Water source heating mechanism of mold temperature controller

By combining a spiral heater and a plate heat exchanger, the problems of aging and low efficiency of traditional mold temperature controller heaters are solved, achieving rapid heating and efficient use of electrical energy.

CN223812308UActive Publication Date: 2026-01-20GUANGDONG JUXIAOCHUANG TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520107311.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-17
Publication Date
2026-01-20
Estimated Expiration
2035-01-17

AI Technical Summary

Technical Problem

The heating elements of traditional mold temperature controllers are prone to aging and deformation, leading to poor contact and reduced lifespan. They also have low heating efficiency, with an energy efficiency of only 30%-40%.

Method used

It adopts a combination of spiral heater and plate heat exchanger. The heater is horizontally fixed on the body. Combined with high-efficiency booster water pump and hot water integrated module, it realizes the diversion heating and heat exchange of water source.

Benefits of technology

It improves the speed and efficiency of water heating, enhances the utilization rate of electrical energy, and extends the service life of the heater.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223812308U_ABST
Patent Text Reader

Abstract

The utility model discloses a water source heating mechanism of a mold temperature controller, which comprises a machine body, a plate-type cold-heat exchanger is transversely arranged on one side of the top end in the machine body, a spiral heater is transversely arranged at the bottom end of the plate-type cold-heat exchanger, and the spiral heater is transversely fixed on the machine body. A hot water integration module is arranged on a pipeline on one side of the top end of the spiral heater and located on the other side of the top end in the machine body, a water outlet pipe opening is formed in a pipeline on one side of the hot water integration module, and the plate type cold-heat exchanger is connected with the hot water integration module through a pipeline. And the water outlet pipe orifice is transversely positioned outside the machine body.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the field of mould temperature controller, especially to the water source heating mechanism of mould temperature controller. BACKGROUND

[0002] The traditional mould temperature controller is to use resistance heater to heat the cooling water, and then provide cooling water of certain temperature to cool the mould. However, the heater of the traditional mould temperature controller usually has the following problems: 1. The resistance wire of the electric heating tube is prone to aging deformation after long time use, and may also produce scale, thus causing the problems of poor contact between the electric heating tube and the cooling medium and the decline of the service life of the electric heating tube; 2. The heating area of the traditional electric heating tube is limited, so that the heating efficiency is not obvious, and it is difficult to achieve the effect of energy saving. In general, the power efficiency of the traditional heater is only 30%-40%. Therefore, the water source heating mechanism of the mould temperature controller is proposed. SUMMARY

[0003] The utility model discloses to overcome the above-mentioned situation shortage, aims at providing a kind of technical scheme that can solve above-mentioned problem.

[0004] The water source heating mechanism of the mould temperature controller includes a machine body. A plate-type cold and hot exchanger is horizontally arranged on one side of the top end inside the machine body. A spiral heater is horizontally arranged at the bottom end of the plate-type cold and hot exchanger, and the spiral heater is horizontally fixed on the machine body. A hot water integrated module is arranged on one side of the top end inside the machine body. A water outlet is arranged on one side of the hot water integrated module. The plate-type cold and hot exchanger and the hot water integrated module are connected by pipelines. The water outlet is horizontally arranged outside the machine body.

[0005] Preferably, the hot water integrated module is provided with a high-efficiency booster water supplement pump, which is fixed inside the machine body and connected by pipelines with the plate-type cold and hot exchanger. The bottom end of the high-efficiency booster water supplement pump is provided with a water source integrated module, and the water source integrated module is provided with a water inlet, which is horizontally arranged outside the machine body.

[0006] Preferably, the spiral heater is provided with a first cold water transmission pipe, which is horizontally arranged at the bottom end outside the spiral heater.

[0007] Preferably, the plate-type cold and hot exchanger and the hot water integrated module are provided with a first hot water transmission pipe and a second hot water transmission pipe. The second hot water transmission pipe is connected by pipelines with the first hot water transmission pipe. The first hot water transmission pipe is connected by pipelines with the hot water integrated module. The second hot water transmission pipe is connected by pipelines with the plate-type cold and hot exchanger.

[0008] Preferably, the plate heat exchanger pipeline is provided with a second cold water transmission pipe and a fourth cold water transmission pipe, and the second cold water transmission pipe and the fourth cold water transmission pipe are located inside the body.

[0009] Preferably, the high-efficiency booster water replenishment pump pipeline is provided with a third cold water transmission pipe, and the third cold water transmission pipe is located inside the body and is connected in pipeline between the high-efficiency booster water replenishment pump and the water source integrated module.

[0010] Preferably, the water source integrated module pipeline is provided with a shunt pipe, and the shunt pipe is located inside the body.

[0011] Compared with the prior art, the beneficial effects of the utility model are that: through the spiral heater, a part of the water source entering the body from outside is heated and transported to the hot water integrated module and then flows out through the hot water integrated module combined with the water outlet pipe, and another part of the water source in the body is cold and hot exchanged through the plate heat exchanger and the hot water formed by the exchange flows out through the hot water integrated module combined with the water outlet pipe, so that the water source in the body can be heated and collected to the hot water integrated module and then flows out through the water outlet pipe, so that the water source in the body is heated more quickly.

[0012] The additional aspects and advantages of the utility model will be partly given in the following description, some will become obvious from the following description, or be known by the practice of the utility model. BRIEF DESCRIPTION OF DRAWINGS

[0013] In order to more clearly illustrate the technical scheme in the embodiments of the utility model or the prior art, the following will briefly introduce the drawings needed to be used in the embodiment or the prior art description, and obviously, the drawings in the following description are only some embodiments of the utility model, and for those skilled in the art, other drawings can also be obtained according to these drawings without paying creative labor.

[0014] Fig. 1 It is another structure schematic view of the water source heating mechanism of the mold temperature controller.

[0015] Fig. 2 It is another structure schematic view of the water source heating mechanism of the mold temperature controller.

[0016] Fig. 3 It is another structure schematic view of the water source heating mechanism of the mold temperature controller.

[0017] As shown in the figure: 1, the body, 2, spiral heater, 3, plate type heat exchanger, 4, high efficiency booster water pump, 5, hot water integrated module, 6, water outlet, 7, water source integrated module, 8, water inlet pipe, 9, first cold water transmission pipe, 10, first hot water transmission pipe, 11, second hot water transmission pipe, 12, second cold water transmission pipe, 13, third cold water transmission pipe, 14, fourth cold water transmission pipe, 15, shunt pipe. DETAILED DESCRIPTION

[0018] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor belong to the protection scope of the utility model.

[0019] Please refer to Figs. 1-3 In the embodiments of the utility model, the water source heating mechanism of the mold temperature machine comprises a body 1, a plate type heat exchanger 3 is horizontally arranged on one side of the top end inside the body 1, a spiral heater 2 is horizontally arranged at the bottom end of the plate type heat exchanger 3, and the spiral heater 2 is horizontally fixed on the body 1, a hot water integrated module 5 is arranged on one side of the top end of the spiral heater 2, the hot water integrated module 5 is located on the other side of the top end inside the body 1, and a water outlet 6 is arranged on one side of the hot water integrated module 5, the plate type heat exchanger 3 and the hot water integrated module 5 are connected by pipelines, the water outlet 6 is horizontally located outside the body 1, and then a part of the water source entering the body 1 is heated by the spiral heater 2 and transported to the hot water integrated module 5, and then the heated water is discharged through the hot water integrated module 5 and the water outlet 6, and the other part of the water source inside the body 1 is subjected to heat exchange through the plate type heat exchanger 4, and the hot water formed by the heat exchange is discharged through the hot water integrated module 5 and the water outlet 6, so that the water source inside the body 1 can be heated and collected in the hot water integrated module 5 and discharged through the water outlet 6, thereby making the water source inside the body 1 heat more quickly.

[0020] One side of the hot water integrated module 5 is provided with a high efficiency booster water pump 4, the high efficiency booster water pump 4 is fixed inside the body 1, and the high efficiency booster water pump 4 and the plate type heat exchanger 3 are connected by pipelines, the bottom end of the high efficiency booster water pump 4 is provided with a water source integrated module 7, the water source integrated module 7 is provided with a water inlet pipe 8, and the water inlet pipe 8 is horizontally located outside the body 1, and then the water source outside the body 1 is collected in the water source integrated module 7 through the water inlet pipe 8 and then pumped into the plate type heat exchanger 3 through the high efficiency booster water pump 4 for heat exchange.

[0021] The spiral heater 2 pipeline is provided with a first cold water transmission pipe 9, and the first cold water transmission pipe 9 is transversely located at the bottom end outside the spiral heater 2, so that a part of the cold water flow entering the machine body 1 is transmitted to the inside of the spiral heater 2 for heating through the first cold water transmission pipe 9.

[0022] The plate type cold and heat exchanger 3 and the hot water integrated module 5 are provided with a first hot water transmission pipe 10 and a second hot water transmission pipe 11, and the second hot water transmission pipe 11 is connected with the first hot water transmission pipe 10, the first hot water transmission pipe 10 is connected with the hot water integrated module 5, and the second hot water transmission pipe 11 is connected with the plate type cold and heat exchanger 3, so that the hot water in the plate type cold and heat exchanger 3 after heat exchange is transmitted to the first hot water transmission pipe 10 and then to the hot water integrated module 5 through the first hot water transmission pipe 10.

[0023] The plate type cold and heat exchanger 3 pipeline is provided with a second cold water transmission pipe 12 and a fourth cold water transmission pipe 14, and the second cold water transmission pipe 12 and the fourth cold water transmission pipe 14 are located inside the machine body 1, so that the cold water flow entering the machine body 1 is transmitted to the inside of the plate type cold and heat exchanger 3 for heat exchange through the second cold water transmission pipe 12 and the fourth cold water transmission pipe 14.

[0024] The high-efficiency pressure boosting water supplement pump 4 pipeline is provided with a third cold water transmission pipe 13, and the third cold water transmission pipe 13 is located inside the machine body 1, and the third cold water transmission pipe 13 is connected with the water source integrated module 7 through the high-efficiency pressure boosting water supplement pump 4, so that the water source in the water source integrated module 7 can be pumped into the machine body 1 through the third cold water transmission pipe 13.

[0025] The water source integrated module 7 pipeline is provided with a shunt pipe 15, and the shunt pipe 15 is located inside the machine body 1, so that the water source in the water source integrated module 7 can be shunted to other devices in the machine body 1 through the shunt pipe 15.

[0026] It is apparent for those skilled in the art that the present application is not limited to the details of the foregoing exemplary embodiments, and the present application can be implemented in other concrete forms without departing from the spirit or essential characteristics of the present application. Therefore, the embodiments should be considered as exemplary and non-limiting, and the scope of the present application is defined by the appended claims rather than the above description, and all changes falling within the meaning and range of equivalents of the elements of the claims are intended to be embraced therein.

Claims

1. A water source heating mechanism of a mold temperature controller, comprising a body, characterized in that, The side of the top end of the body is transversely provided with a plate type cold and heat exchanger, and the bottom end of the plate type cold and heat exchanger is transversely provided with a spiral heater, and the spiral heater is transversely fixed on the body, the top end of the spiral heater is provided with a hot water integrated module on one side of the pipeline, and the hot water integrated module is located on the other side of the top end of the body, and the side of the hot water integrated module is provided with a water outlet, the plate type cold and heat exchanger and the hot water integrated module are connected by pipelines, and the water outlet is transversely located outside the body.

2. The water source heating mechanism of a mold temperature controller according to claim 1, wherein One side of the hot water integrated module is provided with a high-efficiency booster water supplement pump, and the high-efficiency booster water supplement pump is fixed in the body, and the high-efficiency booster water supplement pump and the plate type cold and heat exchanger are connected by pipelines, the bottom end of the high-efficiency booster water supplement pump is provided with a water source integrated module, and the water source integrated module is provided with a water inlet pipe, and the water inlet pipe is transversely located outside the body.

3. The water source heating mechanism of the mold temperature controller according to claim 1, wherein The spiral heater pipeline is provided with a first cold water transmission pipe, and the first cold water transmission pipe is transversely located at the bottom end of the spiral heater.

4. The water source heating mechanism of the mold temperature controller according to claim 1, wherein The plate type cold and heat exchanger and the hot water integrated module are provided with a first hot water transmission pipe and a second hot water transmission pipe, and the second hot water transmission pipe and the first hot water transmission pipe are connected by pipelines, the first hot water transmission pipe and the hot water integrated module are connected by pipelines, and the second hot water transmission pipe and the plate type cold and heat exchanger are connected by pipelines.

5. The water source heating mechanism of the mold temperature controller according to claim 1, wherein The plate type cold and heat exchanger pipeline is provided with a second cold water transmission pipe and a fourth cold water transmission pipe, and the second cold water transmission pipe and the fourth cold water transmission pipe are located in the body.

6. The water source heating mechanism of the mold temperature controller according to claim 2, wherein The high-efficiency booster water supplement pump pipeline is provided with a third cold water transmission pipe, and the third cold water transmission pipe is located in the body, and the third cold water transmission pipe is connected by pipelines between the high-efficiency booster water supplement pump and the water source integrated module.

7. The water source heating mechanism of the mold temperature controller according to claim 2, wherein The water source integrated module pipeline is provided with a shunt pipe, and the shunt pipe is located in the body.