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ADT7462ACPZ-R7 Datasheet(PDF) 44 Page - ON Semiconductor |
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ADT7462ACPZ-R7 Datasheet(HTML) 44 Page - ON Semiconductor |
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44 / 81 page ![]() ADT7462 http://onsemi.com 44 When the temperature falls below the operating temperature, TMIN stays the same. Even when the temperature starts to increase slowly, TMIN stays the same, because the temperature increases at a rate of ≤0.25°C per cycle. Figure 71. Effect of Exceeding Operating Point Minus Hysteresis Temperature TMIN OPERATING POINT HIGH TEMP LIMIT LOW TEMP LIMIT HYSTERESIS DECREASE HERE DUE TO SHORT CYCLE ONLY T1(n) – T1 (n – 1) ≤ 0.255C OR 0.755C = > TMIN DECREASES BY 15C EVERY SHORT CYCLE DECREASE HERE DUE TO LONG CYCLE ONLY T1(n) – T1 (n – 1) ≤ 0.255C AND T1(n) > OP = > TMIN DECREASES BY 15C EVERY LONG CYCLE NO CHANGE IN TMIN HERE DUE TO ANY CYCLE BECAUSE T1(n) – T1 (n – 1) ≤ 0.255C AND T1(n) < OP = > TMIN STAYS THE SAME ACTUAL TEMP THERM LIMIT Example 3: Temperature Below Low Limit, TMIN Increased When the temperature drops below the low temperature limit, TMIN may increase, as shown in Figure 72. Increasing TMIN has the effect of running the fan more slowly and, therefore, more quietly. The long cycle diagram in Figure 69 shows the conditions that need to be true for TMIN to increase. The following is a quick summary of those conditions and the reasons they need to be true: TMIN may increase, if • The measured temperature has fallen below the low temperature limit. This means the user must choose the low limit carefully. It should not be so low that the temperature never falls below it, because TMIN would never increase and the fans would run faster than necessary. • TMIN is below the high temperature limit. TMIN is never allowed to increase above the high temperature limit. As a result, the high limit should be sensibly chosen, because it determines how high TMIN can go. • TMIN is below the operating point temperature. TMIN should never be allowed to increase above the operating point temperature, because the fans do not switch on until the temperature rises above the operating point. • The temperature is above TMIN. The dynamic TMIN control is turned off below TMIN. Figure 72 shows how TMIN increases when the current temperature is above TMIN and below the low temperature limit, and TMIN is below the high temperature limit and below the operating point. When the temperature rises above the low temperature limit, TMIN stays the same. Figure 72. Increasing TMIN for Quieter Operation TMIN OPERATING POINT HIGH TEMP LIMIT LOW TEMP LIMIT ACTUAL TEMP HYSTERESIS THERM LIMIT Example 4: Preventing TMIN from Reaching Full Scale Because TMIN is dynamically adjusted, it is undesirable for TMIN to reach full scale (191°C), because the fan would never switch on. As a result, TMIN is allowed to vary only within a specified range. • The lowest possible value for TMIN is −64°C. • TMIN cannot exceed the high temperature limit. • If the temperature is below TMIN, the fan is switched off or is running at minimum speed, and dynamic TMIN control is disabled. Figure 73. TMIN Adjustments Limited by High Temperature Limit TMIN PREVENTED FROM INCREASING ACTUAL TEMP HYSTERESIS TMIN OPERATING POINT HIGH TEMP LIMIT LOW TEMP LIMIT THERM LIMIT Enabling Dynamic TMIN Control Mode Bits [1:0] of Dynamic TMIN Control Register 1 (0x0B) enable/disable dynamic TMIN control on the temperature channels (see Table 39). Dynamic TMIN Control Register 1 (0x0B) Bit 1 (Remote 2 En) = 1 enables dynamic TMIN control on the Remote 2 temperature channel. The chosen TMIN value is dynamically adjusted based on the current temperature, operating point, and high and low limits for this zone. Bit 1 (Remote 2 En) = 0 disables dynamic TMIN control. The TMIN value chosen is not adjusted and the channel behaves as described in the Automatic Fan Control Overview section. |
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