METHOD FOR EVALUATING STABILITY OF COOLING EFFECT OF COOLING SYSTEM FOR LOW-PRESSURE CASTING OF ALUMINUM ALLOY WHEEL HUB
20260124678 ยท 2026-05-07
Inventors
- Yiming Li (Qinhuangdao, CN)
- Xuewen Qian (Qinhuangdao, CN)
- Yajun Yin (Qinhuangdao, CN)
- Tianxiao Yuan (Qinhuangdao, CN)
- Xu Shen (Qinhuangdao, CN)
- Jianxin Zhou (Qinhuangdao, CN)
- Xiaoyuan Ji (Qinhuangdao, CN)
- Hongfeng Cui (Qinhuangdao, CN)
- Lin Zhu (Qinhuangdao, CN)
- Hongcan Liu (Qinhuangdao, CN)
- Ji Wang (Qinhuangdao, CN)
- Shiwei Guo (Qinhuangdao, CN)
- Jianing Qi (Qinhuangdao, CN)
- Yong Li (Qinhuangdao, CN)
Cpc classification
B22D18/08
PERFORMING OPERATIONS; TRANSPORTING
B22D18/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B22D18/08
PERFORMING OPERATIONS; TRANSPORTING
B22D18/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Provided is a method for evaluating the stability of the cooling effect of a cooling system for low-pressure casting of an aluminum alloy wheel hub, relating to the technical field of low-pressure casting of automobile wheel hubs. The method includes: selecting a mold object; arranging a thermocouple, and acquiring temperature data; changing an initial temperature at a temperature measuring point of the thermocouple, and further acquiring real-time temperature data; extracting characteristic temperature data, and performing linear regression between an initial temperature value and a characteristic temperature value; and performing temperature data fluctuation analysis, and quantitatively measuring the stability of the cooling effect of the cooling system by using a maximum value and a minimum value of deviation of discrete points from a fitting curve as indexes.
Claims
1. A method for evaluating the stability of the cooling effect of a cooling system for low-pressure casting of an aluminum alloy wheel hub, comprising: performing Step S1: selecting a mold object that can be used for evaluating the stability of the cooling effect of the cooling system; performing Step S2: arranging a thermocouple, and acquiring temperature data; performing Step S3: changing an initial temperature at a temperature measuring point of the thermocouple, and further acquiring real-time temperature data; performing Step S4: extracting characteristic temperature data, and performing linear regression between an initial temperature value and a characteristic temperature value; and performing Step S5: performing temperature data fluctuation analysis, and quantitatively measuring the stability of the cooling effect of the cooling system by using a maximum value and a minimum value of deviation of discrete points from a fitting curve.
2. The method for evaluating the stability of the cooling effect of a cooling system for low-pressure casting of an aluminum alloy wheel hub according to claim 1, wherein in the step S1, a mold corresponding to an aluminum alloy wheel hub casting that is stably produced is selected as the mold object for evaluating the stability of the cooling effect of the cooling system.
3. The method for evaluating the stability of the cooling effect of a cooling system for low-pressure casting of an aluminum alloy wheel hub according to claim 2, wherein cooling process parameters are maintained unchanged during a stability evaluation test of the cooling effect of the cooling system.
4. The method for evaluating the stability of the cooling effect of a cooling system for low-pressure casting of an aluminum alloy wheel hub according to claim 3, wherein the opening time and the closing time of each cooling pipeline, and a flow rate of a cooling medium in each cooling pipeline are set to be kept unchanged during a production cycle of the aluminum alloy wheel hub.
5. The method for evaluating the stability of the cooling effect of a cooling system for low-pressure casting of an aluminum alloy wheel hub according to claim 1, wherein in the step S3, the initial temperature at the temperature measuring point of the thermocouple is changed by closing one of cooling pipelines and acquiring temperature data at a preset cycle.
6. The method for evaluating the stability of the cooling effect of a cooling system for low-pressure casting of an aluminum alloy wheel hub according to claim 5, wherein the number of continuous production cycles during which each single cooling pipeline is closed and the number of continuous production cycles during which each single cooling pipeline is reopened are not particularly limited.
7. The method for evaluating the stability of the cooling effect of a cooling system for low-pressure casting of an aluminum alloy wheel hub according to claim 6, wherein the number of continuous production cycles during which each single cooling pipeline is closed is equal, and the number of continuous production cycles during which each single cooling pipeline is reopened is equal.
8. The method for evaluating the stability of the cooling effect of a cooling system for low-pressure casting of an aluminum alloy wheel hub according to claim 1, wherein in the step S4, characteristic temperature values on a temperature curve before mold opening are selected for analysis.
9. The method for evaluating the stability of the cooling effect of a cooling system for low-pressure casting of an aluminum alloy wheel hub according to claim 1, wherein in the step S5, the smaller a span between a maximum value and a minimum value of deviation of discrete points from a linear regression curve, the more stable the cooling system.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0033] The technical solutions in the embodiments of the present disclosure will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present disclosure. Obviously, the described embodiments are only some but not all of the embodiments of the present disclosure. Based on the embodiments in the present disclosure, all other embodiments obtained by those of ordinary skill in the art without making inventive step belong to the scope of protection of the present disclosure.
[0034] Referring to
[0035] Step S1 is performed: a mold object that can be used for evaluating the stability of the cooling effect of the cooling system is selected; [0036] referring to
[0037] Step S2 is performed: a thermocouple is arranged, and temperature data is acquired; [0038] the mold is mounted on a low-pressure casting machine, and the thermocouple is mounted on the mold, and the other end of the thermocouple is connected to a computer, while the cooling pipelines 1 communicate with a joint arranged on the mold. After communication, mold heating is started to be performed, and after stable production, data acquisition is performed by the thermocouple.
[0039] Step S3 is performed: an initial temperature at a temperature measuring point of the thermocouple is changed, and real-time temperature data is further acquired; [0040] referring to
[0041] For a non-limiting example, 17 cooling pipelines 1 are arranged on a selected mold, only one of the cooling pipelines 1 is closed after stable production, 5 production cycles are continued in this state, and then the closed cooling pipeline 1 is reopened, and 3 production cycles are continued in this state. Subsequently, the remaining 16 cooling pipelines 1 are sequentially subjected to the above operations. Those skilled in the art can easily know that under the stability evaluation test of the cooling effect of the cooling system, there are a total of 51 production cycles with the same cooling process parameter setting, and there are a total of 85 production cycles during which only one pipeline is closed, and temperature data of the 51 production cycles with the same cooling process parameter setting is selected as data for analysis of the stability of the cooling effect. Obviously, the number of continuous production cycles during which each single cooling pipeline is closed and the number of continuous production cycles during which each single cooling pipeline is reopened are not particularly limited. The number of continuous production cycles during which each single cooling pipeline is closed is equal, and the number of continuous production cycles during which each single cooling pipeline is reopened is equal. In view of the temperature change and the efficiency of the test, preferably, the number of continuous production cycles during which each single cooling pipeline and the number of continuous production cycles during which each single cooling pipeline is reopened are 3-5.
[0042] Step S4 is performed: characteristic temperature data is extracted, and linear regression between an initial temperature value and a characteristic temperature value is performed.
[0043] Referring to
[0044] As can be seen from
[0045] Referring to
[0046] Step S5 is performed: temperature data fluctuation analysis is performed, and the stability of the cooling effect of the cooling system is quantitatively measured by using a maximum value and a minimum value of deviation of discrete points from a fitting curve.
[0047] For a stable cooling system, under the same cooling process conditions, the initial temperature is the same and its corresponding characteristic temperature value is the same. As can be seen from
[0048] More intuitively, for example, in
[0049] In summary, the method for evaluating the stability of the cooling effect of the cooling system for low-pressure casting of the aluminum alloy wheel hub according to the present disclosure has the following prominent substantive features and notable progress: [0050] (1) performing analysis based on the temperature data can intuitively reflect the stability of the cooling effect of the cooling system, and avoids a complex mapping relationship between the stability of the flow rate and the stability of the cooling effect compared with the analysis of the stability of the flow rate of the cooling medium; [0051] (2) the difficulty of testing under the condition that the initial temperature of the mold cannot be consistent is overcome, and instead, temperature data acquisition and analysis are performed by using the same cooling process setting at a differentiated initial temperature of the mold, and the test method is easy to implement; and [0052] (3) by analyzing a relationship between the initial mold temperature and the characteristic temperature value under the cycle, and selecting the temperature value on the temperature curve before mold opening of low-pressure casting of the aluminum alloy wheel hub casting as a characteristic temperature value, the complexity of curve analysis is avoided, and the influence of non-mold cooling process factors on the cooling effect stability analysis result during the processes such as mold opening.
[0053] It will be understood by those skilled in the art that various modifications and variations can be made to the present disclosure without departing from the spirit or scope of the present disclosure. Therefore, if any modifications or variations fall within the scope of protection of the appended claims and their equivalents, the present disclosure is deemed to encompass these modifications and variations.