SUB-BOILING DISTILLATION EQUIPMENT
20190038993 ยท 2019-02-07
Inventors
Cpc classification
B01D1/0052
PERFORMING OPERATIONS; TRANSPORTING
B01D5/006
PERFORMING OPERATIONS; TRANSPORTING
B01D5/009
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D5/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present disclosure discloses a sub-boiling distillation equipment capable of efficiently purifying a raw acid. The sub-boiling distillation equipment is made up of a feeding part, a condensing part, a heating part, a pure acid guiding part, a pure acid receiving part and a tail acid collecting part. The tail acid part is always kept in a normal temperature state, thereby ensuring that tail acid are not simultaneously heated and ensuring purity of distillates. Meanwhile, a controllable PID heating manner is adopted, so as to ensure accuracy of a heating temperature 0.1 C.
Claims
1. A sub-boiling distillation equipment for purifying raw acid, comprising: a feeding part (11), a condensing part (12), a heating part (13), a pure acid guiding part (14), a pure acid receiving part (15) and a tail acid collecting part (16); wherein the sub-boiling distillation equipment is an integrated closed system; the heating part (13) is composed of a heating zone main body (131) made of a quartz material and/or PFA/PTFE, and a heating jacket (132) coated outside the heating zone main body (131) to heat the heating zone main body (3); the heating jacket (132) is electrically connected with a control circuit (3) for controlling on-off of the heating jacket (132); the condensing part (12) is arranged above the heating zone main body (131) and comprises a cooling tower (121) and a condensation cavity (122); the condensation cavity (122) is a tapered concave structure, and is seamlessly connected with the cooling tower (121); the pure acid guiding part (14) comprises a pure acid receiver (141) provided below the cooling tower (121), a pure liquid diversion pipe (142) and a final liquid outlet (143); the pure acid receiving part (15) comprises a pure liquid receiving bottle (151) connected with the final liquid outlet (143), and a receiving bottle top cover (152); and the tail acid collecting part (16) comprises a tail liquid receiver (161) and heat dissipation holes (162).
2. The sub-boiling distillation equipment according to claim 1, wherein the tail acid collecting part (16) is isolated from the heating part (13) and is kept at a normal temperature.
3. The sub-boiling distillation equipment according to claim 1, wherein the pure acid guiding part (14) and the pure acid receiving part (15) are integrated; and a check valve (153) is arranged on the receiving bottle top cover (152) to discharge air in the bottle, and outside air cannot enter the pure acid receiver (141), ensuring quality of pure acid.
4. The sub-boiling distillation equipment according to claim 1, wherein the control circuit (3) comprises a master controller (30), a temperature probe (31) for collecting an internal temperature of the heating zone main body (131), and a solid-state relay (32); and the solid-state relay (32) is electrically connected to the master controller (30) and the heating jacket (132) to control the heating jacket (132).
5. The sub-boiling distillation equipment according to claim 4, wherein a temperature control algorithm is implanted into the master controller (30) and the temperature control algorithm is a proportion integration differentiation (PID) control algorithm.
6. The sub-boiling distillation equipment according to claim 4, wherein the control circuit (3) further comprises a wireless control module (34) which is in communication connection with the master controller (30) for receiving a control signal transmitted by a user.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0018] The present disclosure is further described below in detail in combination with drawings and specific embodiments.
[0019]
[0020]
[0021]
[0022] Description of drawing marks: 1, sub-boiling distiller; 11, feeding part; 111, feeding hole; 112, feeding hopper; 113, feeding top cover; 12, condensing part; 13, heating part; 14, pure acid guiding part; 15, pure acid receiving part; 16, tail acid collecting part; 17, fixing rack; 18, fixing rack top cover; 19, base; 20, bottle mat; 121, cooling tower; 122, condensation cavity; 131, heating zone main body; 132, heating jacket; 141, pure acid receiver; 142, pure liquid diversion pipe; 143, final liquid outlet; 151, pure liquid receiving bottle; 152, receiving bottle top cover; 153, check valve; 161, tail liquid receiver; 162, heat dissipation hole; 3, control circuit; 30, master controller; 31, temperature probe; 32, solid-state relay; 33, user key input circuit; and 34, wireless control module.
DETAILED DESCRIPTION
[0023] The present disclosure is further described below in combination with drawings and embodiments:
[0024] The present embodiment provides an intelligent sub-boiling distiller which can accurately control a temperature and has a tail acid collection function. In combination with
[0025] By referring to
[0026] The heating part 13 is composed of a heating zone main body 131 made of a quartz material or other materials such as PFA, PTFE etc., and a heating jacket 132 coated outside the heating zone main body 131 to heat the heating zone main body 131. In a certain implementation, the heating jacket 132 is a silica gel heating piece electrically connected with an outside heating control device. In another implementation, the heating jacket 132 is a silica gel coated heating piece with a thermal insulation layer.
[0027] The condensing part 12 is arranged above the heating zone main body 131 and comprises a cooling tower 121 and a condensation cavity 122. The condensation cavity 122 is a tapered concave structure and is seamlessly connected with the cooling tower 121. The cooling tower 121 further comprises a cooling water inlet 1211 and a cooling water outlet 1212. External circulating water enters the cooling tower 121 through the cooling water inlet 1211 along a tangential direction to take away heat and is discharged from the cooling water outlet 1212.
[0028] The condensed pure acid enters the pure acid receiving part 15 through the pure acid guiding part 14 and is collected, wherein the pure acid guiding part 14 comprises a pure acid receiver 141 provided below the cooling tower 121, a pure liquid diversion pipe 142 and a final liquid outlet 143. The final liquid outlet 143 extends into the pure acid receiving part 15.
[0029] The pure acid receiving part 15 comprises a pure liquid receiving bottle 151 connected with the pure liquid guide pipe 142, and a receiving bottle top cover 152. A check valve 153 is arranged on the receiving bottle top cover 152. At an initial stage of distillation, air in the bottle is discharged through the check valve 153, so that outside air cannot enter into the pure liquid receiving bottle 151 to pollute net acid. The pure liquid receiving bottle 151 is a bottle body made of PFA plastics (soluble polytetrafluoroethylene). The pure liquid receiving bottle 151 is sealed by the receiving bottle top cover 152 and the check valve 153.
[0030] The tail acid collecting part 16 is arranged below the heating zone main body 131 and comprises a tail liquid receiver 161 and heat dissipation holes 162. The tail acid collecting part 16 is independently arranged below the heating zone main body 131, is good in ventilation and is always kept at a normal temperature. Therefore, residual impurities after acid purification are collected herein. Because heating is not performed, high-quality acid can be always heated in the upper heating zone main body 131, thereby guaranteeing that the pure acid receiving part 15 collects high-purity acid and has low backgrounds. In the present embodiment, a fully closed design is adopted. In another implementation, the sub-boiling distiller 1 further comprises a fixing rack 17 used for fixing the heating part 13 and a fixing rack top cover 18. The fixing rack 17 and the fixing rack top cover 18 are provided above a base 19. The pure liquid receiving bottle 151 is arranged above a bottle mat 20.
[0031] By referring to
[0032] The master controller 30 is an STM32 embedded device. The temperature probe 31 is a PT100 platinum thermistor. The heating jacket 13 is electrically connected to the solid-state relay 32. The master controller 30 controls the heating jacket 13 by controlling on-off of the solid-state relay.
[0033] A temperature control algorithm is implanted into the master controller 30 and refers to a proportion integration differentiation (PID) control algorithm, so that the temperature control accuracy can reach 0.1 C.
[0034] In a certain implementation, a user can interact with the master controller 30 through the key input circuit 33, thereby realizing temperature setting and other functional operations.
[0035] Certainly, in another implementation, user instructions in the present application, such as a temperature setting signal and an on-off signal, can be issued by a wireless control module 34. The wireless control module 34 is in communication connection with the master controller 30 and is used for interacting with the user and receiving a control signal transmitted by the user. In a certain implementation, a WIFI module takes ESP8266WIFI as a core and can realize a remote temperature monitoring function remotely by a microcomputer or a mobile terminal (such as a smartphone) through wireless data transmission in combination with a self-programmed application program, thereby monitoring a heating temperature, heating time and the like of the heating zone main body 131 by a remote computer terminal or an intelligent terminal.
[0036] In conclusion, the intelligent sub-boiling distiller capable of always maintaining acid purification quality in the present disclosure can ensure a blank background problem caused by acid used in sample dissolution in existing trace element and isotope analysis, which has important significances in research and application of analysis of the content of ultra-low-content trace elements and isotope compositions with respect to an increasingly stronger existing mass spectrometry technical function and improvement of detection capability. Therefore, the quantity of the samples can be further reduced, and usage of acid dissolved sample is reduced, thereby reducing damage of usage of the acid to the environment.
[0037] It should be understood that those ordinary skilled in the art can make improvements or transformations according to description above, while all the improvements and transformations should belong to a protection scope of appended claims in the present disclosure.
[0038] The patent of the present disclosure is illustratively described above in combination with drawings. Apparently, implementation of the patent of the present disclosure is not limited by the manners above. All improvements performed using method concepts and technical solutions of the patent of the present disclosure or direct applications of concepts and technical solutions of the patent of the present disclosure in other occasions without improvements are included in the protection scope of the present disclosure.