the temperature sensor 40. [Explanation of symbols]

[0052] 1...Gas stove, 2...Stove body, 3...Top plate, 4... Trivet, 5... Control knob, 7... Base, 10...Gas burner, 11...Child burner section, 12...Main burner section 13...Sub-burner body, 13a...Outer wall, 13b...Inner wall 13c... Sub-burner mixing chamber, 14... Sub-burner head, 14a... Cylindrical wall, 14b... Fitting cylinder, 14h... Sub-burner flame hole, 15... Main burner body, 15a...Outer wall, 15b...Inner wall, 15c...Main burner mixing chamber, 15d...Inlet, 16...Main burner head, 16a...Cylindrical wall 16b... Fitting cylinder, 16c... Visor, 16d... Slit 16h... Main burner flame hole, 17... Spark plug, 18... Flame sensor, 20...Gas piping, 20a...Sub-branch piping, 20b...Main branch piping, 21...Nozzle, 22...Mixing tube, 22a...Open end, 23...Connecting section, 24...Gas passage, 25...Nozzle, 26...Mixing aisle, 27...Central aisle, 30...Legs, 31...Fin, 32...Screw hole, 33...Protrusion 40...Temperature sensor, 40a...Contact part, 40b...Support pipe, 40c...Thermistor, 40d...Coil spring, 40e...Lead wire 40f... protrusion, 41... fixing plate, 41a... through hole, 41b...notch, 42...mounting plate, 42a...gripping groove, 42b... elongated hole, 42c... engagement hole, 42d... screw hole, 43... Fixing screw, 44... Pressing plate, 44a... Clamping groove, 44b…Slotted hole, 44c…Engaging claw, 44d…Through hole 45... Fixing screws.

Claims

1. A gas burner comprising an annular burner body to which a mixture of fuel gas and air is supplied, and an annular burner head mounted on the burner body with its central axis aligned, wherein the mixture gas is burned as it is ejected from a plurality of flame holes opened on the outer circumference of the burner head, A temperature sensor is inserted through a central passage that runs vertically through the center of the burner body and the burner head, and its upper end contacts the bottom surface of a cooking container placed above the burner head, thereby enabling the detection of the temperature of the cooking container. A fixing portion is provided on the burner body to fix the temperature sensor to the burner body, along with positioning the temperature sensor in the central passage. A gas burner characterized by having the following features.

2. In the gas burner according to claim 1, The burner body has a heat dissipation section on its lower surface to promote heat dissipation, The aforementioned fixing portion is provided in the heat dissipation portion. A gas burner characterized by the following features.

3. In the gas burner according to claim 2, As the heat dissipation section, a plurality of plate-shaped fins are suspended from the lower surface of the burner body. A gas burner characterized by the following features.

4. In the gas burner according to claim 3, The plurality of fins are arranged radially around the central passage of the burner body. A gas burner characterized by the following features.

5. In a gas burner according to any one of claims 1 to 4, The burner body comprises a first annular burner body through which the central passage through which the temperature sensor is inserted passes, and a second annular burner body which is larger in diameter than the first burner body and is arranged to surround the outside of the first burner body. The burner head includes a first annular burner head mounted on the first burner body, through which the central passage through which the temperature sensor is inserted passes, and a second annular burner head with a larger diameter than the first burner head, mounted on the second burner body. The aforementioned fixing portion is provided on the first burner body. A gas burner characterized by the following features.

6. A cooking appliance equipped with a gas burner according to any one of claims 1 to 4, which heats the cooking container above by combustion from the gas burner.

Citation Information

Patent Citations

  • Gas burner for stove and heating cooker

    JP2024102767A