CERAMIC ELECTRIC HEATING ELEMENT HAVING A TWOLAYER STRUCTURE AND ELECTRIC SOLDERING IRON
20220377849 · 2022-11-24
Inventors
Cpc classification
B23K3/0369
PERFORMING OPERATIONS; TRANSPORTING
H05B3/141
ELECTRICITY
H05B3/44
ELECTRICITY
International classification
Abstract
Disclosed are a ceramic electric heating element having a two-layer structure, and an electric soldering iron. The electric heating element having a two-layer ceramic structure comprises an inner conducting layer and an outer insulating layer; the insulating layer wraps the conducting layer, and the conducting layer is exposed outside the insulating layer at the head and tail of the electric heating element. In addition, the ceramic electric heating element having a two-layer structure is used to the electric soldering iron. The present invention allows the miniaturization in the manufacture of ceramic electric heating bodies, with low production cost and low difficulty in respect of the process.
Claims
1. A ceramic electric heating element having a two-layer structure, wherein the electric heating element comprises: an inner conducting layer and an outer insulating layer; wherein the insulating layer wraps the conducting layer and the conducting layer is exposed outside the insulating layer at a head and a tail of the electric heating element.
2. The ceramic electric heating element according to claim 1, wherein a tail of the conducting layer is aligned to a tail of the insulating layer.
3. The ceramic electric heating element according to claim 1, wherein a tail of the conducting layer is provided with a blind hole or a groove.
4. The ceramic electric heating element according to claim 2, wherein the tail of the conducting layer is provided with a V-shaped blind hole.
5. The ceramic electric heating element according to claim 1, wherein a preparation material of the conducting layer is prepared with the following materials in following proportions: silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=(200-700):(100-700):(600-1500):(40-80):(10-70):(5-50).
6. The ceramic electric heating element having a two layer structure according to any one of the preceding claims according to claim 1, wherein the preparation material of the insulating layer is prepared with the following materials in following proportions: silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=(400-900):(50-200):(500-800):(40-90):(30-80):(5-60).
7. The ceramic electric heating element according to claim 1, wherein the head of the electric heating element is provided with a metal coating covering the conducting layer and the insulating layer.
8. The ceramic electric heating element according to claim 7, wherein the material of the metal coating is silver copper+titanium.
9. The ceramic electric heating element according to claim 7, wherein the head of the electric heating element is inserted into a metal housing to serve as a negative electrode, and the conducting layer exposed at the tail of the electric heating element is welded to an electrode to serve as a positive electrode.
10. The ceramic electric heating element according to claim 7 the head of the ceramic electric heating element is inserted into a blind hole of a soldering iron tip, and the tail of the ceramic electric heating element is welded to an electrode.
11. according to ceramic electric heating element according to claim 10, wherein the blind hole is provided at one end of the soldering iron tip, a metal layer is provided within the blind hole, the material of the metal layer is silver copper+titanium, and the head of the ceramic electric heating element is inserted into the blind hole of the soldering iron tip and welded to the metal layer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0040] The disclosure is described below through embodiments shown in drawings, but the disclosure is not limited to the described implementation modes. Any improvements or replacements within the basic spirit of the embodiment still belong to the scope of protection of the claims of the disclosure.
[0041] Embodiment 1: As shown in
[0042] The ceramic electric heating element having a two-layer structure in the embodiment may be used as a thermocouple. The conducting layer at the tail thereof is welded to a central electrode 7. The central electrode may be used as a thermocouple, or the central electrode may be used as one pole of the thermocouple, and the metal material or its extension material connected with the conducting layer at the head of the electric heating element may be used as the other pole of the thermocouple. The temperature of a heating area at the head may be accurately controlled, and the temperature of the electric heating element may also be detected at the same time.
[0043] In addition, the embodiment provides usage in which the described ceramic electric heating element having a two-layer structure is used as an electric heating element. Specifically, the head of the electric heating element is coated with metal coating 6 covering the conducting layer and the insulating layer. The metal coating is made of high temperature resistant material. In the embodiment, the material used for the metal coating is silver copper+titanium.
[0044] Through metallization of the head and welding with the central electrode 7 of the tail, the electric heating element in the embodiment may be used to a smaller heating electrical element, as to meet more requirements of customers. Compared with the existing ceramic electric heater, such a full-ceramic two-layer electric heating element omits the side electrode, is connected to the negative electrode with the head and connected to the tail with the positive electrode, so that the diameter thereof is smaller and more controllable. It is particularly suitable for a tiny heating electrical element under 800° C., and can also have the advantage of quick start-up.
[0045] As an illustration, a ceramic electric heating element manufacturer may only produce and sell full-ceramic electric heating bodies having a two-layer structure, namely blank structures of ceramic electric heating bodies, so that a customer who has purchased the full-ceramic electric heating bodies can weld the central electrode and then use them as thermocouple, or perform head metallization and then use them as the electric heating bodies. See
[0046] Certainly, a ceramic electric heating element manufacturer may also pre-metallize the blank structures of ceramic electric heating bodies and/or perform tail-central electrode welding before selling, so that a customer only needs to insert the ceramic electric heating element, of which the head is metalized, into a metal housing 8 for use after purchase, as shown in
[0047] There is another possibility that a ceramic electric heating element manufacturer not only metallizes the head of an ceramic electric heating element and welds the central electrode with the tail, but also inserts the metalized ceramic electric heating element into a metal housing 8 and sells an integrated product, such as an electric soldering iron.
[0048] In the embodiment, the preparation material of the conducting layer is prepared with the following materials in following proportions: silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=(200-700):(100-700):(600-1500):(40-80):(10-70):(5-50). The preparation material of the insulating layer is prepared with the following materials in following proportions: silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide: lanthanum oxide: aluminum oxide=(400-900):(50-200):(500-800):(40-90):(30-80):(5-60).
[0049] The conducting layer may be prepared with a composite material prepared in the following material parts: silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=(200-700):(100-700):(600-1500):(40-80):(10-70):(5-50).
[0050] Different proportions of parts for the preparation can be chosen and are not limited to:
[0051] For example, silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=200:100:600:40:10:5.
[0052] For example, silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=400:300:800:60:30:15.
[0053] For example, silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=600:500:1000:70:50:30.
[0054] For example, silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=500:600:1300:50:60:45.
[0055] For example, silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=700:700:1500:80:70:50.
[0056] For the insulating layer, it may be prepared by using the composite material prepared in the following material parts: silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=(400-900):(50-200):(500-800):(40-90):(30-80):(5-60).
[0057] Different proportions of parts may be chosen for the preparation but are not limited to:
[0058] For example, silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=400:50:500:40:30:5;
[0059] For example, silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=500:100:600:60:70:35;
[0060] For example, silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=700:150:700:50:40:30;
[0061] For example, silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=800:90:650:70:40:50;
[0062] For example, silicon nitride:silicon carbide:molybdenum disilicide:yttrium oxide:lanthanum oxide:aluminum oxide=900:200:800:90:80:60.
[0063] As another implementation mode in the embodiment, the preparation material of the conducting layer and/or the preparation material of the insulating layer further include tungsten carbide (WC).
[0064] As another implementation mode in the embodiment, the preparation material of the conducting layer and/or the preparation material of the insulating layer further include ytterbium oxide (Yb.sub.2O.sub.3).
[0065] Herein, in addition, the two-layer ceramic electric heating element in the embodiment is manufactured by grouting, including the following steps:
[0066] Step 1: preparing mixed slurry: silicon nitride, silicon carbide, molybdenum disilicide, yttrium oxide, lanthanum oxide, and aluminum oxide powder are mixed with water according to a weight ratio and stirred uniformly, then loaded in a container. Herein, different mixed slurries are prepared according to different layers of the multilayer ceramic electric heating element, and loaded in different containers for standby.
[0067] As an implementation mode in the embodiment, total weight of the described material compositions:water weight=1:(1-4).
[0068] Step 2: grouting and forming: a grouting mold of which two ends are opened is put on a grouting machine, an inner diameter of the grouting mold being 0.8 mm, and the mixed ceramic slurry is then injected into the grouting machine to start grouting and forming. According to the number of layers of the ceramic electric heating element, the grouting is performed in stages, and the grouting is sequentially performed from the outer layer to the inner layer.
[0069] Step 3: sintering: a dried water-lost ceramic element is taken out from the grouting mold, and put into a sintering mold, finally, the sintering mold loaded with the ceramic blank is put into a sintering furnace for sintering, and sintered for 7-12 hours at a temperature of 1400° C. and a pressure of 2000-5000 Kpa.
[0070] Step 4: the sintered ceramic material element is taken out from the sintering mold, external trimming is performed, and obtain a ceramic electric heating element blank.
[0071] The ceramic electric heating element having a two-layer structure obtained in the embodiment is a ceramic electric heating element with a diameter of 0.8 mm. Compared with the existing smallest-sized electric heating element, not only the volume is reduced, but also the electric heating element of the embodiment is more reliable in structure, lower in cost and process difficulty, and has an ability to further reduce of the diameter of the heating element.
[0072] The ceramic electric heating element blank having a two-layer structure obtained according to the described process may be sold directly, or may also be sold after the head of the ceramic electric heating element blank having a two-layer structure is metalized and the tail is welded to the central electrode. It is also possible to sell the ceramic electric heating element with metalized head after being inserted into the metal housing.
[0073] Different TCRs are achieved by using the ceramic electric heating element manufactured by the composite material of the embodiment, and arbitrary conversion from a negative temperature coefficient to a positive temperature coefficient is achieved, so that not only TCR=−500 may be achieved, but also TCR=5000 may be achieved, meanwhile various performance advantages of the original ceramic material are guaranteed, such as quick start-up, high temperature resistance, corrosion resistance, and high strength.
[0074] Small impulse current: the impulse current is small while the temperature coefficient of resistance TCR is large, and the impulse current is also small while the temperature coefficient of resistance TCR is small. For negative or low TCR, because of the reduction of the starting current, the costs of supporting power supply and control element may be greatly reduced. In this way, problems of high cost of the supporting control electronic element of the original ceramic structure material element in actually using and difficult control are effectively solved, and a similar performance index of the international ceramic material structure element is achieved.
[0075] Embodiment 2: As shown in
[0076] In the embodiment, the electric heating element includes an inner conducting layer 1 and an outer insulating layer 2; the outside of the conducting layer is wrapped by the insulating layer, and the conducting layer is exposed outside the insulating layer at the head 3 and the tail 4 of the electric heating element. In addition, the conducting layer at the tail of the ceramic electric heating element in this embodiment is provided with a groove or a blind hole. A square groove, a circular groove, a polygonal groove, a circular blind hole, a tapered blind hole, a V-shaped blind hole and the like may be installed. In the embodiment, the tail of the conducting layer is provided with the V-shaped blind hole 5. By the technical solution of this embodiment, a full-ceramic electric heating element having a two-layer structure with a diameter of less than 1 mm may be obtained.
[0077] For the described full-ceramic electric heating element having a two-layer structure, a central electrode may be welded in the V-shaped blind hole of the conducting layer at the tail thereof, the central electrode is partially inserted into the blind hole, and partially exposed outside the electric heating element. In addition, a gap between the electrode and the V-shaped blind hole is filled with other materials such as solder. The connection stability between the central electrode and the electric heating element is further guaranteed.
[0078] In operation, the electric heating element welded to a central electrode may be used as a thermocouple. It may also be used as the electric heating element after the head of the full-ceramic electric heating element having a two-layer structure is further metalized. The metallization process is that the head is coated with metal coating, and the conducting layer and the insulating layer are simultaneously wrapped by the metal coating. As an implementation mode in the embodiment, the material of the metal is an alloy of silver copper+titanium. Certainly, the electric heating element head after being metalized may also be inserted into a metal housing to become a negative electrode, and the exposed central electrode may be used as a positive electrode.
[0079] As an illustration, a ceramic electric heating element manufacturer may only produce and sell full-ceramic electric heating bodies having a two-layer structure, namely blank structures of ceramic electric heating bodies, so that a customer can perform central electrode welding and then use them as thermocouple, or perform head metallization and then use them as the electric heating bodies after purchase. See
[0080] Certainly, a ceramic electric heating element manufacturer may also pre-metallize the blank structures of ceramic electric heating bodies and/or perform tail-central electrode welding before selling, so that a customer only needs to insert the ceramic electric heating element, of which the head is metalized, into a metal housing for use after purchase, as shown in
[0081] There is another possibility that a ceramic electric heating element manufacturer not only metallizes the head of an ceramic electric heating element and welds the central electrode with the tail, but also inserts the metalized ceramic electric heating element into a metal housing and sells an integrated product, such as an electric soldering iron.
[0082] In addition, the preparation materials of the insulating layer and the conducting layer of the two-layer ceramic electric heating element in the embodiment are the same as those in Embodiment 1. The preparation process is also the same, but the inner diameter of the grouting mold in this embodiment is 1 mm, and the diameter of the ceramic electric heating element obtained by grouting is 1 mm.
[0083] Embodiment 3: As shown in
[0084] A two-layer ceramic electric heating element blank is used, the head thereof is coated with a metalized coating, and the material of the metalized coating is silver copper+titanium.
[0085] In addition, as one of the implementation modes, the ceramic electric heating element in this embodiment is divided into a front section near the head and a rear section near the tail, the diameter of the front section being smaller than that of the rear section.
[0086] The electric soldering iron includes a soldering iron tip 11, one end of the soldering iron tip is a working end, and the other end is provided with a blind hole. The front section of the ceramic electric heating element 10 is partially inserted into the blind hole, so that the metalized head of the ceramic electric heating element is in contact with the soldering iron tip. The conducting layer at the tail of the ceramic electric heating element is axially welded to a metal wire 12, and the other end of the metal wire is welded to a metal electrode 18. In addition, an outer wall of the thermocouple wire is wrapped with an insulating sleeve 13, the exterior, near the metal wire, of the metal electrode is wrapped with an upper insulating sleeve 14, and the other section of the stainless steel electrode is wrapped with a tail tube 15. Outer walls of the insulating sleeve and the upper insulating sleeve are wrapped with an outer tube 16, and a metal sleeve 17 is fitted between outer walls of the outer tube and the soldering iron tip, one end of the metal sleeve wraps the soldering iron tip, and the other end wraps the outer tube.
[0087] The metal wire 12 and the metal sleeve 17 may be made of different materials to form two poles of the thermocouple, as to achieve the purpose of temperature measurement while serving as an electrode and a structural component.
[0088] As another implementation mode in this embodiment, it is integrally formed in the blind hole of the electric soldering iron: a metal material of silver copper+titanium is provided in the blind hole, and the ceramic electric heating element head that is not metalized is directly inserted into the blind hole and welded, so that the head of the electric heating element is in contact with the metal layer.
[0089] Using the electric soldering iron of this embodiment makes the electric soldering iron be further miniaturized to adapt an increasingly fine electronic welding industry. It facilitates temperature measurement and temperature control during welding.