control device

The control device addresses uneven steam distribution by generating non-overlapping load factors and adjusting boiler load ranges, stabilizing steam output and reducing fluctuations for efficient boiler operation.

JP7841343B2Active Publication Date: 2026-04-07MIURA CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-05-13
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing boiler control systems fail to evenly distribute maximum steam usage among multiple boilers, leading to excessive gain and pressure fluctuations during low load conditions, resulting in issues like hunting.

Method used

A control device that generates multiple non-overlapping upper limit load factors and adjusts boiler load factor ranges to minimize gain and stabilize steam output by setting wider bands for lower load factors, incorporating efficiency and response priority modes.

Benefits of technology

Reduces gain and stabilizes steam output fluctuations, minimizing hunting and pressure issues during low load conditions, ensuring efficient and responsive boiler operation.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To create unit number control parameter groups that lead to a mild increase / decrease in the amount of vapor output amount with respect to pressure variations, for a unit number control parameter group which is employed when a required load of a vapor-using facility is low.SOLUTION: A unit number control parameter group creation device 6 comprises: an upper limit load rate setting unit 601 which sets a plurality of (n number of) maximum used vapor amounts (upper limit load rate) with no overlap for a boiler group 2 on the basis of an input from a user, wherein for the upper limit load rate being set, a smaller step is used as a boiler load rate is lower; and a load rate range division unit 602 for dividing a boiler load rate band corresponding to the upper limit load rate into an effective load rate range and a proper load rate range. With this configuration, a unit number control parameter group created such that when the boiler load rate is low, a gain is reduced and an increase / decrease in the amount of vapor output with respect to pressure variations becomes mild.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to a control device that generates a plurality of unit control parameter groups, which are set to control the combustion states of a group of boilers composed of a plurality of boilers.

Background Art

[0002] Conventionally, when generating a unit control parameter group selected to control the combustion state of a group of boilers composed of a plurality of boilers according to the pattern of the required load in steam-using facilities, when the boiler load factor of the group of boilers when all boilers are fully combusted is set to 100%, for example, the maximum steam usage amount (upper limit load factor value) of the boiler load factor is not evenly allocated. FIG. 4A is a diagram showing a conventional example of a unit control parameter group. Here, an example is given of a group of boilers in which the group of boilers includes five step-value control boilers 20, and the maximum combustion amount of each boiler 20 is 2000 kg / h, the medium combustion amount is 1000 kg / h, and the low combustion amount is 500 kg / h. As shown in FIG. 4A, when the boiler load factor of the group of boilers is set to 100%, by evenly dividing the maximum steam usage amount (upper limit load factor) into five parts: 20%, 40%, 60%, 80%, and 100%, the effective range of the boiler load factor is divided into five parts: 0 to 100%, 0 to 80%, 0 to 60%, 0 to 40%, and 0 to 20%. Accordingly, five unit control parameter groups corresponding to boiler load factors of 20%, 40%, 60%, 80%, and 100% are generated. For simplicity, let the IDs of the unit control parameter groups (also referred to as "unit control PG") corresponding to 0 to 100%, 0 to 80%, 0 to 60%, 0 to 40%, and 0 to 20% be ID1, ID2, ID3, ID4, and ID5, respectively. For example, the maximum steam usage amount is 10000 kg / h, 8000 kg / h, 6000 kg / h, 4000 kg / h, and 2000 kg / h in ID1, ID2, ID3, ID4, and ID5, respectively. By doing so, if the maximum steam usage required by the steam-using equipment is a low load, for example less than 1000 kg / h, the user can select the unit control parameter group ID5 and have the boiler group combustion controlled based on the unit control parameter group ID5. Conversely, if the maximum steam usage required by the steam-using equipment is a high load, for example around 9000 kg / h, the user can select the unit control parameter group ID1 and have the boiler group combustion controlled based on the unit control parameter group ID1.

[0003] In a boiler system consisting of a group of boilers comprising one or more stepped-value controlled boilers, when controlling the combustion state of each stepped-value controlled boiler, the maximum set pressure value and control width are set in advance to determine the control pressure band that stabilizes the header pressure, and the combustion rate of the controlled boiler is controlled so that the steam pressure value inside the steam header that collects the steam generated by the group of boilers (hereinafter also referred to as the "header pressure value") falls within the control pressure band. Specifically, in a group of stepped-value controlled boilers, it is known that a proportional distribution control method is applied to calculate the required amount of steam based on the header pressure value (see, for example, Patent Document 1). When generating multiple control parameter groups, the proportional distribution setting pressure (also called the "maximum setting pressure value") and proportional distribution control width (also called the "control width") included in each control parameter group are set to common values ​​across all control parameter groups. Specifically, the proportional distribution setting pressure (maximum setting pressure value) included in control parameter groups ID1 to ID5 is set to a common proportional distribution setting pressure value, and the proportional distribution control width (control width) included in control parameter groups ID1 to ID5 is set to a common proportional distribution control width.

[0004] Therefore, for example, when the ID1 unit control parameter group is applied to a group of boilers, the gain will be relatively large compared to other unit control parameter groups. However, when the boiler load factor is high, the risk of pressure fluctuations is reduced, and it is necessary to operate the boilers at high combustion levels, so it can be said that there are no particular problems. However, when applying the number control parameter group corresponding to ID5 to a group of boilers, for example, in the above example, if the maximum steam usage amount of the steam-using equipment is less than 1000 kg / h (a low load), and the number control parameter group for ID5 with a maximum steam usage amount of 2000 kg / h is selected, the gain in response to pressure changes may increase. This would result in excessive manipulation of the steam output in response to pressure changes, leading to problems such as hunting. Therefore, for boiler groups applied when the required load of the steam-using equipment is low, it is desirable to be able to select a number control parameter group that has a small gain and slows down the increase or decrease in steam output in response to pressure fluctuations. [Prior art documents] [Patent Documents]

[0005] [Patent Document 1] Japanese Patent Publication No. 2011-208817 [Overview of the Initiative] [Problems that the invention aims to solve]

[0006] For boiler groups with low required loads for steam-using equipment, a control device is desired that can generate multiple boiler control parameter groups and provide them to a boiler control device. These parameter groups allow for the selection of a boiler control parameter group that reduces gain and slows the increase or decrease in steam output in response to pressure fluctuations.

[0007] The present invention aims to generate multiple boiler control parameter groups and provide them to a boiler control device, which can select a boiler control parameter group that reduces the gain and slows down the increase or decrease in steam output in response to pressure fluctuations when the required load of the steam-using equipment is low in a boiler system comprising a group of boilers having multiple boilers. [Means for solving the problem]

[0008] The present invention relates to a control device capable of setting a number control parameter group used for controlling a group of boilers consisting of multiple boilers, When the boiler load factor of the boiler group is set to 100% when all boilers are burning at full capacity, the upper limit load factor setting unit sets multiple (n) non-overlapping upper limit load factors, including an upper limit of 100%. A load factor range division unit divides the boiler load factor into the same number of boiler load factor bands as the aforementioned upper limit load factor by setting a range from 0% to the minimum upper limit load factor corresponding to the minimum upper limit load factor, and a range from the upper limit load factor to the upper limit load factor that is greater than the upper limit load factor and closest to the upper limit load factor corresponding to each upper limit load factor. A unit for registering unit control parameter groups registers the set values ​​for the unit control parameter groups corresponding to each boiler load factor band generated by the load factor range division unit, Includes, The aforementioned upper limit load rate setting unit further, The present invention relates to a control device that enables a smaller gain when the boiler load band is under low load by setting multiple (n) upper limit load factors such that the width of the boiler load factor band corresponding to each upper limit load factor is greater than or equal to the width of the boiler load factor band corresponding to the upper limit load factor closest to the upper limit load factor that is smaller than the upper limit load factor in question, and that the width of the boiler load factor band that includes at least a boiler load factor of 100% is wider than the boiler load factor band that includes a boiler load factor of 0%.

[0009] Furthermore, the aforementioned unit number control parameter group registration unit also includes, As the maximum amount of steam used to be registered in the boiler load factor control parameter group corresponding to the boiler load factor band, the amount of steam that satisfies the load of the upper limit load factor in the boiler load factor band can be registered.

[0010] Furthermore, the boiler control parameter group can define, based on the range of the boiler load factor band, the boiler that supplies the base amount of steam and the boiler that responds to changes in the amount of steam.

[0011] Furthermore, the control device includes an input unit, The aforementioned upper limit load rate setting unit is Multiple upper load ratios may be set based on the multiple upper load ratio values ​​input from the input unit.

[0012] Furthermore, in the control device, the upper limit load rate setting unit is The upper limit of the load factor may be set so that the width of the boiler load factor band, including 0%, is 10%.

[0013] Furthermore, in the control device, the upper limit load rate setting unit is The upper limit of the load factor may be set so that the width of the boiler load factor band, including 0%, is 10%.

[0014] Furthermore, the control device may include a unit control unit that controls the combustion state of the boiler group. [Effects of the Invention]

[0015] According to the present invention, in a boiler system comprising a group of boilers having multiple boilers, when the boiler load factor is low, a boiler control parameter group is generated and provided to the boiler control device, configured to reduce the gain and slow down the increase or decrease in steam output in response to pressure fluctuations. [Brief explanation of the drawing]

[0016] [Figure 1] This is a diagram showing an overview of a boiler system with a unit number control parameter group generation function according to an embodiment of the present invention. [Figure 2] This is a functional block diagram showing the configuration of the unit number control device of the above embodiment. [Figure 3] This is a functional block diagram showing the configuration of the unit number control parameter group generation device 6 of the above embodiment. [Figure 4A] This is a diagram showing a conventional example of a unit number control parameter group. [Figure 4B] This is a diagram showing an example of the unit number control parameter group of the above embodiment. [Figure 5] This is a diagram showing a flowchart for explaining the operation of the unit number control parameter group generation device 6 of the above embodiment.

Embodiments for Carrying Out the Invention

[0017] Hereinafter, a preferred embodiment of a boiler system with a unit number control parameter group generation function of the present invention will be described with reference to the drawings. FIG. 1 is a diagram showing an overview of a boiler system 100 with a unit number control parameter group generation function according to the present embodiment. As shown in FIG. 1, the boiler system 100 with a unit number control parameter group generation function includes a boiler system 1, a unit number control device 3 as a unit number control unit, and a unit number control parameter group generation device 6 as a control device. The unit count control device 3 and the unit count control parameter group generation device 6 are each equipped with a CPU (Central Processing Unit) or other arithmetic processing unit to realize the operation of predetermined functions, as well as auxiliary storage devices (not shown) such as ROM (Read Only Memory) and HDD that store various control programs, and main memory (not shown) such as RAM for storing data temporarily required for the arithmetic processing unit to execute programs. The arithmetic processing unit reads the OS and application software from the auxiliary storage device, expands the read OS and application software into the main memory, and performs arithmetic processing based on this OS and application software. Based on the results of this calculation, each device controls the respective hardware. In this way, the functions of each device can be realized through the cooperation of hardware and software. In the following explanation, a stepped-value controlled boiler will be used as an example. However, by replacing the number control device 3 with a number control device that controls a continuous-control boiler, and by applying the number control parameter group generation device 6 directly to the continuous-control boiler, the boiler system 100 with a number control parameter group generation function can also be applied to a boiler system that includes a group of boilers having multiple continuous-control boilers. Next, I will briefly explain boiler system 1.

[0018] As shown in Figure 1, the boiler system 1 comprises a boiler group 2 including a plurality of stage-value controlled boilers 20, a steam header 4 that collects the steam generated in these stage-value controlled boilers 20, a steam pressure sensor 5 as a steam pressure measuring means for measuring the pressure inside the steam header 4 (hereinafter also referred to as "header pressure"), and a unit control device 3 having a control unit 30 that controls the combustion state of the boiler group 2. The boiler group 2 generates steam to be supplied to the steam-using equipment 18, which is a load device.

[0019] The unit count control device 3 may be directly connected to the unit count control parameter group generation device 6 via a connection interface (not shown). Alternatively, the unit count control device 3 may be interconnected with the unit count control parameter group generation device 6 via a network (not shown), such as a LAN (Local Area Network) or the Internet. In this case, the unit count control device 3 and the unit count control parameter group generation device 6 are equipped with a communication unit (not shown) for communicating with each other via such connection. As will be described later, the unit count control device 3 may include the unit count control parameter group generation device 6, or at least one functional unit provided by the unit count control parameter group generation device 6 described later.

[0020] Each of the multiple stage-controlled boilers 20 comprises a boiler body 21 in which combustion takes place, and a local control unit 22 that controls the combustion position of the stage-controlled boiler 20. In this embodiment, the step-value controlled boiler 20 is 1) Combustion stop position (1st combustion position: 0%) 2) Low combustion position L (second combustion position: for example, set at 5-35% of the maximum combustion amount, 20% in this embodiment), 3) Intermediate combustion position M (third combustion position: for example, set at 40-60% of the maximum combustion amount, 50% in this embodiment), 4) An example is a step-value controlled boiler (hereinafter also referred to as a "4-position controlled boiler") having a step-level combustion position with a high combustion position H (fourth combustion position: 100% (maximum combustion amount)). The step-value controlled boiler 20 of this embodiment is a boiler in which the intermediate combustion position has the characteristic of high operating efficiency. That is, each step-value controlled boiler 20 has the intermediate combustion position as a high-efficiency combustion position.

[0021] Each of the multiple stage-value controlled boilers 20 is assigned a priority order. This priority order is used to select the stage-value controlled boiler 20 to issue combustion commands or combustion stop commands. The priority order can be set using, for example, integer values, with smaller numbers indicating higher priority. This priority order may be changed at predetermined time intervals (for example, every 24 hours) by the control unit 30 described later. Furthermore, the step-value controlled boiler 20 is not limited to a four-position boiler. It may be any multi-position boiler.

[0022] The boiler body 21 is equipped with water tubes and burners, and heats boiler water supplied from a water source (feed tank) (not shown) in the water tubes to generate steam.

[0023] The local control unit 22 changes the combustion position of the stepped-value controlled boiler 20 according to the steam consumption. Specifically, the local control unit 22 controls the combustion position of the stepped-value controlled boiler 20 based on the number control signal transmitted from the number control device 3 via the signal line 16. The local control unit 22 also transmits signals used by the number control device 3 to the number control device 3 via the signal line 16. Signals used by the number control device 3 include the actual combustion position of the stepped-value controlled boiler 20, the load factor or output steam amount, and other data.

[0024] The steam header 4 is connected via steam pipes 11 to a group of stepped-value controlled boilers 20 that make up the boiler group 2. The downstream side of the steam header 4 is connected via steam pipes 12 to steam-using equipment 18. The steam header 4 collects and stores the steam generated in the boiler group 2. The steam header 4 adjusts the pressure difference and pressure fluctuations between the one or more stage-controlled boilers 20 that are used for combustion, and supplies steam with a constant steam pressure to the steam-using equipment 18.

[0025] The steam pressure sensor 5 is electrically connected to the unit control device 3 via the signal line 13. The steam pressure sensor 5 measures the steam pressure value of the steam header 4 (hereinafter also referred to as the "header pressure value") and transmits a steam pressure signal corresponding to that steam pressure value to the unit control device 3.

[0026] Next, the unit count control device 3 will be described. As shown in Figure 1, the unit control device 3 is electrically connected to multiple step-value controlled boilers 20 in a manner that enables communication. Based on the steam pressure value of the steam header 4 measured by the steam pressure sensor 5, the unit control device 3 calculates the required amount of steam for the boiler group 2 according to the requested load, and controls the combustion position of the step-value controlled boiler 20 (hereinafter also referred to as the "controlled boiler") that is to be controlled within the boiler group 2 based on the calculated required amount of steam. In the boiler system 1, a step-value controlled boiler 20 (hereinafter also referred to as a "reserve boiler") that is not the target of control can be provided within the boiler group 2. The number control device 3 can then add the reserve boiler 20 to the target of control and change it to the target boiler 20, or remove the target boiler 20 from the target of control and change it to the reserve boiler 20, depending on the combustion state of the target boiler 20.

[0027] Figure 2 is a functional block diagram showing the configuration of the unit count control device 3. As shown in Figure 2, it comprises a control unit 30 and a storage unit 32 as control means. Before describing the configuration of the control unit 30, the storage unit 32 will be described first.

[0028] The memory unit 32 is, for example, a ROM, RAM, or HDD, and stores various control programs along with the contents of instructions given to each stage value control boiler 20 by the control of the number control device 3 (control unit 30), information such as combustion position received from each stage value control boiler 20, priority setting information, and setting information related to priority changes (rotation). Furthermore, as shown in Figure 2, the storage unit 32 includes a unit control parameter group storage unit 324 and a unit control parameter group ID storage unit 325.

[0029] As described later, the unit control parameter group storage unit 324 stores and registers multiple (n) unit control parameter groups (i) (1 ≤ i ≤ n). Here, we will describe the number of units control parameter groups generated by the unit control parameter group generation device 6, which will be described later. In this embodiment, we have described an example in which the subscript i is assigned in order from the largest to the smallest upper load ratio, but this is not the only option. Conversely, the subscript i may be assigned in order from the smallest to the largest upper load ratio. First, let's explain the upper load factor and the effective load factor range. Assuming that the overall load factor of boiler group 2 when all boilers are burning at full capacity is 100%, there are pre-defined upper limit load factors (i) (1≦i≦n) for boiler group 2, which range from 0 to 100% and do not overlap. Upper limit load factor (1) = 100% Upper limit load factor (i)> Upper limit load factor (i+1) 1≦i≦n-1 Upper limit load factor (n) > 0 This is how it is set. This results in n effective load factor ranges (i) (1 ≤ i ≤ n), Effective load factor range (i) = 0% to upper limit load factor (i) (1 ≤ i ≤ n) It is set and registered as such. The effective load factor range is also called the effective load factor bandwidth. When the number of boilers control parameter group (i) is set, the number of boilers control device 3 controls the boiler group 2 to perform combustion control within the effective load factor range (i).

[0030] Next, we will explain the appropriate load factor range. Based on the aforementioned upper limit load factor, The appropriate load factor range (i) = upper load factor (i+1)% to upper load factor (i) (1 ≤ i ≤ n) This is set as follows. For convenience, the upper limit load factor (n+1) = 0 here. The appropriate load factor range is also called the appropriate load factor bandwidth. When the number of units control parameter group (i) is set, the number of units control device 3 controls the boiler group 2 to perform combustion in a way that allows it to achieve the best possible performance within the appropriate load factor range (i).

[0031] Alternatively, the system may register the upper limit load factor (i)% as the maximum amount of steam used (i) corresponding to the appropriate load factor range (i), and register, for example, the output steam amount that represents an intermediate load factor within the appropriate load factor range (i) as the average amount of steam (i) corresponding to the appropriate load factor range (i).

[0032] To identify the number of units control parameter groups that have been set and registered in this manner, for example, a number of units control parameter group that includes the upper limit load rate (i) can be called the number of units control parameter group (i) (hereinafter, for simplicity, also referred to as the "control pattern (i)"). As will be described later, if, for example, a number control parameter group (i) is selected and set in the number control parameter group ID storage unit 325 based on instructions from the number control parameter group generation device 6, the number control device 3 controls the combustion of the boiler group 2 within the effective load factor range (i) and controls the number of boilers in the boiler group 2 so that it can perform at its best within the appropriate load factor range (i).

[0033] The unit control parameter group includes parameter values ​​for setting the unit control pattern (for example, parameter values ​​such as proportional distribution setting pressure, proportional distribution control width, maximum steam usage, average steam usage, fluctuating steam usage, and combustion priority control mode), in addition to the upper limit load factor, effective load factor range, and appropriate load factor range mentioned above. The maximum steam usage amount refers to the maximum output steam amount supplied by boiler group 2 (i.e., the maximum amount of steam consumed in the steam-using equipment (required load)). The average steam usage amount (also called "average steam amount") refers to the average value of the output steam amount supplied by boiler group 2. The variable steam amount is the variable steam amount corresponding to the fluctuation in the steam supply amount in boiler group 2, and is usually set as Variable Steam Amount = Maximum Steam Usage Amount - Average Steam Amount. Furthermore, as mentioned above, the proportional distribution setting pressure and proportional distribution control width shall be set to the same values ​​for all unit control parameter groups. Furthermore, as a combustion priority control mode value included in the unit control parameter group, for example, efficiency priority mode or response priority mode can be set.

[0034] If the efficiency priority mode is set as the combustion priority control mode value included in the number of boilers control parameter group, the number of boilers control device 3 determines the number of boilers to be controlled so that the output steam amount equal to the average steam amount can be secured in the most efficient combustion state (e.g., medium combustion state) within the appropriate load factor range, and controls the boilers to be in the most efficient combustion state by sequentially increasing the number of combustion boilers so that a surplus of steam equal to the fluctuating steam amount can be secured. In other words, since starting a non-functioning boiler in response to a load exceeding the average steam amount would result in losses, the number of boilers control device 3 controls the boilers that are burning efficiently to temporarily move to a higher combustion state without starting a new boiler.

[0035] On the other hand, if the response priority mode is set as the combustion priority control mode value included in the number of boilers control parameter group, the number of boilers control device 3 determines the number of boilers to be controlled and the number of boilers to be controlled so as to ensure an output steam amount equal to the sum of the average steam amount and the fluctuating steam amount, and controls the boilers to improve responsiveness by preventing them from being in standby mode as much as possible. In other words, when the load increases, the number of boilers control device 3 sequentially sets the boilers to medium combustion, and when the load decreases, it prioritizes securing low-combustion boilers, thereby improving responsiveness by controlling the boilers to prevent them from being in standby mode as much as possible. The above explains the unit control parameter group.

[0036] The unit control parameter group ID storage unit 325 stores unit control parameter group IDs that are pre-set by the user and subsequently changed by instructions from the unit control parameter group generation device 6, which will be described later. This allows the unit control device 3 to perform optimal combustion control for the boiler group 2 based on the parameter values ​​(effective load factor range, appropriate load factor range, etc.) included in the unit control parameter group corresponding to the unit control parameter group ID. The unit control parameter group ID storage unit 325 may also include a history of changes to previously set unit control parameter group IDs. As described above, multiple unit control parameter groups are pre-configured by the user, and each unit control parameter group is assigned identification information ("unit control parameter group ID"). By specifying the unit control parameter group ID from among the multiple unit control parameter groups, it is possible to select the appropriate unit control parameter group for unit control according to the required load of the steam-using equipment (for example, the maximum amount of steam used).

[0037] Next, the control unit 30 will be described. As shown in Figure 2, the control unit 30 includes a unit count control function unit 301, a unit count control parameter group recording unit 302, and a unit count control parameter setting unit 303.

[0038] The boiler control function unit 301 is a function unit known to those skilled in the art, which calculates the required amount of steam for the boiler group 2 according to the required load based on the steam pressure value of the steam header 4 measured by the steam pressure sensor 5, and controls the combustion position of the step-value controlled boiler 20 (hereinafter also referred to as the "controlled boiler") that is to be controlled among the boiler group 2 based on the calculated required amount of steam. For example, the boiler control function unit 301 calculates the required amount of steam for the boiler group 2 according to the requested load based on the steam pressure value of the steam header 4 measured by the steam pressure sensor 5, and controls the combustion position of the step-value controlled boiler 20 (hereinafter also referred to as the "controlled boiler") that is to be controlled within the boiler group 2, based on the calculated required amount of steam. For example, the control unit 30 may perform boiler control using a proportional distribution control method. Specifically, the boiler control function unit 301 divides the control pressure range, which is determined by two preset values, proportional distribution control pressure and proportional distribution control width, into multiple pressure ranges based on the number and type of boilers to be controlled. For each divided pressure range, it pre-assigns the number of boilers and combustion state so that the boiler combustion rate increases as the header pressure decreases. In this way, the control unit 30 can control the number of boilers so that the number of boilers and combustion state change according to the divided pressure range containing the header pressure value in response to fluctuations in the header pressure.

[0039] As described above, the unit control function unit 301 performs unit control based on a pre-set unit control parameter group ID from among multiple unit control parameter groups (i).

[0040] The unit control parameter group recording unit 302 registers multiple (n) unit control parameter groups (i) (1 ≤ i ≤ n) generated by the unit control parameter group generation device 6, which will be described later, in the unit control parameter group storage unit 324.

[0041] When the boiler system 1 is started, the unit control parameter setting unit 303 is set to a unit control parameter group ID that has been set in advance by the user, and thereafter changes the unit control parameter group ID, etc., based on the user's instruction to change the unit control parameter group ID. By doing so, the boiler control device 3 can control the combustion of the boiler group based on an appropriate boiler control parameter group (i) according to the required load of the steam-using equipment after the boiler system 1 has started operating. The above describes the unit count control device 3 as a unit count control unit.

[0042] Next, we will describe the control device, the number of units control parameter group generation device 6. Figure 3 shows a functional block diagram illustrating the configuration of the number of units control parameter group generation device 6. As described above, the unit count control parameter group generation device 6 is a device that is directly connected to the unit count control device 3 via a connection interface, or is interconnected via a network (not shown) such as a LAN (Local Area Network) or the Internet. As shown in Figure 3, the unit control parameter group generation device 6 comprises a control unit 60 and a storage unit 62. Before describing the configuration of the control unit 60, the storage unit 62 will be described first.

[0043] The storage unit 62 is, for example, a ROM, RAM, HDD, etc., and includes a number control parameter group storage unit 624 along with various control programs, as shown in Figure 3. The unit control parameter group storage unit 624 stores parameter values ​​included in multiple (n) unit control parameter groups (i) (1 ≤ i ≤ n), which are generated by the unit control parameter group generation device 6 as described later, and associates them with the unit control parameter group ID.

[0044] Next, the control unit 60 will be described. As shown in Figure 3, the control unit 60 includes an upper limit load factor setting unit 601, a load factor range division unit 602, and a unit number control parameter group registration unit 603.

[0045] First, let me explain the upper limit load rate setting unit 601. The upper limit load rate setting unit 601 is, Based on user input, if a number n greater than or equal to 3, and multiple (n) non-overlapping upper load percentages (i) (1≦i≦n) including the total load percentage of boiler group 2 of 100% when all boilers are burning at full capacity, the total load percentage of boiler group 2 will be set to a range of 0 to 100% using multiple (n) non-overlapping upper load percentages (i) (1≦i≦n). Upper limit load factor (1) = 100% Upper limit load factor (i)> Upper limit load factor (i+1) 1≦i≦n-1 Upper limit load factor (n) > 0 To that end, multiple (n) upper limit load factors (i) (1 ≤ i ≤ n) are generated. Furthermore, the upper limit load rate setting unit 601 sets the upper limit load value (i) to: For all i (1 ≤ i ≤ n-1), generate such that the following conditions 1 and 2 are satisfied. (Condition 1) (Upper limit load rate (i) - Upper limit load rate (i+1)) ≧ (Upper limit load factor (i+1) - Upper limit load factor (i+2)) (Condition 1) Here, we set the upper limit load factor (n+1) = 0. (Condition 2) (Upper limit load rate (1) - Upper limit load rate (2)) > (Upper limit load factor (n) - Upper limit load factor (n+1)) Here, we set the upper limit load factor (n+1) = 0. The upper limit load factor setting unit 601 may output an alarm if multiple (n) upper limit load factors (i) (1 ≤ i ≤ n) do not satisfy conditions 1 and 2. As a variation, the upper limit load rate setting unit 601 may be configured to generate a value that satisfies condition 3 in addition to conditions 1 and 2. (Condition 3) (Upper limit load rate (1) - Upper limit load rate (2)) > (Upper limit load factor (2) - Upper limit load factor (3))

[0046] The load factor range division unit 602 divides the effective load factor range (i) (1≦i≦n) into n effective load factor ranges (i) = 0% to upper limit load factor (i) (1≦i≦n) It is generated as follows. Hereafter, "effective load factor range" will also be referred to as "effective load factor bandwidth". In this way, when the number of units control parameter group (i) is set, the number of units control device 3 controls the boiler group 2 to perform combustion control within the effective load factor range (i). Furthermore, by dividing the effective load factor range into smaller segments on the side with a lower boiler load factor, the occurrence of control problems can be minimized. In this way, when the boiler load factor is low, it is possible to generate a number-of-boiler control parameter group configured to reduce the gain and slow down the increase or decrease in steam output in response to pressure fluctuations. Specifically, when the boiler load factor is low, the change in steam output in response to pressure fluctuations becomes small, thereby minimizing the occurrence of hunting and other issues at low loads.

[0047] The load factor range division unit 602 divides n appropriate load factor ranges (i) (1 ≤ i ≤ n) into The appropriate load factor range (i) = upper load factor (i+1)% to upper load factor (i) (1 ≤ i ≤ n) It is generated as follows. For the sake of convenience, the upper limit load factor (n+1) = 0. Hereafter, the "appropriate load factor range" will also be referred to as the "appropriate load factor bandwidth". Furthermore, the load factor range division unit 602 generates a combustion priority control mode value (i) based on the user's specification. In this way, when the number of units control parameter group (i) is set, the number of units control device 3 controls the combustion of the boiler group 2 within the appropriate load factor range (i) to enable it to perform at its best, for example, based on the specified combustion priority mode.

[0048] Furthermore, the load factor range division unit 602 generates the maximum steam usage amount (i) and the average steam usage amount (i) for each appropriate load factor range (i). For example, the maximum steam usage amount (i) may be the upper limit load factor (i). Alternatively, the average steam usage amount (i) may be calculated based on the intermediate load factor in the load factor band (i). Furthermore, the load fluctuation amount (i) may be the value obtained by subtracting the average steam usage amount (i) from the maximum steam usage amount (i). The number i may be used as the "control pattern number" (also called the "control pattern number") to identify the control parameter group (i) for the number of units generated as described above.

[0049] Next, we will describe an example of a group of multiple control parameters generated in the present invention. Similar to Figure 4A, we will describe an example of a boiler group comprising five stepped-value controlled boilers 20, where the maximum combustion rate of each boiler 20 is 2000 kg / h, the medium combustion rate is 1000 kg / h, and the low combustion rate is 500 kg / h. Figure 4B shows an example of a device control parameter group that widens the appropriate load factor range as the load factor increases and narrows the appropriate load factor range as the load factor decreases. As shown in Figure 4B, for example, the overall load factor of boiler group 2 may be divided into five load factor ranges: an effective load factor range of 0%-100% and an appropriate load factor range of 60%-100% (referred to as "number of units control parameter group (1)"), an effective load factor range of 0%-60% and an appropriate load factor range of 40%-60% (referred to as "number of units control parameter group (2)"), an effective load factor range of 0%-40% and an appropriate load factor range of 20%-40% (referred to as "number of units control parameter group (3)"), an effective load factor range of 0%-20% and an appropriate load factor range of 10%-20% (referred to as "number of units control parameter group (4)"), and an effective load factor range of 0%-10% and an appropriate load factor range of 0%-10% (referred to as "number of units control parameter group (5)"). Furthermore, the maximum steam usage and average steam usage within each appropriate load factor range may be set in advance, as shown in Figure 4B. Furthermore, the combustion base for each appropriate load factor range (i) (1 ≤ i ≤ 5) is automatically calculated based on the pre-set parameters (combustion priority control mode values) and the load, as described above. For example, if the efficiency priority mode is set as the parameter, the boilers and number of boilers to be controlled are automatically determined so that the output steam volume can be secured in the most efficient combustion state (e.g., medium combustion state). In this case, for loads exceeding the average steam volume, the system controls the efficiently burning boilers to temporarily move to a higher combustion state without starting any new boilers. On the other hand, if the response priority mode is set as the parameter, the system controls the boilers and the number of boilers to be controlled in such a way that the boilers are kept in standby mode as much as possible. For example, in the boiler control parameter group (4) shown in Figure 4B, if efficiency priority mode is set, the system is based on one boiler burning at high power and one boiler burning at low power. When a load exceeds the average steam volume, the system automatically controls the boiler that is burning efficiently to temporarily move to a higher combustion state without starting a new boiler. On the other hand, if response priority mode is set in the boiler control parameter group (4), the system is controlled based on three boilers burning at low power. In this embodiment, the load factor is calculated based on the header pressure value, but this is not limited to this. If the load factor can be predicted, for example, by AI, the predicted value may be used instead.

[0050] As shown in Figure 4B, the upper limit load factor setting unit 601 may generate an upper limit load factor (2) such that the width of the appropriate load factor bandwidth (1), which includes 100%, is 40% or more. The upper limit load rate setting unit 601 may also generate an upper limit load rate (n) such that the width of the appropriate load rate bandwidth (5), including 0%, is 10%. In this way, when the boiler load factor is low, it is possible to generate a number-of-boiler control parameter group configured to reduce the gain and slow down the increase or decrease in steam output in response to pressure fluctuations.

[0051] The unit control parameter group registration unit 603 generates other parameter values ​​to be included in the unit control parameter group (i) (1≦i≦n) based on the user's specifications. The unit control parameter group registration unit 603 associates the generated parameter values ​​included in the unit control parameter group (i) (1≦i≦n) with the unit control parameter group ID and outputs them to the unit control device 3 (unit control parameter group recording unit 302). In doing so, the unit count control device 3 (unit count control parameter group recording unit 302) registers the unit count control parameter group (i) (1≦i≦n) generated by the unit count control parameter group generation device in the unit count control parameter group storage unit 324. Subsequently, in the unit control device 3, for example, based on user specification, one unit control parameter group (j) is selected and set in the unit control parameter group ID storage unit 325. Based on this, the unit control device 3 can control the combustion of the boiler group 2 based on the unit control parameter group (j) set in the unit control parameter group ID storage unit 325. The above describes the unit control parameter group generation device 6.

[0052] Next, the operation of the process for generating a number of control parameter group by the number of control parameter group generation device 6 according to this embodiment will be described. Figure 5 is a flowchart illustrating the processing of the unit control parameter group generation device 6.

[0053] In step S10, the upper limit load factor setting unit 601 specifies multiple (n) non-overlapping upper limit load factors (i) (1≦i≦n) based on user input, including the overall load factor of 100% for boiler group 2 when all boilers are burning at full capacity.

[0054] In step S11, the upper limit load factor setting unit 601 determines whether multiple (n) upper limit load factors (i) (1 ≤ i ≤ n) satisfy both conditions 1 and 2. If both conditions 1 and 2 are met (Yes), the unit proceeds to step S12. If both conditions 1 and 2 are not met (No), an alarm is output, and the unit proceeds to step S10.

[0055] In step S12, the load factor range division unit 602 generates n effective load factor ranges (i) and n appropriate load factor ranges (i) (1 ≤ i ≤ n) based on the user's specifications.

[0056] In step S13, the load factor range division unit 602 generates the maximum steam usage amount (i) and the average steam usage amount (i) for each appropriate load factor range (i) based on the user's specifications.

[0057] In step S14, the unit control parameter group registration unit 603 generates other parameter values ​​to be included in the unit control parameter group (i) (1≦i≦n) based on the user's specifications.

[0058] In step S15, the unit control parameter group registration unit 603 associates the parameter values ​​included in the generated unit control parameter group (i) (1≦i≦n) with the unit control parameter group ID and outputs them to the unit control device 3 (unit control parameter group recording unit 302).

[0059] As described above, in the boiler system 100 with a unit control parameter group generation function, the unit control parameter group generation device 6 can generate multiple unit control parameter groups, and for the unit control parameter group applied to a group of boilers when the required load of the steam-using equipment is low, it is possible to select a unit control parameter group in which the gain is small and the increase or decrease in steam output in response to pressure fluctuations becomes gradual.

[0060] Although one embodiment has been described above, the boiler system 100 with a unit control parameter group generation function is not limited to the above-described embodiment, and modifications and improvements are included to the extent that the objective can be achieved.

[0061] <Example 1> In the above-described embodiment, the unit control parameter group generation device 6, which acts as a control device, is illustrated as a separate device from the unit control device 3, which acts as a unit control unit. However, the unit control device 3 may be equipped with some or all of the functions of the unit control parameter group generation device 6. Alternatively, some or all of the functions of the unit control parameter group generation device 6 may be implemented using a virtual server function or the like on the cloud.

[0062] <Modification 2> In this embodiment, the unit control device 3 performs combustion control of each stage value control boiler 20 of the boiler group 2 so that the steam pressure inside the steam header 4 stays within a preset pressure range, but the system is not limited to this proportional distribution control method. For example, the number control device 3 may control the combustion state of the step-value controlled boilers 20 that are to be burned in the boiler group 2 so as to maintain the steam pressure inside the steam header at a preset target steam pressure value.

[0063] <Variation 3> Furthermore, as mentioned above, the boilers are not limited to step-value controlled boilers. This method can also be applied to groups of boilers consisting of continuously controlled boilers. Specifically, for example, as mentioned above, the number control device 3 may be replaced with a number control device 3A that controls a group of continuously controlled boilers known to those skilled in the art, and control parameters may be set, for example, to ensure that the combustion rate of the combustion boiler is within the eco-operation zone when outputting the average steam amount.

[0064] The boiler system 100 with a boiler number control parameter group generation function of this embodiment, as described above, includes a boiler number control parameter group generation device 6 which provides the following effects.

[0065] (1) The control device of this embodiment, the number of boiler control parameter group generation device 6, is a control device capable of setting a number of boiler control parameter group used for controlling a group of boilers consisting of multiple boilers, When the boiler load factor of the boiler group is set to 100% when all boilers are in full combustion, the upper limit load factor setting unit 601 sets multiple (n) non-overlapping upper limit load factors, including an upper limit of 100%. A load factor range division unit 602 divides the boiler load factor into the same number of load factor bands as the load factor, by setting a range from 0% to the minimum load factor corresponding to the minimum load factor, and a range from the load factor to the load factor that is greater than the load factor and closest to the load factor corresponding to each load factor. The boiler load factor range division unit 602 generates a boiler load factor band, and the boiler control parameter group registration unit 603 registers the set values ​​for the boiler control parameter group, Includes, The upper limit load rate setting unit 601 further, The width of the boiler load factor band corresponding to each upper limit load factor is set to be greater than or equal to the width of the boiler load factor band corresponding to the upper limit load factor closest to that upper limit load factor, and the width of the boiler load factor band that includes at least a boiler load factor of 100% is wider than the boiler load factor band that includes a boiler load factor of 0%. By setting multiple (n) upper limit load factors, it is possible to reduce the gain when the boiler load factor band is at a low load. By doing so, the overall load factor bandwidth can be finely divided on the side with a low boiler load factor, thereby minimizing the occurrence of control problems. Specifically, when the boiler load factor is low, the gain for pressure fluctuations can be automatically reduced, minimizing the occurrence of hunting and other issues at low loads.

[0066] (2) In this embodiment, the unit control parameter group registration unit 603 further, As the maximum amount of steam used to be registered in the boiler load factor control parameter group corresponding to the boiler load factor range, the amount of steam that satisfies the upper limit load factor in that boiler load factor range can be registered. By doing so, a number control parameter group is selected, and by applying this number control parameter group to the number control device 3 that controls the combustion state of a boiler group consisting of multiple boilers, the maximum amount of steam used can be automatically defined in the control of the boiler group 2.

[0067] (3) In this embodiment, the number of boilers control parameter group may be configured to define a boiler that supplies a base amount of steam and a boiler that responds to changes in steam amount, based on the range of the boiler load factor band. By doing so, a boiler count control parameter group is selected, and by applying this boiler count control parameter group to the boiler count control device 3 that controls the combustion state of a group of boilers consisting of multiple boilers, the boiler supplying the base amount of steam and the boiler corresponding to the change in steam amount can be automatically defined, for example, the number of boilers and / or the combustion position of the boilers within the boiler load factor range set by the boiler count control parameter group.

[0068] (4) The number of units control parameter group generation device 6 of this embodiment includes an input unit 63, The upper limit load rate setting unit 601 may be configured to set multiple upper limit load rates input from the input unit 63. By doing so, the user can create multiple unit control parameter groups by inputting multiple upper limit load rate values ​​via the input unit 63.

[0069] (5) In this embodiment, the upper limit load rate setting unit 601 is The upper limit load factor may be set such that the width of the boiler load factor band, including the upper limit load factor of 100%, is 40% or more. By doing so, the width of the boiler load factor range, including a boiler load factor of 100%, can be maximized.

[0070] (6) In this embodiment, the upper limit load factor setting unit 601 may set the upper limit load factor so that the width of the boiler load factor band including 0% is 10%. By doing so, the width of the boiler load factor band, including the boiler load factor of 0%, can be made as narrow as possible.

[0071] (7) The number of units control parameter group generation device 6 of this embodiment may include a number of units control device 3 as a number of units control unit. By doing so, the unit count control device 3 and the unit count control parameter group generation device 6 can be combined into a single device, thereby reducing installation space, labor required for installation, etc., compared to when they are separate devices. [Explanation of Symbols]

[0072] Boiler system with 100-unit control parameter group generation function 1. Boiler System 2 Boiler Groups 20-step value control boiler 3 Unit Control Device 30 Control Unit 301 Unit Control Function Unit 302 Unit Control Parameter Group Recording Unit 303 Unit Count Control Parameter Setting Unit 32 Storage section 324 Unit Control Parameter Group Storage Unit 325 Unit Control Parameter Group ID Storage Unit 4. Steam Header 5. Vapor pressure sensor 6. Unit Control Parameter Group Generation Device 60 Control Unit 601 Upper limit load factor setting section 602 Load Factor Range Division Section 603 Unit Control Parameter Group Registration Unit 62 Storage section 624 Unit Control Parameter Group Storage Unit 63 Input section

Claims

1. A control device capable of setting a number control parameter group used for controlling a group of boilers consisting of multiple boilers, When the boiler load factor of the boiler group is set to 100% when all boilers are in full combustion, the upper limit load factor setting unit sets multiple (n) non-overlapping upper limit load factors, including an upper limit of 100%. A load factor range division unit divides the boiler load factor into the same number of boiler load factor bands as the aforementioned upper limit load factor by setting a range from 0% to the minimum upper limit load factor corresponding to the minimum upper limit load factor, and a range from the upper limit load factor to the upper limit load factor that is greater than the said upper limit load factor and closest to the said upper limit load factor, corresponding to each upper limit load factor. A unit for registering unit control parameter groups registers the set values ​​of the unit control parameter groups corresponding to each boiler load factor band generated by the load factor range division unit, Includes, The aforementioned upper limit load rate setting unit further, A control device that enables a smaller gain, which indicates how much the steam output changes in response to pressure fluctuations when the boiler load factor is low, by setting multiple (n) upper limit load factors such that the width of the boiler load factor band corresponding to each upper limit load factor is wider than or equal to the width of the boiler load factor band corresponding to the upper limit load factor that is smaller than the upper limit load factor and closest to the upper limit load factor, and by setting multiple (n) upper limit load factors such that the width of the boiler load factor band that includes at least a boiler load factor of 100% is wider than the boiler load factor band that includes a boiler load factor of 0%.

2. The aforementioned unit control parameter group registration unit further, The control device according to claim 1, wherein the maximum amount of steam used to be registered in the boiler load factor control parameter group corresponding to the boiler load factor band is the amount of steam that satisfies the load of the upper limit load factor in the boiler load factor band.

3. The control device according to claim 1 or 2, wherein the number of units control parameter group enables the definition of a boiler that supplies a base amount of steam and a boiler that responds to changes in the amount of steam, based on the range of the boiler load factor band.

4. Equipped with an input section, The aforementioned upper limit load factor setting unit, The control device according to claim 1 or claim 2, which sets a plurality of upper load ratio values ​​based on a plurality of upper load ratio values ​​input from the input unit.

5. The aforementioned upper limit load factor setting unit, The control device according to claim 1 or claim 2, wherein the upper limit load factor is set such that the width of the boiler load factor band, including the upper limit load factor of 100%, is 40% or more.

6. The aforementioned upper limit load factor setting unit, The control device according to claim 1 or claim 2, wherein the upper limit load factor is set such that the width of the boiler load factor band including 0% is 10%.

7. The control device according to claim 1 or claim 2, wherein the control device includes a unit control unit for controlling the combustion state of the boiler group.

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