Ionization heater

The ionization heater's innovative groove and leaf spring connection method allows for miniaturization without reducing reliability by reducing mechanical tension, ensuring stable connections.

JP7735897B2Active Publication Date: 2025-09-09SHIMADZU SEISAKUSHO LTD
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Patent Information

Application Number
JP2022028503
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-25
Publication Date
2025-09-09
Estimated Expiration
2042-02-25

AI Technical Summary

Technical Problem

Miniaturization of ionization heaters in mass spectrometers leads to increased susceptibility of the connection between the heating wire and voltage supply electrode to breakage, reducing reliability.

Method used

An ionization heater design featuring a bobbin with a groove for fitting the electrode, allowing the electrode to slide axially and be connected by welding, with a leaf spring for radial deformation, reducing mechanical tension and preventing breakage.

Benefits of technology

The design enables a smaller ionization heater without compromising reliability by minimizing connection breakage between the heating wire and electrode.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an ionization heater that can be downsized without lowering reliability.SOLUTION: An ionization heater is used to generate ions from a sample. An ionization heater 100 includes a bobbin 10, a heating wire 20, and electrodes 30. The bobbin 10 extends in one direction. The heating wire 20 is wound around the bobbin 10. The electrodes 30 are welded to the heating wire 20. Grooves 13 are formed in the bobbin 10 along one direction. The electrodes 30 are fitted into the grooves 13, respectively.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present invention relates to an ionization heater. [Background technology]

[0002] Mass spectrometers are equipped with an ionization device that generates ions from a sample to be analyzed. For example, Patent Document 1 describes a mass spectrometer equipped with a heater and an ionization probe. An assist gas heated by the heater is supplied to the liquid sample sprayed from the ionization probe, causing the organic solvent in the liquid sample to vaporize. This improves the ionization efficiency of the liquid sample. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent Publication No. 2021-89227 Summary of the Invention [Problem to be solved by the invention]

[0004] In recent years, with the miniaturization of mass spectrometers, there has been a demand for miniaturization of ionization devices. In this case, it is necessary to miniaturize the heater used for ionization. However, it has been found that miniaturizing the heater makes the connection between the heating wire and the voltage supply electrode more susceptible to breakage, thereby reducing reliability.

[0005] An object of the present invention is to provide an ionization heater that can be made smaller without reducing reliability. [Means for solving the problem]

[0006] One aspect of the present invention relates to an ionization heater that generates ions from a sample, the ionization heater having a bobbin extending in one direction, a heating wire wound around the bobbin, and an electrode welded to the heating wire, wherein a groove portion is formed in the bobbin along the one direction, and the electrode is fitted into the groove portion. [Effects of the Invention]

[0007] According to the present invention, the ionization heater can be made smaller without reducing reliability. [Brief explanation of the drawings]

[0008] [Figure 1] 1 is a schematic diagram showing a configuration of a mass spectrometer including a heater according to an embodiment of the present invention. [Figure 2] FIG. 2 is a schematic perspective view showing the configuration of a heater. [Figure 3] FIG. 3 is a plan view of the heater of FIG. 2. [Figure 4] FIG. 2 is a plan view showing the configuration of a leaf spring. [Figure 5] FIG. 4 is a side view showing the configuration of a leaf spring. DETAILED DESCRIPTION OF THE INVENTION

[0009] (1)Mass spectrometer An ionization heater (hereinafter simply referred to as a heater) according to an embodiment of the present invention will be described in detail below with reference to the drawings. Figure 1 is a schematic diagram showing the configuration of a mass spectrometer including a heater according to an embodiment of the present invention. As shown in Figure 1, a mass spectrometer 200 includes a heater 100, a vacuum vessel 110, an ionizer 120, ion guides 130 and 140, a mass filter 150, and a detector 160.

[0010] Inside the vacuum vessel 110, an ionization chamber 111, a vacuum chamber 112, a vacuum chamber 113, and a vacuum chamber 114 are arranged in this order from upstream to downstream. The degree of vacuum inside the vacuum vessel 110 increases from upstream to downstream. Therefore, the degree of vacuum in the ionization chamber 111 is the lowest, and the degree of vacuum in the vacuum chamber 114 is the highest. For example, the pressure in the ionization chamber 111 is approximately atmospheric pressure, and the pressure in the vacuum chamber 114 is 10 -2 ~10 -3 It is Pa.

[0011] The ionization chamber 111 and the vacuum chamber 112 are separated by a partition wall 170. A desolvation tube 171 is provided in the partition wall 170. The vacuum chamber 112 and the vacuum chamber 113 are separated by a partition wall 180. A skimmer cone 181 is provided in the partition wall 180. The vacuum chamber 113 and the vacuum chamber 114 are separated by a partition wall 190. A hole 191 is provided in the partition wall 190.

[0012] The ionization device 120 is an ionization probe such as an ESI (Electrospray Ionization) probe. The ionization device 120 is attached to the ionization chamber 111. A liquid sample is introduced into the ionization device 120 from a liquid chromatograph or the like. A nebulizer gas such as nitrogen gas is also introduced into the ionization device 120. The ionization device 120 uses the nebulizer gas to spray the sample into the ionization chamber 111 while imparting an electric charge to the sample.

[0013] The heater 100 is attached to the ionization chamber 111. A heating gas such as clean air is introduced into the heater 100. The heater 100 supplies the heating gas to the sample from the nozzle 101 while heating it. This promotes desolvation of the sprayed sample, and the components in the sample are ionized in the ionization chamber 111. Normally, singly charged ions of each component are generated. Details of the heater 100 will be described later.

[0014] The ion guides 130 and 140 are disposed in the vacuum chambers 112 and 113, respectively. Ions generated in the ionization chamber 111 are guided to the vacuum chamber 112 through a desolvation tube 171 in a partition wall 170. The ions that have reached the vacuum chamber 112 are guided by the ion guide 130 to the vacuum chamber 113 through a skimmer cone 181 in a partition wall 180. The ions that have reached the vacuum chamber 113 are guided by the ion guide 140 to the vacuum chamber 114 through a hole 191 in a partition wall 190.

[0015] The mass filter 150 is, for example, a quadrupole mass filter including four rod electrodes, and is arranged in the vacuum chamber 114. Of the ions that reach the vacuum chamber 114, the mass filter 150 allows only ions that have a specific mass-to-charge ratio corresponding to the voltage applied to the rod electrodes to fly and pass through. The detector 160 is, for example, an electron multiplier, and is arranged in the vacuum chamber 114 so as to be located downstream from the mass filter 150. The detector 160 detects ions that have passed through the mass filter 150. The ion detection results are used, for example, to generate a mass spectrum.

[0016] (2) Heater FIG. 2 is a schematic perspective view showing the configuration of the heater 100. As shown in FIG. 2, the heater 100 includes a bobbin 10, a heating wire 20, and a pair of electrodes 30. The bobbin 10 is a tubular member extending in one direction, and in this example has a substantially cylindrical shape. In the following description, in the heater 100, the direction in which the bobbin 10 extends is referred to as the axial direction, and the direction perpendicular to the axial direction is referred to as the radial direction. Furthermore, in a cross section perpendicular to the axial direction, the direction along the outer circumferential surface of the bobbin 10 is referred to as the circumferential direction.

[0017] The bobbin 10 is made of a heat-resistant and insulating material. The bobbin 10 preferably has a heat resistance of 1000°C or higher. In this example, the bobbin 10 is made of ceramic. The heating wire 20 is wound around the outer periphery of the bobbin 10. The heating wire 20 is preferably made of a material with high heat generation properties. In this example, the heating wire 20 is nichrome wire. Both ends of the heating wire 20 are electrically connected to a pair of electrodes 30, respectively.

[0018] The pair of electrodes 30 are attached to both ends of the bobbin 10, respectively, and are drawn outward in the axial direction from both ends of the bobbin 10. The heater 100 is operated by supplying a voltage to the pair of electrodes 30 from a power source, thereby heating the heating gas introduced therein.

[0019] FIG. 3 is a plan view of the heater 100 of FIG. 2. As shown in FIG. 3, the bobbin 10 has a pair of flanges 11 and a pair of flanges 12. Each of the flanges 11 and 12 has a circular outer edge. Each of the flanges 11 is an example of a first flange. Each of the flanges 12 is an example of a second flange.

[0020] A pair of flanges 11 surround the outer peripheral surface of both ends of the bobbin 10. Each flange 11 has a groove 13 formed along the axial direction. One flange 12 surrounds the outer peripheral surface of a portion spaced a predetermined distance axially from one end of the bobbin 10. The other flange 12 surrounds the outer peripheral surface of a portion spaced a predetermined distance axially from the other end of the bobbin 10.

[0021] A cylindrical winding region 14 is provided between the pair of flanges 12 of the bobbin 10. A heating wire 20 is wound around the winding region 14. In this example, the diameter of the winding region 14 is larger than the diameter of each flange 12, but the embodiment is not limited to this. The diameter of the winding region 14 may be smaller than or equal to the diameter of the flange 12. A cylindrical electrode region 15 is provided between the flanges 11, 12 at each end of the bobbin 10. The diameter of each electrode region 15 is smaller than the diameter of the flange 11 and the diameter of the flange 12.

[0022] Each electrode 30 includes a connection terminal 31 and a leaf spring 32. The configuration of one electrode 30 will be described below, but the configuration of the other electrode 30 is similar. The connection terminal 31 has a pin shape extending in the axial direction. FIG. 4 is a plan view showing the configuration of the leaf spring 32. FIG. 5 is a side view showing the configuration of the leaf spring 32. As shown in FIGS. 4 and 5, the leaf spring 32 includes a clamping portion 32a and a protruding portion 32b.

[0023] The clamping portion 32a is a curved member having a C-shaped cross section. In the axial direction, the width of the clamping portion 32a is smaller than the width of the electrode region 15 of the bobbin 10 in FIG. 3 (the distance between the flanges 11 and 12). The inner diameter (radius of curvature) of the clamping portion 32a is slightly larger than the outer diameter of the electrode region 15. In the example of FIG. 5, both end portions of the clamping portion 32a are folded back outward in the circumferential direction, but the embodiment is not limited to this.

[0024] The protruding portion 32b has a generally flat plate shape and protrudes in the axial direction from a generally central portion of the end face of the clamping portion 32a. In the circumferential direction, the width of the clamping portion 32a is slightly smaller than the width of the groove portion 13 of the flange 11 in Fig. 3. In the example of Fig. 4, the tip of the protruding portion 32b is formed wide, but the embodiment is not limited to this.

[0025] The protrusion 32b is fitted into the groove 13 of the flange 11. In this state, the clamping portion 32a clamps the electrode area 15 of the bobbin 10 so as to abut against the electrode area 15. This attaches the leaf spring 32 to the end of the bobbin 10. The end of the heating wire 20 is connected to the outer circumferential surface of the clamping portion 32a and the protrusion 32b by welding. In this example, the heating wire 20 contacts the bobbin 10 without floating in the air, except for the contact portion with the leaf spring 32. The tip of the protrusion 32b is connected to the base end of the connection terminal 31 by welding. The tip of the connection terminal 31 is connected to a power source for supplying voltage via a cable (not shown).

[0026] (3) Effects In the heater 100 according to this embodiment, the electrode 30 is connected to the heating wire 20 by welding. Therefore, unlike when the electrode 30 is connected to the heating wire 20 by screws or the like, no twisting occurs at the connection portion between the heating wire 20 and the electrode 30.

[0027] Furthermore, since the electrode 30 is fitted into the groove 13 along the axial direction of the bobbin 10, it has a degree of freedom to slide in the axial direction. This reduces the mechanical axial tension applied to the connection between the heating wire 20 and the electrode 30. Therefore, even if the heater 100 is small, the possibility of breakage in the connection between the heating wire 20 and the electrode 30 is reduced. As a result, the heater 100 can be made smaller without reducing reliability.

[0028] The electrode 30 also includes a leaf spring 32 attached to the bobbin 10. In this case, the leaf spring 32 is free to deform in the radial direction. This reduces the mechanical radial tension applied to the connection between the heating wire 20 and the electrode 30. This further reduces the possibility of breakage in the connection between the heating wire 20 and the electrode 30. As a result, the heater 100 can be made smaller while still improving reliability.

[0029] Here, leaf spring 32 includes a clamping portion 32a that clamps bobbin 10, and a protruding portion 32b that protrudes axially from clamping portion 32a and is fitted into groove 13. Bobbin 10 has a cylindrical shape, and clamping portion 32a has a C-shaped cross section that abuts against the outer circumferential surface of bobbin 10. In this case, electrode 30 can be easily attached to bobbin 10 with being fitted into groove 13.

[0030] The heating wire 20 contacts the bobbin 10 without floating, except for the contact portion with the electrode 30. In this case, local temperature drops in the heating wire 20 are reduced, making the temperature distribution of the heating wire 20 more uniform. This prevents thermal tension from being applied to the connection portion between the heating wire 20 and the electrode 30. This further reduces the possibility of breakage in the connection portion between the heating wire 20 and the electrode 30. As a result, the heater 100 can be made smaller while further improving reliability.

[0031] A flange 11 is formed at the end of the bobbin 10, and the groove 13 is formed in the flange 11. In this case, the flange 11 prevents the electrode 30 from falling off the end of the bobbin 10. This allows the electrode 30 to be stably attached to the bobbin 10.

[0032] Furthermore, a flange 12 is formed at a portion spaced a predetermined distance in the axial direction from the end of the bobbin 10, and the electrode 30 is attached to an electrode region 15 between the flanges 11 and 12 while being fitted into a groove 13 of the flange 11. In this case, the sliding range of the electrode 30 is restricted by the flanges 11 and 12. This allows the electrode 30 to be attached to the bobbin 10 more stably.

[0033] (4) Other embodiments (a) In the above embodiment, the electrode 30 includes the connection terminal 31, but the embodiment is not limited to this. The electrode 30 does not have to include the connection terminal 31. In this case, a cable from a power source may be connected to the leaf spring 32 by welding or the like.

[0034] (b) In the above embodiment, the bobbin 10 has a flange 12, but the embodiment is not limited to this. The bobbin 10 does not have to have a flange 12. Also, the bobbin 10 has a flange 11, but the embodiment is not limited to this. The bobbin 10 does not have to have a flange 11. In this case, the groove portion 13 may be formed on the outer peripheral surface of the bobbin 10.

[0035] (c) As illustrated in the above embodiment, it is preferable that grooves 13 are formed at both ends of the bobbin 10 and that a pair of electrodes 30 are fitted into the grooves 13 at both ends of the bobbin 10, but the embodiment is not limited to this. Groove 13 may be formed at only one end of the bobbin 10 and only one electrode 30 may be fitted into the groove 13 of the bobbin 10.

[0036] (d) In the above embodiment, the pair of electrodes 30 are respectively drawn outward in the axial direction from both ends of the bobbin 10, but the embodiment is not limited to this. The pair of electrodes 30 may also be drawn outward in the axial direction from one end of the bobbin 10.

[0037] (5) Mode It will be appreciated by those skilled in the art that the above exemplary embodiments are examples of the following aspects.

[0038] (Item 1) An ionization heater according to one aspect includes: An ionization heater used for ionizing a sample, A bobbin extending in one direction; a heating wire wound around the bobbin; an electrode to be welded to the heating wire; The bobbin is formed with a groove extending in the one direction, The electrode may be fitted into the groove.

[0039] In this ionization heater, the electrodes are connected to the heating wire by welding. Therefore, unlike when the electrodes are connected to the heating wire by screws or the like, no twisting occurs at the connection between the heating wire and the electrode. Furthermore, because the electrodes are fitted into grooves that run along one direction of the bobbin, they have the freedom to slide in an axial direction parallel to that direction. This reduces the mechanical axial tension applied to the connection between the heating wire and the electrode. Therefore, even if the ionization heater is small, the possibility of the connection between the heating wire and the electrode breaking is reduced. As a result, the ionization heater can be made smaller without reducing reliability.

[0040] (Item 2) In the ionization heater described in item 1, The electrode may include a leaf spring attached to the bobbin.

[0041] In this case, the leaf spring has a degree of freedom to deform in a radial direction that intersects one direction. This reduces the mechanical radial tension applied to the connection between the heating wire and the electrode. This further reduces the possibility of the connection between the heating wire and the electrode breaking. As a result, the ionization heater can be made smaller while still improving reliability.

[0042] (Item 3) In the ionization heater described in item 2, The leaf spring is a holding portion that holds the bobbin; The clamping portion may further include a protrusion that protrudes in the one direction from the clamping portion and is fitted into the groove.

[0043] In this case, the electrode can be easily attached to the bobbin while being fitted into the groove.

[0044] (4) In the ionization heater according to the third aspect, The bobbin has a cylindrical shape, The clamping portion may have a cross section that is C-shaped and abuts against the outer peripheral surface of the bobbin.

[0045] In this case, the electrodes can be more easily attached to the bobbin.

[0046] (Item 5) In the ionization heater according to any one of items 1 to 4, The heating wire may be in contact with the bobbin without floating in the air, except for the portion in contact with the electrode.

[0047] In this case, local temperature drops in the heating wire are reduced, making the temperature distribution of the heating wire more uniform. This prevents thermal tension from being applied to the connection between the heating wire and the electrode. This further reduces the possibility of breakage at the connection between the heating wire and the electrode. As a result, the ionization heater can be made smaller while further improving reliability.

[0048] (Item 6) In the ionization heater according to any one of items 1 to 5, A first flange is formed on an end of the bobbin, The groove may be formed in the first flange.

[0049] In this case, the first flange prevents the electrode from falling off the end of the bobbin, thereby enabling the electrode to be stably attached to the bobbin.

[0050] (7) In the ionization heater according to the 6th aspect, a second flange is formed at a portion of the bobbin spaced a predetermined distance from the end in the one direction; The electrode may be attached to the region between the first flange and the second flange in a state where the electrode is fitted into the groove of the first flange.

[0051] In this case, the sliding range of the electrode is restricted by the first flange and the second flange, which allows the electrode to be attached to the bobbin more stably. [Explanation of symbols]

[0052] 10... bobbin, 11, 12... flange, 13... groove portion, 14... winding region, 15... electrode region, 20... heating wire, 30... electrode, 31... connection terminal, 32... leaf spring, 32a... clamping portion, 32b... protrusion, 100... heater, 101... nozzle, 110... vacuum vessel, 111... ionization chamber, 112-114... vacuum chamber, 120... ionization device, 130, 140... ion guide, 150... mass filter, 160... detector, 170, 180, 190... partition, 171... desolvation tube, 181... skimmer cone, 191... hole portion, 200... mass spectrometer

Claims

1. An ionization heater used for ionizing a sample, A bobbin extending in one direction; a heating wire wound around the bobbin; an electrode welded to the heating wire, The bobbin is formed with a groove extending in the one direction, The electrode is fitted into the groove, forming an ionization heater.

2. The ionization heater of claim 1 , wherein the electrode includes a leaf spring attached to the bobbin.

3. The leaf spring is a holding portion that holds the bobbin; 3. The ionization heater according to claim 2, further comprising a protruding portion that protrudes from said holding portion in said one direction and is fitted into said groove portion.

4. The bobbin has a cylindrical shape, 4. The ionization heater according to claim 3, wherein the cross section of the clamping portion has a C-shape that abuts against the outer peripheral surface of the bobbin.

5. 5. The ionization heater according to claim 1, wherein the heating wire is in contact with the bobbin without floating in the air, except for a portion in contact with the electrode.

6. A first flange is formed on an end of the bobbin, 6. The ionization heater according to claim 1, wherein the groove is formed in the first flange.

7. a second flange is formed at a portion of the bobbin spaced a predetermined distance from the end in the one direction; 7. The ionization heater according to claim 6, wherein the electrode is attached to the region between the first flange and the second flange in a state where the electrode is fitted into the groove of the first flange.

Citation Information

Patent Citations

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